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# Chapter 9: Prestressed Concrete Structures

9.1
General
The Prestressed Concrete Structures Chapter of the Code is divided into the
following three Divisions:
Division A : Design
Division B : Material and Construction
Division C : Maintenance
Division A : Scope, Definitions, Notation, Design And Analysis (Sections

### 9.2 To 9.18)

9.2
Scope
9.2.1
Provisions of this Chapter shall apply to members prestressed with
wires, strands, or bars conforming to the specifications of prestressing tendons
given in Sec 9.5.1.3.
9.2.2
All provisions of this Code not specifically excluded, and not in conflict
with provisions of this Chapter 9, shall apply to prestressed concrete.
9.3
Definitions, Symbols and  Notation
9.3.1
Definitions
ACTION
Mechanical force or environmental effect to which the
structure (or structural component) is subjected.
ANALYSIS
Acceptable methods of evaluating the performance
indices or verifying the compliance of specific criteria.
ANCHORAGE
In post-tensioning, a mechanical device used to anchor
the tendon to the concrete; in pretensioning, a device
used to anchor the tendon until the concrete has reached
a pre-determined strength, and the prestressing force
has been transferred to the concrete; for reinforcing
bars, a length of reinforcement, or a mechanical anchor
or hook, or combination thereof at the end of a bar
needed to transfer the force carried by the bar into the
concrete.

ANCHORAGE
BLISTER
A build-up area on the web, flange, or flange-web
junction for the incorporation of tendon anchorage
fittings.
ANCHORAGE
ZONE
The portion of the structure in which the prestressing
force is transferred from the anchorage device on to the
local zone of the concrete, and then distributed more
widely in the general zone of the structure.
AT JACKING
At the time of tensioning the prestressing tendons.
AT LOADING
The maturity of the concrete when loads are applied.
Such loads include prestressing forces and permanent
loads but generally not live loads.
AT TRANSFER
Immediately after the transfer of prestressing force to
the concrete.
AUTOGENEOUS
SHRINKAGE
Volume decrease due to loss of water in the hydration
process causing negative pore pressure in concrete.
BIOLOGICAL
DEGRADATION
The physical or chemical degradation of concrete due to
the effect of organic matters such as bacteria, lichens,
fungi, moss, etc.
BONDED
MEMBER
A prestressed concrete member in which tendons are
bonded to the concrete either directly or through
grouting.
BONDED POST-
TENSIONING
Post-tensioned construction in which the annular space
around the tendons is grouted after stressing, thereby
bonding the tendon to the concrete section.
BONDED TENDON
Prestressing tendon that is bonded to concrete either
directly or through grouting.
BURSTING FORCE
Tensile forces in the concrete in the vicinity of the
transfer or anchorage of prestressing forces.
CAST-IN-PLACE
CONCRETE
Concrete placed in its final position in the structure
while still in a plastic state.
CHARACTERISTIC
STRENGTH
Unless otherwise stated in this Code, the characteristic
strength of material refers to the value of the strength
below which none of the test results should fall below by
more than 15% or 3.5 MPa for ≤35 MPa concrete,  and
10% or 3.5 MPa for ≥35 MPa concrete, whichever is
larger.

CHEMICAL
ADMIXTUREs
Admixtures which are usually used in small quantities
typically in the form of liquid and can be added to the
concrete both at the time of mixing and before placing to
improve
various
concrete
properties
such
as
workability, air content and durability, etc.
CLOSELY SPACED
ANCHORAGES
Anchorage devices are defined as closely spaced if their
centre to centre spacing does not exceed 1.5 times the
width of the anchorage devices in the direction
considered.
CLOSURE
A placement of cast-in-place concrete used to connect
two or more previously cast portions of a structure.
COMPOSITE
CONSTRUCTION
Concrete components or concrete and steel components
interconnected to respond to force effects as a unit.
COMPRESSION-
CONTROLLED
SECTION
A cross-section in which the net tensile strain in the
extreme tension steel at nominal resistance is less than
or equal to the compression-controlled strain limit.
COMPRESSION-
CONTROLLED
STRAIN LIMIT
The net tensile strain in the extreme tension steel at
balanced strain conditions.
CONCRETE
COVER
The specified minimum distance between the surface of
the reinforcing bars, strands, post-tensioning ducts,
anchorages, or other embedded items, and the surface of
the concrete.
CONFINEMENT
A condition where the disintegration of the concrete
under compression is prevented by the development of
lateral and/or circumferential forces such as may be
provided by appropriate reinforcing steel or composite
tubes, or similar devices.
CONFINEMENT
ANCHORAGE
Anchorage for a post-tensioning tendon that functions
on the basis of containment of the concrete in the
anchorage zone by special reinforcement.
CREEP
Time dependent deformation of concrete under
permanent load.
CREEP
COEFFICIENT
The ratio of creep strain to elastic strain in concrete.
CREEP IN
CONCRETE
Increase in strain with time in concrete subjected to
sustained stress.

CURVATURE
FRICTION
Friction resulting from bends or curves in the specified
prestressing tend stage at which the compressive
stresses on profile.
DAMAGE
CONTROL
A means to ensure that the limit state requirement is
met for restorability or reparability of a structure.
DECOMPRESSION
The stage at which the compressive stresses, induced
prestress, are overcome by the tensile stresses.
DEFORMABILITY
A term expressing the ability of concrete to deform.
DEGREE OF
DETERIORATION
The extent to which the performance of a structure is
degraded or the extent to which the deterioration has
progressed from the time of construction, as a result of
its exposure to the environment.
DESIGN LIFE
Assumed period for which the structure is to be used
satisfactorily for its intended purpose or function with
anticipated maintenance but without substantial repair
being necessary.
DETERIORATION
INDEX
An index selected for estimating and evaluating the
extent of the deterioration process.
DETERIORATION
PREDICTION
Prediction of the future rate of deterioration of a
structure based on results of inspection and relevant
records made during the design and construction stages.
DEVIATION
SADDLE
A concrete block build-out in web, flange, or web-flange
junction used to control the geometry of or to provide a
means for changing direction of, external tendons.
DRYING
SHRINKAGE
Volume decrease due to loss of moisture from concrete
in the hardened state which is usually serious in hot and
dry environment.
DURABILITY
DESIGN
Design to ensure that the structure can maintain its
required
functions
during
service
life
under
environmental actions.
DURABILITY
GRADE
The extent of durability to which the structure shall be
maintained in order to satisfy the required performance
during its design life. This affects the degree and
frequency of the remedial actions to be carried out
during that life.

DYNAMIC
APPROACH
An approach based on dynamic analysis to assess the
overall forces on a structure liable to have a resonant
response to wind action.
DYNAMIC
RESPONSE FACTOR
Factor to account for the effects of correlation and
resonant response.
EARLY AGE
STATE
The state of concrete from final setting until the
achievement of the required characteristic strength.
EFFECTIVE
PRESTRESS
Stress remaining in prestressing tendons after all losses
have occurred, excluding effects of dead load and
superimposed load.
ENVIRONMENTAL
ACTIONS
An assembly of physical, chemical or biological
influences which may cause deterioration to the
materials making up the structure, which in turn may
adversely affect its serviceability, restorability and
safety.
FATIGUE LOADS
Repetitive loads causing fatigue in the material which
reduces its strength, stiffness and deformability.
FINAL PRESTRESS  Stress which exists after substantially all losses have
occurred.
FINAL TENSION
The tension in the steel corresponding to the state of the
final prestress.
FORMWORK
Total system of support for freshly placed concrete
including the mould or sheathing, all supporting
members, hardware and necessary bracings.
FUNCTION
The task which a structure is required to perform.
GENERAL ZONE
Region adjacent to a post-tensioned anchorage within
which the prestressing force spreads out to an
essentially linear stress distribution over the cross
section of the component.
GROUT
A mixture of cementitious material and water with or
without admixtures.
INITIAL
PRESTRESS
The prestress in the concrete at transfer.
INITIAL TENSION
The maximum stress induced in the prestressing tendon
at the time of stressing operation.

JACKING FORCE
Temporary force exerted by device that introduces
tension into prestressing tendons.
LIMIT STATE
A critical state specified using a performance index,
beyond which the structure no longer satisfies the
design performance requirements.
LIMITS OF
DISPLACEMENT
Allowable deformation of structure in terms of such
parameters as inter-storey drift and relative horizontal
displacement, to control excessive deflection, cracking
and vibration.
LONG-TERM
PERFORMANCE
INDEX
Index defining the remaining capacity of a structure in
performing its design functions during the design life.
LOCAL ZONE
The volume of concrete that surrounds and is
immediately ahead of the anchorage device and that is
subjected to high compressive stresses.
MAINTENANCE
A set of activities taken to ensure that the structure
continues to perform its functions satisfactorily during
the design life.
MECHANICAL
FORCES
An assembly of concentrated or distributed forces acting
on a structure, or deformations imposed on it.
MODEL
Mathematical
description
or
experimental
setup
simulating the actions, material properties and behavior
of a structure.
MONITORING
Continuous recording of data pertaining to deterioration
and/or performance of structure using appropriate
equipment.
NOMINAL
STRENGTH OF
MATERIAL
The characteristic values of the strength of materials
used for calculation, in absence of the available
statistical data.
NORMAL
CONCRETE
Concrete which is commonly used in construction; it
does not include special constituent materials other than
Portland cement, water, fine aggregate, coarse aggregate
and common mineral and chemical admixtures; it does
not require any special practice for its manufacturing
and handling.

OVERALL
PERFORMANCE
INDEX
Index indicating the overall performance of the
structure.
PARTIAL
PERFORMANCE
INDEX
Index indicating a partial performance of the structure.
PARTIAL SAFETY
FACTOR FOR
MATERIAL
For analysis purposes, the design strength of a material
is determined as the characteristic strength divided by a
partial safety factor.
PERFORMANCE
Ability (or efficiency) of a structure to perform its design
functions.
PERFORMANCE
INDEX
Index indicating structural performance quantitatively.
PERMANENT
ACTIONS
Self-weights of structures inclusive of permanent
attachments, fixtures and fittings.
PLASTIC
SHRINKAGE
Shrinkage arising from loss of water from the exposed
surface of concrete during the plastic state, leading to
cracking at the exposed surface.
PLASTIC STATE
The state of concrete from just after placing until the
final setting of concrete.
POST-
TENSIONING
Method of prestressing in which tendons are tensioned
after concrete has hardened.
PRESTRESSED
CONCRETE
Reinforced concrete in which internal stresses have
been introduced to reduce potential tensile stresses in
concrete resulting from loads.
PRETENSIONING
Method of prestressing in which tendons are tensioned
before concrete is placed.
SHRINKAGE LOSS
The loss of stress in the prestressing steel resulting from
the shrinkage of concrete.
RELIABILITY
Ability of a structure to fulfill specified requirements
during its design life.
REMAINING
SERVICE LIFE
Period from the point of inspection to the time when the
structure is no longer useable, or does not satisfactorily
perform the functions determined at the time of design.

REMEDIAL ACTION Maintenance action carried out with the objective of
arresting or slowing down the deterioration process,
restoring or improving the performance of a structure,
or reducing the danger of damage or injury to the users
or any third party.
REPAIR
Remedial action taken with the objective of arresting or
slowing down the deterioration of a structure, or
reducing the possibility of damage to the users or third
party.
RESTORABILITY
Ability of a structure to be repaired physically and
economically when damaged under the effects of
considered actions. Also known as REPAIRABILITY.
ROBUSTNESS
Ability of a structure to withstand damage by events like
fire, explosion, impact, instability or consequences of
human
errors.
Also
known
as
STRUCTURAL
INSENSITIVITY.
SAFETY
Ability of a structure to ensure that no harm would come
to the users and to people in the vicinity of the structure
under any action.
SERVICE LIFE
The length of time from the completion of a structure
until the time when it is no longer usable because of its
failure to adequately perform its design functions.
SERVICEABILITY
Ability of a structure to provide adequate services or
functionality in use under the effects of considered
actions.
SETTLEMENT OF
CONCRETE
Sinking of the concrete surface after placing due to
bleeding and/or escaping of the entrapped and
entrained air in the concrete.
SPECIAL
CONCRETE
Concrete other than normal concrete including light
weight concrete, roller compacted concrete, self-
compacting concrete, fiber-reinforced concrete, anti-
washout under water concrete, etc.
STIFF AND
FLEXIBLE
STRUCURES
Stiff structures refer to those that are not sensitive to
dynamic effects of wind, while flexible ones are those
that are sensitive to such effects.
STRENGTHENING
Remedial action applied to a structure with the objective
of restoring or improving its load bearing capacity to a
level which is equal to, or higher than, the original
design level.

STRESS AT
TRANSFER
The stress in both the prestressing tendon and the
concrete at the stage when the prestressing tendon is
released from the prestressing mechanism.
TEMPERATURE
CRACKING
Cracking caused by thermal stress which arises from
differential temperatures in the concrete mass.
TENDON
Steel element such as wire, cable, bar, rod, or strand, or a
bundle of such elements, used to impart prestress to
concrete.
THRESHOLD
LEVEL OF
PERFORMANCE
Minimum acceptable level of performance of a structure.
TRANSFER
Act of transferring stress in prestressing tendons from
jacks or pretensioning bed to concrete member.
TRANSFER
LENGTH
The distance required at the end of a pretensioned
tendon for developing the maximum tendon stress by
bond.
ULTIMATE LIMIT
STATE
Limit state for safety.
VARIABLE
ACTION
Action due to a moving object on the structure as well as
any load whose intensity is variable, including traffic
load, wave load, water pressure, and load induced by
temperature  variation.
WOBBLE
FRICTION
Friction caused by unintended deviation of prestressing
sheath or duct from its specified profile.
WORKABILITY
The term expressing the ease with which concrete can
be placed, compacted and filled.
9.3.2
Notation and Symbols
--------------------

\= Area of the part of cross-section between flexural tension face and
centre of gravity of gross section, mm2
-Z
\= Cross-sectional area of a structural member measured to the
outside edges of transverse reinforcement, mm2
-U
\= Gross area of concrete section, mm2. For a hollow section, -U is the
area of the concrete only and does not include the area of the
void(s)
-\
\= Area of prestressed reinforcement in tension zone, mm2

-
\= Area of nonprestressed tension reinforcement, mm2
-r
\= Area of compression reinforcement, mm2

\= Clear cover of reinforcement, mm
\~
\= Dead loads, or related internal moments and forces
•
\= Moment of inertia of cross-section resisting externally applied
factored loads, mm4
•
\= Moment of inertia of cracked section transformed to concrete,
mm4, Sec 6.
•U
\= Moment of inertia of gross concrete section about centroidal axis,
neglecting reinforcement, mm4
•!
\= Effective moment of inertia for computation of deflection, mm4

\= Wobble friction coefficient per meter of prestressing tendon
‹
\= Live loads, or related internal moments and forces
p\{
\= Maximum moment in member due to service loads at stage
deflection is computed, N-mm
p
\= Moment causing flexural cracking at section due to externally
applied loads, N-mm
pf\{v
\= Maximum factored moment at section due to externally  applied
loads, N-mm
pk
\= Factored moment at section, N-mm
j
\= Tensile force in concrete due to unfactored dead load plus live load
(D + L), N
Ž.
\= Prestressing tendon force at jacking end, N
Ž•ª
\= Inherent or possessed performance index
Ž•X
\= Inherent or possessed performance index
Žv
\= Prestressing tendon force at any point x
্থ
\= Nominal shear strength provided by concrete, N
্থম
\= Nominal shear strength provided by concrete when diagonal
cracking results from combined shear and moment, N

্থ্ব
\= Nominal shear strength provided by concrete when diagonal
cracking results from excessive principal tensile stress in web, N
্থি
\= Shear force at section due to unfactored dead load, N
্থম
\= Factored shear force at section due to externally applied loads
occurring simultaneously with pf\{v, N
্থয
\= Nominal shear strength, N
্থ
\= Vertical component of effective prestress force at section, N
্থ
\= Nominal shear strength provided by shear reinforcement, N
্থশ
\= Factored shear force at section, N
Y
\= Shorter overall dimension of rectangular part of cross-section
\= Depth of equivalent rectangular stress block, mm
y
\= Width of compression face of member, mm
\= Distance from extreme compression fiber to centroid of
nonprestressed tension reinforcement, mm
0r
\= Distance from extreme compression fiber to centroid of
compression reinforcement, mm
\= Nominal diameter of bar, wire, or prestressing strand, mm
0\
\= Distance
from extreme compression fiber to centroid of
prestressed reinforcement, mm
•
\= Base of Napierian logarithm
r
\= Specified compressive strength of concrete, N/mm2
g
r
\= Compressive strength of concrete at transfer of prestress, N/mm2
w
\= Stress due to unfactored dead load, at extreme fiber of section
where tensile stress is caused by externally applied loads, N/mm2
!
\= Compressive stress in concrete due to effective prestress forces
only (after allowance for all prestress losses) at extreme fiber of
section where tensile stress is caused by externally applied loads,
N/mm2
\
\= Average compressive stress in concrete due to effective prestress
force only (after allowance for all prestress losses), N/mm2

\
\= Stress in prestressed reinforcement at nominal strength, N/mm2
\k
\= Specified tensile strength of prestressing tendons, N/mm2
\
\= Specified yield strength of prestressing tendons,  N/mm2

\= Modulus of rupture of concrete, N/mm2
!
\= Effective stress in prestressed reinforcement (after allowance for
all prestress losses), N/mm2

\= Extreme fiber stress in tension in the pre-compressed tensile zone
calculated at service loads using gross section properties, N/mm2
(MPa)

\= Specified yield strength of nonprestressed reinforcement, N/mm2

\= Specified yield strength  of transverse reinforcement, N/mm2
ℎ
\= Overall thickness of member, mm
ℎ\`
\= Overall thickness of flange of flanged section, mm
ে
\= Length of span of two-way flat plates in direction parallel to that of
the reinforcement being determined, mm
‡v
\= Length of prestressing tendon element from jacking end to any
point Ÿ, metre

\= Spacing of shear or torsion reinforcement in direction parallel to
longitudinal reinforcement, mm

\= Longer overall dimension of rectangular part of cross-section

\= Distance from centroidal axis of gross section, neglecting
reinforcement, to extreme fibre in tension
u
\= Total angular change of prestressing tendon profile in radians from
tendon jacking end to a point Ÿ
ে
\= Factor relating depth of equivalent rectangular compressive stress
block to neutral axis depth
¡\
\= A factor for type of prestressing steel
¦
\= Curvature friction coefficient
¥
\= Modification factor reflecting the reduced mechanical properties of
lightweight concrete, all relative to normal weight concrete of the
same compressive strength (i.e., ¥ = 1.0 for normal weight
concrete and 0.75 for all lightweight concrete. Else, ¥ shall be
determined based on volumetric proportions of lightweight and
normal weight aggregates, but shall not exceed 0.85.)

\= Ratio of nonprestressed tension reinforcement = -/(y0)

r
\= Ratio of compression reinforcement = -r /(y0)

\
\= Ratio of prestressed reinforcement = -\/Õy0\Ù
•
\= Strength reduction factor
Z
=

/r
Zr
==

r/ür
Z\\
===

\\/r
p
ω
α
p
ω
,

Z^
\= Reinforcement indices for flanged sections computed for Z, Z\
and Zr except that y shall be the web width, and reinforcement
area shall be that required to develop compressive strength of
web only.
For other symbols and units of quantities, reference may be made to Chapter 6.
9.4
Analysis and Design
9.4.1
General

##### 9.4.1.1 Prestressed members shall be designed for adequate strength in

accordance with the provisions of this Chapter.

##### 9.4.1.2 Unless specifically excluded or superseded by the provisions of this

Chapter, all other relevant provisions of this Code shall apply to prestressed
concrete.

##### 9.4.1.3 Design of prestressed members shall be based on strength and on the

behavior at service conditions at all stages that will be critical during the life of
the structure from the time prestress is first applied.

##### 9.4.1.4 Stress concentrations due to prestressing shall be considered in design.

##### 9.4.1.5 Provisions shall be made for effects on adjoining construction of elastic

and plastic deformations, deflections, changes in length and rotations due to
prestressing. Effects of creep, temperature and shrinkage shall also be
considered.

##### 9.4.1.6 The possibility of buckling in a member between points where there is

intermittent contact between prestressing steel and an oversized duct and
buckling in thin webs and flanges shall be considered.

##### 9.4.1.7 In computing section properties before bonding of prestressing steel,

effect of loss of area due to open ducts shall be considered.

##### 9.4.1.8 Thermal gradient and differential shrinkage shall be considered in

composite construction using prestressed concrete members.

##### 9.4.1.9 In evaluating the slenderness effects during lifting of slender beams,

consideration shall be given to beam geometry, location of lifting points, method
of lifting and tolerances in construction. All beams which are lifted on vertical or
inclined slings shall be checked for lateral stability and lateral moment on
account of tilting of beam. Reference may be made to specialist literature in this
regard.
9.4.2
Design Assumptions

##### 9.4.2.1 Strength design of prestressed members for flexure and axial loads shall

be based on assumptions given in Sections 9.4.2.2 to 9.4.2.7 and shall satisfy the
applicable conditions of equilibrium and compatibility of strains.

##### 9.4.2.2 Strains in steel and concrete shall be assumed to be directly

proportional to the distance from the neutral axis except for Deep Beams.

##### 9.4.2.3 If nonprestressed reinforcement conforming to Sec 5.3.2 is used then,

stress in such reinforcements below , shall be taken as  times steel strain.
For strains greater than that corresponding to , stress in reinforcement shall
be considered independent of strain and equal to .

##### 9.4.2.4 Maximum usable strain at extreme concrete compression fiber shall be

assumed equal to 0.003.

##### 9.4.2.5 The relationship between concrete compressive stress distribution and

concrete strain shall be assumed to be rectangular, trapezoidal, parabolic, or
any other shape that results in prediction of strength in substantial agreement
with results of comprehensive tests

##### 9.4.2.6 Requirements of Sec 9.4.2.5 are satisfied by an equivalent rectangular

concrete stress distribution defined by the following:
(a) Concrete stress of 0.85fc′ shall be assumed uniformly distributed over
an equivalent compression zone bounded by edges of the cross
section and a straight line located parallel to the neutral axis at a
distance a=β1c  from the fiber of maximum compressive strain.
(b) Distance from the fiber of maximum strain to the neutral axis, \$ is
measured in a direction perpendicular to the neutral axis.
(প) ঋড়ৎ ৎ নবঃবিবহ ১৭.৫ ধহফ ২৮ গচধ, ে ংযধষষ নব:ধশবহ ধং ০.৮৫. ঋড়ৎ ৎ
ধনড়াব ২৮ গচধ, ে ংযধষষ নব ৎবফঁপবফ ষরহবধৎষু ধঃ ধ ৎধঃব ড়ভ ০.০৫ ভড়ৎ বধপয ৭
গচধ ড়ভ ংঃৎবহমঃয রহ বীপবংং ড়ভ ২৮ গচধ, নঁঃ ে ংযধষষ হড়ঃ নব:ধশবহ ষবংং
than 0.65.

##### 9.4.2.7 For investigation of stresses at transfer of prestress, at service loads,

and at cracking loads, elastic theory shall be used with the following
assumptions:
(i)
Strains vary linearly with depth through the entire load range.
(ii) At cracked sections, concrete resists no tension.
9.4.3
Classification of Prestressed Concrete Members
Prestressed concrete flexural members shall be classified as Class U
(uncracked), Class T (transition) and Class C (cracked) based on , the
computed extreme fiber stress in tension in the pre-compressed tensile zone
calculated at service load as follows:
(a) Class U:    ≤0.62′
(b) Class T:   0.62′ ≤ ≤1.0′
(c) Class C:  > 1.0′

Prestressed two-way slab systems shall be designed as class U with  ≤
0.50′
9.4.4
Shapes of Beams and Girders
For prestressed concrete non-composite beams/girders, the frequently used
shapes are:
(a) Symmetrical I-section,
(b) Unsymmetrical I-section,
(c) T-section,
(d) Inverted T-section,
(e) Box section and
(f)
Solid/hollow rectangular section.
Commentary:
The suitability of selecting a particular shape will depend on the specific design
requirement and economy of construction. In general, T or equal or unequal I-
section are common choices to achieve economy in steel and concrete. Due
consideration to the simplicity of formwork is also required.
9.4.5
Material Properties for Design

##### 9.4.5.1 Concrete Preparation and Design: Concrete shall be prepared, conveyed,

placed/cast, cured, tested and maintained following appropriate sections of
Chapter 5 of the Code. Relevant applicable standards are mentioned in Chapter
5 and also listed in Table 6.9.9. Unless specifically applicable to prestressed
concrete, general design requirements of normal concrete are those of Chapter
6 of the Code.

##### 9.4.5.2 Class: The Class of concrete is defined by the specified strength of

concrete cylinder r at 28 days. For example, Class 20 indicates concrete
cylinder crushing strength of r = 20 N/mm2. Commonly, the classes of concrete
shall be in steps of 5 N/mm2 as given by: Class 20, 25, 30 35… … … … 65 and 70
etc. although concrete in between these classes may also be permitted (like class
21, 24, 28, 31, 38, 42, and 49 etc.).

##### 9.4.5.3 Modulus of Elasticity, : Modulus of elasticity,  for concrete shall be

permitted to be taken as .0.043′ (in N/mm2) for values of  between
1440 and 2560 kg/m3. For normal weight concrete,  may be permitted to be
taken as 4700r.

##### 9.4.5.4 Modulus of Rupture, : Modulus of rupture,  for concrete shall be

permitted to be taken as 0.62 ür where ¥ = 1 for normal weight concrete and

### 0.75 for all lightweight concrete.

##### 9.4.5.5 Reinforcing steel: Appropriate applicable standards for reinforcing steel

are given in Chapter 5 and also listed in Table 6.9.10. Unless specifically
applicable to prestressed concrete, general design requirements of reinforcing
steel are those that has been laid down in Chapter 6 of the Code.

##### 9.4.5.6 Modulus of elasticity, : Where it is not possible to ascertain the

modulus of elasticity of reinforcing steel by test and from the manufacturer of
steel, the modulus of elasticity of reinforcing steel may be permitted to be taken
as  = 200,000 N/mm2.

##### 9.4.5.7 Prestressing Steel: Appropriate applicable standards for prestressing

steel are listed in Table 6.9.11.

##### 9.4.5.8 Modulus of elasticity,  : Where it is not possible to ascertain the

modulus of elasticity of pain/ indented steel wire and prestressing steel (bar or
strand) by test and from the manufacturer of steel, the values of  given in
Table 6.9.1 may be used:
Table 6.9.1: Modulus of Elasticity of Prestressing Steel and Cold Drawn Wire
Type of steel
Modulus of elasticity, Es (kN/mm2)
Plain/indented cold-drawn wire
High tensile steel bars rolled or heat-treated
Strands

9.5
Serviceability Requirements – Flexural Members
9.5.1
Stress in Concrete At Transfer
Stresses in concrete immediately after prestress transfer (before time-
dependent prestress losses occur) are as follows:
(a) Extreme fiber stress in compression except as permitted in (b) shall not
exceed 0.60g
r
(b) Extreme fiber stress in compression at ends of simply support members
shall not exceed 0.70g
r
(c) Where computed concrete tensile strength,  exceeds0.5r  at ends of
simply supported members, or 0.25r at other locations, additional
bonded reinforcement shall be provided in the tensile zone to resist the
total tensile force in concrete computed with the assumption of an
uncracked section.
Allowable stresses in concrete
For Class U and Class T prestressed flexural members, stresses in concrete at
service loads (based on uncracked section properties and after allowance for all
prestress losses) shall not exceed the following:
(a) Extreme fiber stress in compression due to prestress plus
0.45r
sustained load
(b) Extreme fiber stress in compression due to prestress
0.60r
plus total load

9.5.2
Permissible stresses in Sections 9.5.1 and 9.5.2 shall be permitted to be
exceeded if shown by test or analysis that performance will not be impaired.
9.5.3
Reinforcement Spacing

##### 9.5.3.1 For Class C prestressed flexural members not subject to fatigue or to

aggressive exposure, the spacing s of bonded reinforcement nearest the extreme
tension face shall not exceed that for normal Reinforced Concrete, as given
below:

\= 380(280/) −2.5
(6.9.1)
But, not greater than 300(280/), where cc is the least distance from the
surface of reinforcement or prestressing steel to the tension face. If there is only
one bar or wire nearest to the extreme tension face, s used in the above
equation is the width of the extreme tension face.

Calculated stress  in reinforcement closest to the tension face at service loads
shall be computed based on the unfactored moment. It shall be permitted to
take  as
q
½ .
For structures subject to fatigue or exposed to corrosive environments,
investigations, judgment and precautions are required.

##### 9.5.3.2 The spacing requirements Sec 9.5.3.1 shall be met by nonprestressed

reinforcement and bonded tendons.
(a) The spacing of bonded tendons shall not exceed 2/3rd of the
maximum spacing permitted for nonprestressed reinforcement.
Where both reinforcement and bonded tendons are used to meet the
spacing requirement, the spacing between a bar and a tendon shall
not exceed 5/6th of that permitted by 9.5.3.1. See also (c) below.
(b) In applying Eq. 6.9.1 to prestressing tendons, ∆\ shall be
substituted for , where ∆\ shall be taken as the calculated stress in
the prestressing steel at service loads based on a cracked section
analysis minus the decompression stress w. It shall be permitted to
take  w equal to the effective stress in the prestressing steel !. See
also (c) below.
(c) In applying Eq. 6.9.1 to prestressing tendons, the magnitude of
∆\ shall not exceed 250 N/mm2. When ∆\ is less than or equal to
140 N/mm2, the spacing requirements of Sec 9.5.3.2(a) and (b) shall
not apply.
(d) Where depth ℎ of a beam exceeds 900 mm, the area of longitudinal
skin reinforcement consisting of untensioned reinforcing steel or
bonded tendons shall be uniformly distributed along both side faces
of the member as required by Sec 6.3.6.7. The spacing
shall be
determined using Sections 9.5.3.1 and 9.5.3.2 (a), (b) and (c). It shall
be permitted to include such reinforcement in strength computations
if a strain compatibility analysis is made to determine stress in the
individual bars or wires.
9.5.4
Permissible Stresses in Prestressing Steel
Tensile stress in prestressing tendons shall not exceed the following:
(a) Due to prestressing steel jacking force 0.94\ but not greater than the
lesser of 0.80\k and the maximum value recommended by the
manufacturer of prestressing steel or anchorage devices.
(b) Immediately after prestress transfer 0.82\ but not greater
than 0.74\k.
(c) Post-tensioning tendons, at anchorage devices and couplers,
immediately after force transfer 0.70\k

9.6
Losses of Prestress
Effective stress in prestressing steel is usually subject to different losses at
different stages. Superimposed loads can result in gain of prestress due to
bending of the member which shall be taken into consideration if significant. To
determine effective stress in the prestressing steel, !, allowance for the
following sources of loss of prestress shall be considered:
9.6.1
Immediate Losses
(a) Loss due to elastic shortening of concrete;
(b) Loss due to prestressing steel seating at transfer (Anchorage slip);
(c) Loss due to friction (for post-tensioned concrete only).
9.6.2
Long-term Losses
(a) Loss due to relaxation of prestressing steel stress;
(b) Loss due to creep of concrete;
(c) Loss due to shrinkage of concrete.
Unless otherwise determined by actual tests, allowance for these losses shall be
made in accordance with the provisions of Sections 9.6.3 to 9.6.8.
9.6.3
Loss due to Elastic Shortening of Concrete
(a) The loss of prestress due to immediate elastic shortening of adjacent
concrete upon transfer of initial prestress shall be calculated as
specified in this section. For pretensioning, the loss of prestress in the
tendons at transfer shall be calculated on a modular ratio basis using
the stress in the adjacent concrete.
(b) For members with post-tensioned tendons which are not stressed
simultaneously, there is a progressive loss of prestress during
transfer due to the gradual application of the prestressing forces. This
loss of prestress shall be calculated on the basis of half the product of
the stress in the concrete adjacent to the tendons averaged along
their lengths and the modular ratio. Alternatively, the loss of
prestress may be exactly computed based on the sequence of
tensioning.
9.6.4
Loss due to Prestressing Steel Seating at Transfer (Anchorage Slip)
(a) Any loss of prestress which may occur due to slip of wire or strand
during anchoring or due to straining of the anchorage shall be
allowed for in the design.
(b) Necessary additional elongation may be provided for at the time of
tensioning to compensate for this loss.

9.6.5
Loss due to Relaxation of Prestressing Steel Stress
(a) The relaxation losses in prestressing steel shall be determined from
experiments. When experimental values are not available, the
relaxation losses, considering normal relaxation steel, may be
assumed as given in Table 6.9.2.
Table 6.9.2: Relaxation Losses for Prestressing Steel at 1000 Hours at 27oC

Initial Stress
Relaxation Loss N/mm2
0.5\k
0.6\k
0.7\k
0.8\k
For tendons at higher temperature or subject to large lateral loads, greater
relaxation losses may be allowed, subject to the advice of the metallurgy
specialist.
(b) No reduction in the value of the relaxation losses should be made for
a tendon with a load equal to or greater than the relevant jacking
force that has been applied for a short duration prior to the
anchoring of the tendon.
9.6.6
Loss due to Creep of Concrete
(a) Creep occurs due to superimposed permanent dead load added to the
member after it has been prestressed. Creep of concrete may be
assumed to be proportional to the stress provided the stress in
concrete does not exceed 40 percent of its compressive strength.
(b) In the absence of test data, the ultimate creep strain may be
estimated from the following values of creep coefficient, which is the
ratio of the ultimate creep strain to the elastic strain at the age of
loading. Table 6.9.3 shows the values at different days.
Table 6.9.3: Creep Coefficient of Concrete

Age at Loading
Creep coefficient
7 days
2.2
28 days
1.6
1 year
1.1

(c) The ultimate creep strain estimated as above does not include the elastic strain.
For the calculation of deformation at some stage before the total creep is
reached, it may be assumed that 50 percent of the total creep takes place in
the first month after loading and about 75 percent of the total creep takes
place in the first six months after loading. For post-tensioning the creep
coefficients shall be taken as 80% of those given here.
(d) The loss of prestress due to creep of concrete shall be determined for
all the permanently applied loads including the prestress.  Loss due
to stresses of short duration including live load and erection stresses
may be ignored.
(e) The loss of prestress due to creep of concrete shall be obtained as the
product of the modulus of elasticity of the prestressing steel and the
ultimate creep strain of the concrete fiber integrated along the
centre-line of the prestressing steel over its entire length.
(f)
The total creep strain during any specific period shall be assumed to
be the creep strain due to sustained stress equal to the average of the
stresses at the beginning and end of the period.
9.6.7
Loss due to Shrinkage of Concrete
(a) In the absence of test data, the approximate value of shrinkage strain
in concrete for design purposes shall be assumed as follows:

For pretensioning  : 0.0003

For post-tensioning
: ০.০০০২/\[েঠক্ষ্ণ(ন্ + ২)]

Where, t = age of concrete at transfer in days.
Other standard procedures like AASHTO LRFD Specifications may be used.
(b) For the calculation of deformation of concrete at some stage before
the maximum shrinkage occurs it may be assumed that 50 percent of
the shrinkage takes place during the first month and about 75
percent of the shrinkage takes place in the first six months after
drying of concrete starts.
(c) The loss of prestress due to shrinkage of concrete shall be obtained
as the product of the modulus of elasticity of steel and the shrinkage
strain of concrete.

9.6.8
Loss due to Friction (For Post-tensioned Tendons Only)
(a) The design shall take into consideration all losses in prestress that
may occur during tensioning due to friction between the post-
tensioning tendons and the surrounding concrete or any fixture
attached to the steel or concrete.
(ন) ঞযব াধষঁব ড়ভ ঢ়ৎবংঃৎবংংরহম ভড়ৎপব Žা ধঃ ধ ফরংঃধহপব াে সবঃৎব ভৎড়স:যব
jacking end and acting in the direction of the tangent to the curve of
the cable shall be calculated from the relation:
Žv = Ž.•Ø(#eð' \Ö)
(6.9.2)
ডযবহ (	াে + ্বঁ) রং মৎবধঃবৎ:যধহ ০.৩, Žা সধু নব পড়সঢ়ঁঃবফ ভৎড়স
Žv =
ª]
'#eð'\Ö
(6.9.3)
For use in Equations 6.9.2 and 6.9.3, the values of wobble friction
coefficient 	 and curvature friction coefficient µ shall be
experimentally
determined
or
obtained
from
the
tendon
manufacturer, and verified during tendon stressing operations.
(c) Values of 	 and ¦ used in the design shall be shown on design
drawings
(d) In absence of test results or manufacturer's recommendation, the
following values of ¦ and 	 shown in Table 6.9.4 may be taken as a
guide:
Table 6.9.4:  Friction Coefficients (K and µ) for Post-Tensioned Tendons
Types of Tendons
Coefficient,
K per meter
Curvature coefficient,
µ per radian
Grouted Tendons in
metal sheathing

Wire tendons
0.0033-0.0049
0.15-0.25
High-strength
bars
0.0003-0.0020
0.08-0.30
7-wire strand
0.0016-0.0066
0.15-0.25
Unbonded
tendons
Mastic
coated
Wire tendons
0.0033-0.0066
0.05-0.15
7-wire strand
0.0033-0.0066
0.05-0.15
Pre-greased Wire tendons
0.001-0.0066
0.05-0.15
7-wire strand
0.001-0.0066
0.05-0.15

| Types of Tendons                        | Col2                                    | Col3                                                         | Coefficient,<br />K per meter                       | Curvature coefficient,<br />µ per radian |
| --------------------------------------- | --------------------------------------- | ------------------------------------------------------------ | --------------------------------------------------- | ---------------------------------------- |
| Grouted Tendons in<br />metal sheathing | Grouted Tendons in<br />metal sheathing | Wire tendons<br />High-strength<br />bars<br />7-wire strand | 0.0033-0.0049<br />0.0003-0.0020<br />0.0016-0.0066 | 0.15-0.25<br />0.08-0.30<br />0.15-0.25  |
| Unbonded<br />tendons                   | Mastic<br />coated                      | Wire tendons<br />7-wire strand                              | 0.0033-0.0066<br />0.0033-0.0066                    | 0.05-0.15<br />0.05-0.15                 |
| Unbonded<br />tendons                   | Pre-greased                             | Wire tendons<br />7-wire strand                              | 0.001-0.0066<br />0.001-0.0066                      | 0.05-0.15<br />0.05-0.15                 |

9.6.9
Values of wobble and curvature friction coefficients used in design shall
be shown on design drawings.

#### 9.6.10 The effect of reverse friction shall be taken into consideration in such

cases where the initial tension applied to a prestressing tendon is partially
released (e.g., anchorage slip) and action of friction in the reverse direction
causes significant alteration in the distribution of stress along the length of the
tendon.

#### 9.6.11 Where loss of prestress in a member occurs due to connection of

member to adjoining construction, such loss of prestress shall be allowed for in
design.
9.7
Control of Deflection
9.7.1
For prestressed concrete flexural members, designed in accordance
with the provisions of this Chapter, immediate deflection shall be computed by
usual methods or formulas for elastic deflections, and the moment of inertia of
gross concrete section,
gI , shall be permitted to be used for Class U flexural
members.
9.7.2
For Class C and Class T flexural members, deflection calculations shall
be based on cracked transformed section analysis. It shall be permitted to base
calculations on an effective moment of inertia,
eI as given in Eq. 6.9.4a.
•! = ¸
¹±º
¹» ¼
½
•U + ¾1 − ¸
¹±º
¹» ¼
½
¿ •
(6.9.4a)
p =
\`º ÀÁ
#
(6.9.4b)
 = 0.62 ¥ r
(6.9.4c)
Deflection computed in accordance with Sec 9.7.1 shall not exceed the limits
stipulated in Table 6.6.2, Chapter 6.
9.7.3
Additional long-term deflection of prestressed concrete members shall
be computed taking into account stresses in concrete and steel under sustained
load and including effects of creep and shrinkage of concrete and relaxation of
steel.
9.8
Flexural Strength
9.8.1
Design moment strength of flexural members shall be computed by the
strength methods of the Code. For prestressing steel,
ps
f
shall be substituted for
yf in strength computations.

9.8.2
As an alternative to a more accurate determination of
ps
f
based on
strain compatibility, the following approximate values of
ps
f
shall be permitted
to be used if
se
f
is not less than
.
0.5
pu
f

(a) For members with bonded tendons
\ = \k ¾1 −

ÔÐ `\`à
`±Å +
w
w (Z −Zr)a¿
(6.9.5)
Where, Z =
+`Ï
`±Å , Zr =
+Å`Ï
`±Å and ¡\ is 0.55 for \/\k not less than 0.80; 0.40 for
\/\k not less than 0.85; and 0.28 for \/\k not less than 0.90.
If any compression reinforcement is taken into account when calculating \ by
Eq. 6.9.5:
The term ¾
\
`à
\`±Å +
w
w (Z − Zr)¿ shall be taken not less than 0.17 and d' shall be
no greater than 0.15dp.
(b) For members with unbonded tendons and with a span-to-depth ratio of 35
or less:

\ = ! + 70 +
\`±Å
²²+
(6.9.6)
But \ in Eq. 6.9.6 shall not be taken greater than the lesser of \ and
(! + 420).
(c) For members with unbonded tendons and with a span-to-depth ratio
greater than 35:

p
ρ
cf
se
f
ps
f





(6.9.7)
But, \ in Eq. 6.9.7 shall not be taken greater than the lesser of \ and
(! + 210)
9.8.3
Non prestressed reinforcement conforming to Sec 5.3 Chapter 5 of this
Part, if used with prestressing steel, shall be permitted to be considered to
contribute to the tensile force and to be included in moment strength
computations at a stress equal to
.
yf
Other non prestressed reinforcement shall
be permitted to be included in strength computations only if a strain
compatibility
analysis
is
performed
to
determine
stresses
in
such
reinforcement.

9.9
Limits For Flexural Reinforcement
9.9.1
Prestressed concrete sections shall be classified as either tension-
controlled, transition, or compression-controlled sections, in accordance with a.
and b. below.
(a) Sections are compression-controlled if the net tensile strain in the
extreme tension fiber , is equal to or less than the compression-
controlled strain limit when the concrete in compression reaches its
assumed strain limit of 0.003. The compression-controlled strain
limit is the net tensile strain in the reinforcement at balanced strain
conditions. For Grade 420 reinforcement, and for all prestressed
reinforcement, it shall be permitted to set the compression-
controlled strain limit to 0.002.
(b) Sections are tension-controlled if the net tensile strain in the extreme
tension steel, , is equal to or greater than 0.005 when the concrete
in compression reaches its assumed strain limit of 0.003. Sections
with  between the compression-controlled strain limit and 0.005
constitute a transition region between compression-controlled and
tension-controlled sections. Appropriate strength reduction factor, •,
from
Sec 9.9.2 shall apply.
9.9.2
The appropriate strength reduction factor, , shall apply as given in (a)
to (f) below.
(a) Tension-controlled sections
0.90
(b) For compression-controlled sections
(i)
Members with spiral reinforcement as defined in Sec 6.2.3.2.2 0.75
(ii) Other reinforced members
0.65
(c) Shear and torsion
0.75
(d) Post-tensioned anchorage zones
0.85
(e) Strut and tie models
0.75
(f)
Flexural sections in pre-tensioned members where strand embedment
length is less than the development length
(i)
From the end of the member to the end of the transfer length 0.75
(ii) From the end of transfer length to the end of the development
length, • shall be taken as 0.75 to 0.90
Where bonding of the strand does not extend to the end of the member, strand
embedment shall be assumed to begin at the end of the debonded length.

9.9.3
Total amount of prestressed and non-prestressed reinforcement in
members with bonded prestressed reinforcement shall be adequate to develop
a factored load at least 1.2 times the cracking load computed on the basis of the
modulus of rupture
,
cf
as given in Sec 9.4.5.4. This provision shall be
permitted to be waived for flexural members with shear and flexural strength at
least twice the required strength (U) calculated for the factored loads and forces
in such combinations as are stipulated in Chapter 2, Loads.
9.9.4
Minimum Bonded Reinforcement

##### 9.9.4.1 A minimum area of bonded reinforcement shall be provided in all

flexural members with unbonded tendons as required by Sections 9.9.4.2 and
9.9.4.3.

##### 9.9.4.2 Except as provided in Sec 9.9.4.3, minimum area of bonded

reinforcement shall be computed by
- = 0.004-
(6.9.8)
Where, Act is area of that part of cross-section between the flexural tension face
and center of gravity of gross-section.
(a) Bonded reinforcement required by Eq. 6.9.8 shall be uniformly
distributed over pre-compressed tensile zone as close as practicable to
extreme tension fibre.
(b) Bonded reinforcement shall be required regardless of service load
stress conditions.

##### 9.9.4.3 For two-way flat slab systems, minimum area and distribution of

bonded reinforcement shall be as required in (a), (b) and (c) below.
(a) Bonded reinforcement shall not be required in positive moment areas
where , the extreme fibre stress in tension in the precompressed
tensile zone at service loads (after allowance for all prestress losses),
does not exceed 0.17r.
(b) In positive moment areas where computed tensile stress in concrete at
service load exceeds 0.17r minimum area of bonded reinforcement
shall be computed by
- =
m±
². \`Ï
(6.9.9)
Where, the value of  used in Eq. 6.9.9 shall not exceed 420 MPa. Bonded
reinforcement shall be uniformly distributed over precompressed tensile
zone as close as practicable to the extreme tension fibre.

(c) In negative moment areas at column supports, the minimum area of bonded
reinforcement As in the top of the slab in each direction shall be computed by
- = 0.00075-`
(6.9.10)
Where, -` is the larger gross cross-sectional area of the slab-beam strips in two
orthogonal equivalent frames intersecting at a column in a two-way slab.

##### 9.9.4.4 Bonded reinforcement required by Eq. 6.9.10 shall be distributed

between lines that are 1.5ℎ outside opposite faces of the column support. At
least four bars or wires shall be provided in each direction. Spacing of bonded
reinforcement shall not exceed 300 mm.

##### 9.9.4.5 Minimum length of bonded reinforcement required by Sections 9.9.4.2

and 9.9.4.3 shall be as required in Sec 9.9.4.5 (a), (b) and (c).
(a) In positive moment areas, minimum length of bonded reinforcement
ংযধষষ নব ড়হব-ঃযরৎফ:যব পষবধৎ ংঢ়ধহ ষবহমঃয, যে ধহফ পবহঃবৎবফ রহ ঢ়ড়ংরঃরাব
moment area.
(b) In negative moment areas, bonded reinforcement shall extend one-sixth
ঃযব পষবধৎ ংঢ়ধহ, যে ড়হ বধপয ংরফব ড়ভ ংঁঢ়ঢ়ড়ৎঃ.
(c) Where bonded reinforcement is provided for •ph  in accordance with
Sec 9.8.3 or for tensile stress conditions as per Sec 9.9.4.3 (b), minimum
length also shall conform to provisions of Chapter 6.
9.10
Statically Indeterminate Structures

#### 9.10.1 Frames and continuous construction of prestressed concrete shall be

designed for satisfactory performance at service load conditions and for
adequate strength.

#### 9.10.2 Performance at service load conditions shall be determined by elastic

analysis, considering reactions, moments, shears, and axial forces induced by
prestressing, creep, shrinkage, temperature change, axial deformation, restraint
of attached structural elements, and foundation settlement.

#### 9.10.3 Moments used to compute required strength shall be the sum of the

moments due to reactions induced by prestressing (with a load factor of 1.0)
and the moments due to factored loads. Adjustment of the sum of these
moments shall be permitted as allowed in Sec 9.10.4.

#### 9.10.4 Redistribution of moments in continuous prestressed flexural members

shall be:
(a) Where bonded reinforcement is provided at supports in accordance
with Sec 9.9.4, it shall be permitted to decrease negative or positive
moments calculated by elastic theory for any assumed loading, in
accordance with Sec 9.10.4 (b) and (c) below.
(b) Except where approximate values for moments are used, it shall be
permitted to decrease factored moments calculated by elastic theory at
sections of maximum negative or maximum positive moment in any
span of continuous flexural members for any assumed loading
arrangement by not more than 1000 percent, with a maximum of 20
percent.
(c) Redistribution of moment shall be made only when  is equal to or
greater than 0.0075 at the section at which moment is reduced.

#### 9.10.5 The reduced moment shall be used for calculating redistributed

moments at all other sections within the spans. Static equilibrium shall be
maintained after redistribution of moments for each loading arrangement.
9.11
Compression Members - Combined Flexure And Axial Load

#### 9.11.1 Prestressed Concrete Members Subject to Combined Flexure and Axial

Load
With or without non-prestressed reinforcement, Prestressed concrete members
subject to combined flexure and axial load shall be proportioned by the strength
design methods of this Code. Effects of prestress, creep, shrinkage, and
temperature change shall be included.

#### 9.11.2 Limits for Reinforcement of Prestressed Compression Members

9.11.2.1
Members with average compressive stress in concrete less than 1.6
N/mm2, due to effective prestress force only, shall have minimum reinforcement
in accordance with Sections 6.3.9.1, 6.3.9.2 for columns and Sec 6.6.3 for walls
and minimum transverse reinforcement for compression members of Chapter 6.
9.11.2.2
Except for walls, members with average compressive stress in
concrete due to effective prestress force only, equal to or greater than 1.6
N/mm2 shall have all tendons enclosed by spirals or lateral ties in accordance
with (a) through (d).
(a) Spirals shall conform to the spiral reinforcement requirement for
compression members of this Code and Sec 9.11.3.

(b) Lateral ties shall be at least No. 10 in size or welded wire reinforcement
of equivalent area, and shall be spaced vertically not to exceed 48 tie bar
or wire diameters, or the least dimension of the compression member.
(c) Ties shall be located vertically not more than half a tie spacing above
top of footing or slab in any story, and not more than half a tie spacing
below the lowest horizontal reinforcement in members supported
above.
(d) Where beams or brackets frame into all sides of a column, ties shall be
terminated not more than 75 mm below lowest reinforcement in such
beams or brackets.
9.11.2.3
For walls with average compressive stress in concrete due to
effective prestress force only equal to or greater than 1.6 N/mm2, minimum
reinforcement required by Sec 6.6.3 shall not apply where structural analysis
shows adequate strength and stability.

#### 9.11.3 Volumetric Spiral Reinforcement Ratio

Volumetric spiral reinforcement ratio,
s
 shall be not less than the value given
by

 = 0.45 ¸
ßÁ
ß±R −1¼
`±Å
`Ï#
(6.9.11)
Where, the value of  in Eq. 6.9.11 shall not exceed 700 N/mm2. For  greater
than 420 N/mm2, lap splices according to Sec 9.9.3.1(a) shall not be used.
(a) Spiral reinforcement shall be spliced, if needed, by any one of the
following methods:
Lap splices not less than the larger of 300 mm and the length indicated
in Sec 8.1.9.3 (a) to (e) of Chapter 8 and summarized below:
(i) deformed uncoated bar or wire

(ii) plain uncoated bar or wire

(iii) epoxy-coated deformed bar or wire
(iv) plain uncoated bar or wire with a standard stirrup or tie hook in
accordance with Sec 8.1.9.3 (d) of Chapter 8 at ends of lapped spiral
reinforcement.

(ন) ঞযব:বৎস ুংঃধহফধৎফ যড়ড়শচ্ ধং ঁংবফ রহ:যরং ঈড়ফব ংযধষষ সবধহ ড়হব ড়ভ:যব
following:
(i) 180-degree bend plus 401 extension, but not less than 65 mm at
free end of bar.
(ii) 90-degree bend plus 1201 extension at free end of bar.

(c) For stirrup and tie hooks
(i) No. 16 bar and smaller, 90o bend plus 601 extension at free end of
bar; or
(ii) No. 19, No. 22 bar and No. 25 bar, 90o bend plus 1201 extension at
free end of bar; or
(iii) No. 25 bar and smaller, 135o bend plus 601 extension at free end of
bar.
9.12
Slab Systems

#### 9.12.1  Factored moments and shears in prestressed slab systems reinforced

for flexure in more than one direction shall be determined in accordance with
provisions of Sec 6.5.7 Chapter 6 or by more detailed design procedures.
9.12.2
n
M

of prestressed slabs with loads and load combinations required
by Chapter 2 and 6 at every section shall be greater than or equal to
u
M
considering Sections 9.10.3 and 9.10.4.
n
V

(design strength) of prestressed
slabs at columns following Chapter 6 shall be greater than or equal to u
V
(the
required strength, Chapter 2).

#### 9.12.3  At service load conditions, all serviceability limitations, including limits

on deflections, shall be met, with appropriate consideration of the factors listed
in Sec 9.10.2.

#### 9.12.4  For uniformly distributed loads, spacing of tendons or groups of

tendons in at least one direction shall not exceed the smaller of eight times the
slab thickness and 1.5 m. Spacing of tendons also shall provide a minimum
average effective prestress of 0.9 N/mm2 on the slab section tributary to the
tendon or tendon group. For slabs with varying cross section along the slab
span, either parallel or perpendicular to the tendon or tendon group, the
minimum average effective prestress of 0.9 N/mm2 is required at every cross
section tributary to the tendon or tendon group along the span. Concentrated
loads and opening in slabs shall be considered when determining tendon
spacing.

#### 9.12.5  In slabs with unbonded tendons, bonded reinforcement shall be

provided in accordance with Sections 9.9.4.3 to 9.9.4.5.

#### 9.12.6  Except as permitted in Sec 9.12.7, in slabs with unbonded tendons, a

minimum of two 12.7 mm diameter or larger, seven-wire post-tensioned
strands shall be provided in each direction at columns, either passing through
or  anchored within the region bounded by the longitudinal reinforcement of the
column. Outside column and shear cap faces, these two structural integrity
tendons shall pass under any orthogonal tendons in adjacent spans. Where the
two structural integrity tendons are anchored within the region bounded by the
longitudinal reinforcement of the column, the anchorage shall be located beyond
the column centroid and away from the anchored span.

#### 9.12.7  Prestressed slabs not satisfying Sec 9.12.6 shall be permitted provided

they contain bottom reinforcement in each direction passing within the region
bounded by the longitudinal reinforcement of the column and anchored at
exterior supports as required by Sec 6.5.3.8 Chapter 6. The area of bottom
reinforcement in each direction shall be not less than 1.5 times that required by
Eq. 6.9.12 as given below.
-,fgh =
².q`±Å
`Ï
y^0
(6.9.12)
and not less than 2.1y^0/, where y^ is the width of the column face through
which the reinforcement passes. Minimum extension of these bars beyond the
column or shear cap face shall be equal to or greater than the bar development
length required by Sec 8.2.

#### 9.12.8 In lift slabs, bonded bottom reinforcement shall be detailed in

accordance with Sec 9.12.9.

#### 9.12.9  In slabs with shear heads and in lift slab construction where it is not

practical to pass to the bottom bars, required by bar detailing requirement of
Sec 6.5.3.8 Chapter 6, at least two bonded bars or wires in each direction shall
pass through the shear head or lifting collar as close to the column as
practicable and be continuous or spliced with a Class A splice. At the exterior
columns, the reinforcement shall be anchored the spear head or lifting collar.

9.13
Post-Tensioned Tendon Anchorage Zones

#### 9.13.1 Division into Zones

The anchorage zone shall be considered as composed of two zones as described
below and shown in Figure 6.9.1.
(a) The local zone is the rectangular prism (or equivalent rectangular
prism for circular or oval anchorages) of concrete immediately
surrounding the anchorage device and any confining reinforcement;
(b) The general zone is the anchorage zone beyond the local zone.

Figure 6.9.1 Anchorage zones

#### 9.13.2 Local Zone

9.13.2.1
Design of local zones shall be based upon the factored prestressing
force, Ž\k and the requirements of Sections 9.9.2 (d)-(f) and 9.13.2.2.
9.13.2.2
For post-tensioned anchorage zone design, a load factor of 1.2 shall
be applied to the maximum steel jacking force.
9.13.2.3
Local-zone reinforcement shall be provided where required for
proper functioning of the anchorage device.

#### 9.13.3 General Zone

9.13.3.1
Design of general zones shall be based upon the factored
prestressing force, Ž\k and the requirements of Sec 9.4.14.3 b and c.
9.13.3.2
General-zone reinforcement shall be provided where required to
resist bursting, spalling, and longitudinal edge tension forces induced by
anchorage devices. Effects of abrupt change in section shall be considered.
The general zone requirements of Sec 9.13.3.2 are satisfied by Sections 9.13.4,
9.13.5, and 9.13.6 and whichever one of Sec 9.4.15.2 or Sec 9.4.15.3 or Sec

##### 9.4.16.3 is applicable.

#### 9.13.4 Design Methods

9.13.4.1
The following methods shall be permitted for the design of the
general zones of the prestressed components provided that the specific
procedures used result in prediction of strength in substantial agreement with
results of comprehensive tests:
(a) Equilibrium-based plasticity models (strut-and-tie models);
(b) Linear stress analysis (including finite element analysis or
equivalent); or
(c) Simplified equations where applicable.
9.13.4.2
Simplified equations shall not be used where member cross-sections
are nonrectangular, where discontinuities in or near the general zone cause
deviations in the force flow path, where minimum edge distance is less than 1-
1/2 times the anchorage device lateral dimension in that direction, or where
multiple anchorage devices are used in other than one closely spaced group.
9.13.4.3
The stressing sequence shall be considered in the design and
specified on the design drawings.
9.13.4.4
Three-dimensional effects shall be considered in design and analyzed
using three-dimensional procedures or approximated by considering the
summation of effects for two orthogonal planes.
9.13.4.5
For anchorage devices located away from the end of the member,
bonded reinforcement shall be provided to transfer at least 0.35-\\k into the
concrete section behind the anchor. Such reinforcement shall be placed
symmetrically around the anchorage devices and shall be fully developed both
behind and ahead of the anchorage devices.

9.13.4.6
Where tendons are curved in the general zone, except for mono-
strand tendons in slabs or where analysis shows reinforcement is not required,
bonded reinforcement shall be provided to resist radial and splitting forces.
9.13.4.7
Except for mono-strand tendons in slabs or where analysis shows
reinforcement is not required, minimum reinforcement with a nominal tensile
strength equal to 2 percent of each factored prestressing force shall be provided
in orthogonal directions parallel to the back face of all anchorage zones to limit
spalling.
9.13.4.8
Tensile strength of concrete shall be neglected in calculations of
reinforcement requirements.

#### 9.13.5 Nominal Material Strengths

9.13.5.1
Tensile stress at nominal strength of bonded reinforcement is limited
to  for
nonprestressed
reinforcement
and
to
\
for prestressed
reinforcement. Tensile stress at nominal strength of unbounded prestressed
reinforcement for resisting tensile forces in the anchorage zone shall be limited
to \ = ! + 70.
9.13.5.2
Except for concrete confined within spirals or hoops providing
confinement equivalent to that corresponding to Eq. 6.9.11, compressive
strength in concrete at nominal strength in the general zone shall be limited to
0.7¥g
r .
9.13.5.3
Concrete strength at transfer (Anchorage): Unless oversize
anchorage devices are sized to compensate for the lower compressive strength
or the prestressing steel is stressed to no more than 50 percent of the final
prestressing force, prestressing steel shall not be stressed until compressive
strength of concrete as indicated by tests consistent with the curing of the
member, is at least 28 N/mm2 for multi-strand tendons or at least 17 N/mm2 for
single-strand or bar tendons. Compressive strength of concrete at the time of
post-tensioning shall be specified in the contract documents and in design
drawings.

#### 9.13.6 Detailing Requirements

Selection of reinforcement sizes, spacing, cover, and other details for anchorage
zones shall make allowances for tolerances on the bending, fabrication, and
placement of reinforcement, for the size of aggregate, and for adequate
placement and consolidation of the concrete.

9.14
Design of Anchorage Zones For Monostrand or Single 16 Mm
Diameter Bar Tendons

#### 9.14.1 Local Zone Design

Monostrand or single 16 mm diameter or smaller diameter bar anchorage
devices and local zone reinforcement shall meet the requirements of ACI 423.7
or the special anchorage device requirements of Sec 9.15.2.

#### 9.14.2 General Zone Design for Slab Tendons

9.14.2.1
For anchorage devices of 12.7 mm diameter or smaller diameter
strands in normal weight concrete slabs, minimum reinforcement meeting the
requirements of Sections 9.14.2.2 and 9.14.2.3 shall be provided unless a
detailed analysis satisfying Sec 9.13.4 shows such reinforcement is not required.
9.14.2.2
Two horizontal bars at least 12 mm diameter in size shall be
provided parallel to the slab edge. They shall be permitted to be in contact with
the front face of the anchorage device and shall be within a distance of h/2
ahead of each device. Those bars shall extend at least 150 mm either side of the
outer edges of each device.
9.14.2.3
If the center-to-center spacing of anchorage devices is 300 mm or
less, the anchorage devices shall be considered as a group. For each group of six
or more anchorage devices, (n+1) hairpin bars or closed stirrups at least No. 10
in size shall be provided, where n is the number of anchorage devices. One
hairpin bar or stirrup shall be placed between each anchorage device and one
on each side of the group. The hairpin bars or stirrups shall be placed with the
legs extending into the slab perpendicular to the edge. The center portion of the
hairpin bars or stirrups shall be placed perpendicular to the plane of the slab
from 3h/8 to h/2 ahead of the anchorage devices.
9.14.2.4
For anchorage devices not conforming to Sec 9.14.2.1, minimum
reinforcement shall be based upon a detailed analysis satisfying Sec 9.13.4.

#### 9.14.3 General Zone Design for Groups of Monostrand Tendons in Beams and

Girders
Design of general zones for groups of monostrand tendons in beams and girders
shall meet the requirements of Sections 9.13.3 and 9.13.4.
9.15
Design of Anchorage Zones For Multi-Strand Tendons

#### 9.15.1 Local Zone Design

Basic multistrand anchorage devices and the related local and general zone
ৎবরহভড়ৎপবসবহঃ ংযধষষ সববঃ:যব ৎবয়ঁরৎবসবহঃং ড়ভ অঅঝঐঞঙ ুখজঋউ ইৎরফমব উবংরমহ
ঝঢ়বপরভরপধঃরড়হং (ঝও), ২০০৭চ্, অৎঃরপষবং ৫.১০.৯.৬, অঢ়ঢ়ৎড়ীরসধঃব ঝঃৎবংং অহধষুংরং ধহফ
Design, and 5.10.9.7, Design of Local Zones.

ঝঢ়বপরধষ অহপযড়ৎধমব উবারপবং (অঅঝঐঞঙ ুখজঋউ ইৎরফমব উবংরমহ ঝঢ়বপরভরপধঃরড়হং (ঝও),
২০০৭চ্, অৎঃরপষবং ৫.১০.৯.৭.৩) ৎবয়ঁরৎবং:যধঃ ংঢ়বপরধষ ধহপযড়ৎধমব ফবারপবং:যধঃ ফড় হড়ঃ
satisfy the requirements specified in Sec 9.15.1,  they have been tested by an
independent testing agency acceptable to the Engineer and have met the
acceptance criteria specified in Articles 10.3.2 and 10.3.2.3.10 of AASHTO LRFD
Bridge Construction Specifications.

#### 9.15.2 Special Anchorage Devices

Where special anchorage devices are to be used, supplemental skin
reinforcement shall be furnished in the corresponding regions of the anchorage
zone, in addition to the confining reinforcement specified for the anchorage
device. This supplemental reinforcement shall be similar in configuration and at
least equivalent in volumetric ratio to any supplementary skin reinforcement
used in the qualifying acceptance tests of the anchorage device.

#### 9.15.3 General Zone Design

Design for general zones for multistrand tendons shall meet the requirements of
Sections 9.13.3 to 9.13.5.
9.16
Cold Drawn Low Carbon Wire Prestressed Concrete (Cwpc)

#### 9.16.1 CWPC (Cold drawn wire prestressed concrete) is termed as prestressed

concrete technology of Chinese pattern. This technology is a modification of
conventional prestressed concrete. In the conventional prestressed concrete
high strength wire is used as reinforcement while in Chinese pattern cold drawn
low carbon mild steel wire is used as such this technology is named as cold
drawn wire prestressed concrete. In short it is termed as CWPC. CWPC
technology is a process whereby cold drawn low carbon steel wire has been
adopted as reinforcement for pre-fabricated prestressed concrete members of
medium and small size as produced by pre tensioning method. On the other
hand, large size structural members are produced by conventional prestressed
concrete. The main features and advantages of CWPC technology can be
summarized as follows:
(a) Availability (Availability of materials): The raw material of cold drawn
wire is made from low carbon mild steel which can be supplied by the
local mills. The tensioning process of cold-drawn wire and production of
pre-cast members are also simple and very easy to handle.

(b) Simplicity (Simplicity of equipment and devices for production): The
cold process of low carbon mild steel and prefabrication process of
members are done using simple equipment and devices. The precise
and large sized equipment are not necessary. The production
techniques of manufacturing members are rather simple.
(c) Quality (Good in quality): The members so manufactured have high
crack resistance and stiffness. After pre-tensioning no crack would
occur under the service load, thus the wires within the concrete
members are well protected. In contrast to conventional reinforced
concrete members under the same service conditions, they have
comparatively high durability to ensure long term quality.
(d) Economy (Low cost): The cold drawn low carbon steel wire used for
prestressing is made of ordinary hot-rolled carbon steel coil rod. This is
processed at room temperature through a special wire drawing die. The
low carbon coil rods are manufactured by the steel mills; the wires are
processed at the construction site or in a prefabrication plant; or are
supplied by the cold drown wire plants as readymade products. By cold
drawing the low carbon rod into wires the usable strength is enhanced
about twice as much as that of the coil rod. This reduces the amount of
steel required in prefabricating prestressed concrete members.
(e) Therefore, in comparison with conventional reinforced concrete
reinforced with common carbon steel, a prestressed concrete member
reinforced with cold drawn wire would have saving of steel
consumption between 30-40%. Furthermore, since prestressed
concrete members have high stiffness a reduction of cross section of
members is possible. A considerable amount of concrete can also be
saved and hence transportation, handling and erection work can be
reduced.
(f) Light weight (Lightness in weight): As already mentioned that the
stiffness of prestressed concrete members may be enhanced, the
dimension of its cross-section can be reduced correspondingly. This not
only results in reduction of concrete volume but also its dead weight
which is estimated as 10-30%.

#### 9.16.2 Materials

Basically the materials used in CWPC technology are steel and concrete.
(a) Steel: steel used for CWPC is obtained by cold drawing. Cold drawing as
already mentioned is a process of reducing the diameter of the coil rod
by forcing it to pass through a conical die. By this process, the usable
strength of steel can be increased by nearly 100%.
(b) Concrete: The requirement of concrete in CWPC is same as that of
ordinary reinforced concrete.

#### 9.16.3 Design

Similar to other reinforced concrete structures, CWPC structures have a
complete set of design specification and computational approaches by which
various members of the CWPC can be designed. In the design of prestressed
members the function of pre-stressing force and pre-stressing losses should be
calculated. CWPC members should be checked for its strength, stability and
cracking resistance respectively at different stages including service,
manufacturing, handling, erection and construction. In designing members
conformity to local specifications should be considered.
Cold drawn low carbon wire conforming to ASTM A615 or equivalent may be
permitted for prestressing provided the mechanical requirements shown in
Table 6.9.5 are satisfied.
Table 6.9.5: Tensile Strength and Elongation of Cold Drawn Wire
Diameter of wire
(mm)
Minimum tensile
strength (N/mm2)
Minimum elongation
(percent)
2.0
2.5
3.0
9.17
External Post-Tensioning

#### 9.17.1 Post-tensioning tendons shall be permitted to be external to any

concrete section of a member. The strength and serviceability design methods of
this Code shall be used in evaluating the effects of external tendon forces on the
concrete structure.

#### 9.17.2 External tendons shall be considered as unbonded tendons when

computing flexural strength unless provisions are made to effectively bond the
external tendons to the concrete section along its entire length.

#### 9.17.3 External tendons shall be attached to the concrete member in a manner

that maintains the desired eccentricity between the tendons and the concrete
centroid throughout the full range of anticipated member deflection.

#### 9.17.4 External tendons and tendon anchorage regions shall be protected

against corrosion, and the details of the protection method shall be indicated on
the drawings or in the project specifications.

9.18
Performance Requirement Of Prestressed Concrete Design

#### 9.18.1 Classification of Performance Requirement

After the outline of the member dimensions are determined and the most
suitable kind and type of prestressing options are selected at the structural
planning stage, the prestressed concrete non-composite and composite
structures and members shall satisfy all of the required performances such as
safety, serviceability, restorability, durability, reparability, societal and
environmental compatibility, etc. at every stage of design, construction and
maintenance throughout the design life of the structure. Table 6.9.6 gives the
performance requirement of prestressed concrete structures and components
and related performance items.
Table 6.9.6: Classification of Performance Requirement for Prestressed Concrete
Structures
Performance
requirements
Performance
item
Examples of check items
Example of verification
index
Safety
Structural
safety
Resistance of whole
structure, components,
stability, deformation
performance
Stress resultant, stress
Public safety
Injury to users and third
parties
-------

Serviceability
Live load
operating
performance
Soundness and rigidity of
structures /members under
usual conditions
Floor flatness, deformation
of main girder
User comfort
User-comfort under walking-
induced vibrations
Natural frequency of main
girders
Restorability
Restorability
after
earthquake,
cyclone, tidal
bore, fire, etc.
Level of damage (ease of
restoration)
Response value (damage
level)/ limit value of
performance (damage
level)
Durability
Fatigue
resistance
Fatigue durability against
variable actions
Equivalent stress range/
allowable stress range
Corrosion
resistance
Rust prevention and
corrosion protection
performance of steel material
Corrosion environment
and surface finish, paint
specification
Resistance to
material
deterioration
Concrete deterioration
Water- cement ratio, cover
of concrete
Maintainability Ease of maintenance
(inspection, ease of repair,
etc.) and ease of restoration
-----------------------------

Performance
requirements
Performance
item
Examples of check items
Example of verification
index
Social and
environmental
compatibility
Social
compatibility
Appropriateness of partial
factor (consideration of
social importance of
structure)
Partial factor, structural
factor, etc.
Economic
rationality
Social utility during life cycle
of structure
Life cycle cost (LCC), life
cycle utility (LTU)
Environment
al
compatibility
Noise, vibration,
environmental impact,
aesthetics, etc.
Noise and vibration levels
for surrounding residents,
aesthetic reaction to
structural shape and color,
monumental aspect, etc.
Constructabili
ty /
workability
Safety during
construction
Safety during construction
Stress resultant, stress,
deformation
Initial
soundness
Material quality, welding
quality, etc.
Material properties,
workmanship
Ease of
construction
Ease of fabrication and
construction work
User-friendly construction
methodology conceived at
design stage

#### 9.18.2 Performance Verification Method

(a) Performance verification shall be based on the partial factor method on the
basis of reliability theory and as a standard design procedure, it shall be
based on the limit state method.
(b) In general verification shall be based on design responses to design actions,
design limits as determined by design material strengths, and individual
partial factors. The performance of the structure shall, in general, be verified
using Equations 6.9.13 and 6.9.14:
¡g
dí
Xí ≤1.0
(6.9.13)
¡g
∑»dÕÎ5eÙ
X(\`e/×) ≤1.0
(6.9.14)
Where,
šw
:  design resistance
(
:  characteristic value of material strength
¡f
:  material factor
¡1
:  structural member factor

R(…)
:  function for calculating limit value of structure from
material strength
.w
:  design response
ƒ(
:  individual characteristic value of action
a


:  structural analysis factor
f


:  action factor corresponding to each action (load factor)
S(…)
:  function for calculating response value of structure
from action
i

:  structural factor
(c) During design, a verification shall be carried out for every limit state that
can be considered.
(d) The flow chart explaining the concept of verification of safety is given in
Figure 6.9.2.

Figure 6.9.2 Flow chart explaining the concept of verification of safety
Verification: ¡g
dí
Xí ≤1.0
Design action effect: .w = ¡2.(ƒw)
Design resistance: šw = š(w)/¡1
Action effect: .(ƒw)
¡\{
Resistance: š(w)
¡1
Characteristic value of action: ƒ(
¡\`
Characteristic value of material
strength: ( ¡>
Design Action Effect
Design Resistance R
Verification of Safety

#### 9.18.3 Partial Factors

(a) Partial factors shall be determined on the concept given (i) and (ii) below.
(i) The material factor, structural member factor, structural analysis factor,
and action factor shall be determined in consideration of

unfavorable deviations from characteristic values,

uncertainties in computational accuracy, and

discrepancies between design and practice with respect to actions
or structures and materials.
Table 6.9.7 shows the standard values of partial factors.
(ii) The structural factor ¡g shall be determined according to structural
importance and also the social and economic impact of the structure
reaching its limit state.
Table 6.9.8 shows the standard values of structural factor ¡õ for different
performance items.
Table 6.9.7: Standard Values of Partial Factors
Performance Item
Action
Factor,  f
Structural Analysis
Factor, fg
Material
Factor,  f1
Structural Member
Factor,  f
Structural safety
1.0 ῀1.6
1.0 ῀1.1
1.0 ῀1.05
1.0 ῀1.3
Serviceability
(user comfort)
1.0
1.0
1.0 ῀1.05
1.0
Durability
(fatigue
resistance)
1.0 ῀1.1
1.0
1.0
1.0 ῀1.1
Table 6.9.8: Standard Values of Structural Factors
Performance item
Structural factor  fõ
Structural safety
1.0 ῀1.2
Serviceability (User comfort)
1.0
Durability (fatigue resistance)
1.0

Division B: Material and Construction (Sections 9.19 To 9.21)
9.19
Materials

#### 9.19.1 Concrete Ingredients and Applicable ASTM Standards

Table 6.9.9 shows the list of commonly applicable standards for cement, coarse
and fine aggregates, admixtures and mixing water.
Table 6.9.9: Applicable Standards for Cement, Coarse and Fine Aggregates,
Admixtures and Water
Material
Designation of
the Standard
Title of the Standard
Concrete
ASTM C39
Compression testing of cylindrical concrete
specimens
Cement
BDS EN 197-1
Part
1:
Composition,
specifications
and
conformity criteria for common cements
Fine and
Coarse
aggregates
ASTM C136
Standard test method for sieve analysis of fine
and coarse aggregates

ASTM C40
Standard test method for organic impurities in
fine aggregates for concrete

ASTM C142
Clay lumps and friable particles

ASTM C127
Specific gravity and absorption of coarse
aggregate

ASTM C128
Specific gravity and absorption of fine aggregate

ASTM C131
Degradation of small-size coarse aggregate by
L.A. abrasion test

ASTM C29
Unit weights and voids in aggregates

ASTM C70
Surface moisture in fine aggregate Soundness of
aggregates by use of sodium sulfate or
magnesium sulfate

ASTM C88
Soundness of aggregates by use of sodium
sulfate or magnesium sulfate

ASTM C227
Alkali reactivity, potential of cement aggregate
combinations

Material
Designation of
the Standard
Title of the Standard

ASTM C1260
Potential alkali reactivity of aggregates (Mortar-
bar method)

ASTM D2419
Sand equivalent value of soils and fine aggregate
Admixtures
ASTM C494
Type A – Water reducing

Type B – Retarding

Type C – Accelerating

Type D – Water reducing and retarding

Type E  – Water reducing and accelerating

Type F  – Water reducing, high range

Type G – Water reducing, high range and
retarding

Type S  – Specific performance admixture
Mixing Water
ASTM C
1602/C1602M
Standard specification for mixing water used in
the production of hydraulic cement concrete

#### 9.19.2 Reinforcing Steel and Applicable Standards

Table 6.9.10 shows the types of reinforcing steel with the ASTM and BDS
Designation standard specifications.
Table 6.9.10: List of Standards for the Reinforcing Steel
Material
Designation of
the Standard
Title of the Standard
Reinforcin
g Steel
BDS ISO 6935-2 Bangladesh standard, Steel for the reinforcement of
concrete, Part 2: Ribbed bars (1st revision)
ASTM
A615/A615M
Standard specifications for deformed and plain
carbon steel bars for concrete reinforcement
ASTM
A706/A706M
Standard specifications for low-alloy steel deformed
and
plain
carbon
steel
bars
for
concrete
reinforcement

A775/A775M
Standard Specification for Epoxy-Coated Steel
Reinforcing Bars

Material
Designation of
the Standard
Title of the Standard

A884/A884M
Standard Specification for Epoxy-Coated Steel Wire
and Welded Wire Reinforcement

A934/A934M
Standard
Specification
for
Epoxy-Coated
Prefabricated Steel Reinforcing Bars

ASTM A996/
A996M
Specification for Axle Steel Deformed and Plain Bars
for Concrete Reinforcement

ASTMA996/
A996M
Specification for Rail Steel Deformed and Plain Bars
for
Concrete
Reinforcement"
Including
Supplementary Requirements S1

#### 9.19.3 Prestressing Steel and Applicable ASTM Standards

Table 6.9.11 shows the types of high tensile prestressing steel and cold drawn
wires used for prestressing, with the ASTM Designation standard specifications.
Table 6.9.11: List of Standards for the Prestressing Steel
Material
Designation of the
Standard
Title of the Standard
Prestressin
g Steel
A416/A416M
Standard Specification for Steel Strand,
Uncoated
Seven-Wire
for
Prestressed
Concrete

A421/A421M
Standard Specification for Uncoated Stress-
Relieved Steel Wire for Prestressed Concrete

ASTM A648
Standard specification for steel, wire, hard
drawn for prestressing concrete pipe

A722/A722M
Standard Specification for Uncoated High-
Strength Steel Bars for Prestressing Concrete
9.20
Construction of Prestressed Concrete Structures

#### 9.20.1 Corrosion Protection for Unbonded Tendons

9.20.1.1
Unbonded prestressing steel shall be encased with sheathing. The
prestressing steel shall be completely coated and the sheathing around the
prestressing steel filled with suitable material to inhibit corrosion.
9.20.1.2
Sheathing shall be watertight and continuous over entire length to
be unbonded.

##### 9.20.1.3 For applications in corrosive environments, the sheathing shall be

connected to all stressing, intermediate and fixed anchorages in a water tight
fashion.

##### 9.20.1.4 Unbonded single-strand tendons shall be protected against corrosion in

accordance with ACI 423.7.

#### 9.20.2 Post-tensioning Ducts

9.20.2.1
Ducts for grouted tendons shall be mortar- tight and nonreactive
with concrete, prestressing steel, grout, and corrosion inhibitor.
9.20.2.2
Ducts for grouted single-wire, single-strand, or single-bar tendons
shall have an inside diameter at least 6 mm larger than the prestressing steel
diameter.
9.20.2.3
Ducts for grouted multiple wire, multiple strand, or multiple bar
tendons shall  have an inside cross-sectional area at least two times the cross-
sectional area of the prestressing steel.
9.20.2.4
Ducts shall be maintained free of ponded water if members to be
grouted are exposed to temperatures below freezing prior to grouting.

#### 9.20.3 Grout for Bonded Tendons

9.20.3.1
Grout shall consist of Portland cement and water; or Portland
cement, sand, and water.
9.20.3.2
Materials for grout shall conform to Sections 9.20.3.3 to 9.20.3.5.
9.20.3.3
Portland cement shall conform to Sec 9.19.1.
9.20.3.4
Water shall conform to Sec 9.19.1.
9.20.3.5
Sand, if used, shall conform to Sec 9.19.1 except that gradation shall
be permitted to be modified as necessary to obtain satisfactory workability.
9.20.3.6
Admixtures conforming to Sec 9.19.1 and known to have no injurious
effects on grout, steel, or concrete shall be permitted. Calcium chloride shall not
be used.

#### 9.20.4 Selection of Grout Proportions

##### 9.20.4.1 Proportions of materials for grout shall be based on either (a) or (b)

below.
(a) Results of tests on fresh and hardened grout prior to beginning grouting
operations; or
(b) Prior documented experience with similar materials and equipment and
under comparable field conditions.

9.20.4.2
Cement used in the Work shall correspond to that on which selection
of grout proportions was based.
9.20.4.3
Water content shall be minimum necessary for proper pumping of
grout; however, water-cement ratio shall not exceed 0.45 by weight.
9.20.4.4
Water shall not be added to increase grout flowability that has been
decreased by delayed use of the grout.

#### 9.20.5 Mixing and Pumping of Grout

9.20.5.1
Grout shall be mixed in equipment capable of continuous mechanical
mixing and agitation that will produce uniform distribution of materials, passed
through screens, and pumped in a manner that will completely fill the ducts.
9.20.5.2
Temperature of members at time of grouting shall be above 2°C and
shall be maintained above 2°C until field-cured 50 mm cubes of grout reach a
minimum compressive strength of 5.5 N/mm2.
9.20.5.3
Grout temperatures shall not be above 32°C during mixing and
pumping.

#### 9.20.6 Protection for Prestressing Steel During Welding

Burning or welding operations in the vicinity of prestressing steel shall be
performed so that prestressing steel is not subject to excessive temperatures,
welding sparks, or ground currents.

#### 9.20.7 Application and Measurement of Prestressing Force

9.20.7.1
Prestressing force shall be determined by both of (a) and (b):
(a) Measurement of steel elongation. Required elongation shall be
determined from average load-elongation curves for the prestressing
steel used;
(b) Observation of jacking force on a calibrated gage or load cell or by use of
a calibrated dynamometer.
Cause of any difference in force determination between (a) and (b) that exceeds
5 percent for pretensioned elements or 7 percent for post-tensioned
construction shall be ascertained and corrected.

##### 9.20.7.2  Where the transfer of force from the bulk- heads of pretensioning bed

to the concrete is accomplished by flame cutting prestressing steel, cutting
points and cutting sequence shall be predetermined to avoid undesired
temporary stresses.

##### 9.20.7.3  Long lengths of exposed pretensioned strand shall be cut near the

member to minimize shock to concrete.

##### 9.20.7.4  Total loss of prestress due to unreplaced broken prestressing steel

shall not exceed 2 percent of total prestress.

#### 9.20.8 Post-tensioning Anchorages and Couplers

9.20.8.1
Anchorages and couplers for bonded and unbonded tendons shall
develop at least 95 percent of the \k when tested in an unbonded condition,
without exceeding anticipated set. For bonded tendons, anchorages and
couplers shall be located so that 100 percent of \k shall be developed at critical
sections after the prestressing steel is bonded in the member.
9.20.8.2
Couplers shall be placed in areas approved by the licensed design
professional and enclosed in housing long enough to permit necessary
movements.
9.20.8.3
In unbonded construction subject to repetitive loads, attention shall
be given to the possibility of fatigue in anchorages and couplers.
9.20.8.4
Anchorages, couplers, and end fittings shall be permanently
protected against corrosion.
9.21
Performance Requirement of Material

#### 9.21.1 The fundamental performance requirement of materials forming the

structure is that they should be able to resist actions such as the various
loadings to which the structure is exposed.

#### 9.21.2 Materials forming the structure should not reach unexpected limit

states as a result of deterioration phenomena during the working life of the
structure.

#### 9.21.3 Materials-related energy consumption and CO2 discharges should be

minimized, while recyclability should be high.
Any materials that escape into the surrounding environment during
construction and service should not have a strong impact on human beings,
animals and plants.
Commentary:
Corresponding to design requirements, the materials should be evaluated to
ensure that their properties are suitable with respect to strength (tensile,
compressive and shear), deformation (e.g. elastic modulus), heat resistance and
water tightness.
The characteristic values obtained from the tests, complying appropriate BDS,
ASTM, BS, or equivalent standards, on such specimens should be converted to
suit the design calculation models using appropriate conversion factors or
functions. The characteristic value of material strength ( is calculated from test
results using Eq. 6.9.15.
( = f −\*i
(6.9.15)

Where,  f: mean of test values, σ : standard deviation of test values, and k:
coefficient of variance. The coefficient k is determined from the probability of
obtaining a test value less than the characteristic value and the probability
distribution of test results. The 5% fractile value is often taken as the
characteristic value. In this case, the value of k is 1.64 if the normal distribution
is assumed for the test values.
At the structural design stage, verification shall be performed so that response
value is less than or equal to the limit value of performance throughout both
construction period and working life. At the end of construction stage, just
completed structure shall fulfill the all required performances considered in its
design.
Division C :  Maintenance (Sections 9.22 To 9.27)
9.22
General
If the prestressed concrete structure is designed and constructed in accordance
with the appropriate concepts described in Part I and II of this Chapter, based
on which the durability is checked by verifying the performance requirements
of the concrete and its constituent materials, it is not likely that structural
deterioration would become so significant as to degrade the performance of the
structure. On the other hand it is not easy to estimate the performance
degradation process of the structure during its service life accurately. Also, it is
difficult to completely avoid construction defects at all construction stages.
Therefore, the new structure should be appropriately maintained by routine
and regular inspections, based on an adequate maintenance plan formulated at
the design stage.
For existing structures, deterioration may be evident in some cases, with the
performance having been degraded. The defects of such structures should be
accurately assessed and identified as initial defects, damage, or deteriorations.
Major causes for such defects should be identified subsequently so that
appropriate remedial actions can be selected. The initial defects and damage
should be treated promptly and appropriately including emergency treatments.
When the deterioration that would degrade the performance is evident, the
deterioration mechanisms should be identified and appropriate maintenance,
carried out based on the results of deterioration prediction and performance
degradation evaluation.

9.23
Classification of Maintenance Action
Maintenance actions shall be classified into different categories depending on
such factors as the importance of the structure, design life, impact on a third
party, environmental conditions, ease of maintenance, and cost.
In the view of the above, four categories are recommended for the
classifications of the maintenance actions:

#### 9.23.1 Category A : Preventive Maintenance

Maintenance to prevent deterioration which would otherwise lead to
unsatisfactory structural performance. Category A structures are those

for which remedial actions are difficult to take after deterioration
becomes apparent;

of which deterioration must not be apparent;

having a long design life.
Structures in this category generally have a high degree of importance which in
many cases require monitoring.

#### 9.23.2 Category B : Corrective Maintenance

Maintenance to restore the performance level and/or to reduce the rate of
deterioration so as to maintain satisfactory structural performance. Category B
structures are those for which

remedial measures can be taken after deterioration becomes apparent;

apparent deterioration causes no appreciable inconvenience.

#### 9.23.3 Category C : Observational Maintenance

Maintenance in which visual inspection is necessary without any remedial
action regardless of the deterioration level. Category C structures are those

for use as long as they are usable;

for which ensuring safety from threats posed to third parties is the only
requirement.

#### 9.23.4 Category D : Indirect Maintenance

Maintenance in which no direct inspection is necessary or possible. Category D
structures are those for which direct inspection is extremely difficult. For these
reasons, non-inspection maintenance after the initial inspection is carried out
not as routine or regular inspection, but as extraordinary inspection following
natural disasters, accidents, etc.

9.24
Maintenance Record
Records, drawings and related documents prepared during the time of planning,
design and construction shall be referred to and made use of while developing
an appropriate methodology for maintenance covering inspection and repairs.
Commentary:
A thorough study of the planning, design and construction related documents
often provide insights into the inherent weaknesses of the structure which in
turn often serve as pointers for further detailed inspection and/or repairs.
Furthermore, a clear record should be kept of the difficulties encountered,
remedial actions taken and any deviation from the design drawings. These
record also serve as a valuable reference in the design and construction of
similar structures and their subsequent inspections.
9.25
Inspection

#### 9.25.1 General

On the basis of the methods used in the frequency and timing, inspection shall
be classified as initial inspection, routine inspection, regular inspection, detailed
inspection, extraordinary inspection, and monitoring.

#### 9.25.2 Initial Inspection

Initial inspection is intended to examine whether the structure is adequately
constructed. It also allows the collection of basic data for initiating a
maintenance program. Initial inspection shall also be carried out just after the
completion of remedial actions.
Initial inspection should cover the external appearance of the structure,
variation of concrete quality, existence of construction defects, construction
errors on reinforcing and pretsressing bar arrangement, and so on.

#### 9.25.3 Routine Inspections

It shall be carried out on a routine basis at certain intervals without making any
specific effort to identify signs of deterioration, if any, and the time of their first
appearance. The exact tools to be used and the frequency of such inspections
may be decided on the basis of such factors as the likely mechanisms of such
deterioration, environmental conditions, importance of the structure, and the
maintenance action classification.
A routine inspection should cover the external appearance of the structure
including cracks, spalling, delamination, color changes, rust stain from
reinforcement, and isolation of free lime from concrete.

#### 9.25.4 Regular Inspection

It shall be carried out at regular intervals using appropriate tools to identify
signs of deterioration and the time of their first appearance. Efforts shall be
made during a regular inspection to observe the structure closely to obtain
details which will be difficult to gather during a routine inspection.
Visual inspection and/or hammering inspection are carried out mainly to obtain
more details on the items inspected in a routine inspection. In addition,
inspections by using appropriate non-destructive tests or taking concrete cores
etc. can be effectively combined with the visual inspection.

#### 9.25.5 Detailed Inspection

Detailed inspection shall be done when
(a) some signs of deterioration or a change in the performance level are
observed during a routine and/or regular inspection;
(b) it is difficult to obtain reliable and accurate information during a routine
and/or regular inspection;
(c) it is found that the structural integrity of the structure has been
adversely affected by the extent of the deterioration;
(d) more detailed information is required before deciding on the necessity
and scope for undertaking a major repair, rehabilitation or
strengthening work.

#### 9.25.6 Extraordinary Inspection

It shall be carried out after a structure has been subjected to an accidental load
to assess the extent of the damage and the need for remedial actions. Such
accidental loads may include those caused by an earthquake, storm, flood, fire,
explosion, etc.
9.26
Monitoring
The deterioration and/or performance of the concerned structure as
determined in 9.6.2, shall be monitored, through continuous recording of the
appropriate data, together with routine and regular inspections, so that the
appropriate remedial actions can be taken before the deterioration becomes
detrimental to the appearance and other performance of the structure.

#### 9.26.1 Deterioration Mechanism and Prediction

##### 9.26.1.1 General

The prevailing state of the concerned structure shall be evaluated as properly as
possible according to the inspection results, design and construction records,
environmental conditions, and any other relevant information. Then when any
deterioration is found, the possible causes of the deterioration and the
corresponding mechanism can be appropriately estimated.

##### 9.26.1.2 Identification of deterioration mechanisms

Deterioration of a structure is caused by the environmental actions and loading
conditions. Environment-oriented deterioration includes carbonation-induced
deterioration, chloride-induced deterioration, chemical attack, alkali-aggregate
reaction, etc. On the other hand external force-oriented deterioration includes
fatigue, excessive loading, and differential settlement of the support.

##### 9.26.1.3 Deterioration factors

Deterioration factors may be classified into those
(a) external to structures such as temperature, humidity and any other
environmental characteristics; and
(b) internal to the structure such as design parameters and quality control
during construction.
Commentary:
Design factors include the geometry of the members/ segments, crack width
specifications, concrete cover to reinforcing bar and prestressing steel/ducts,
and design strength. Construction factors include material selection, mix
proportions, transportation, placement, and curing methods.

##### 9.26.1.4 Determination of deterioration levels and rates

The level of deterioration and/or performance shall be determined based on the
results of inspections and simulations using appropriate models for the
mechanisms of deterioration.
The following features appearing on the surface of the structure may be used for
evaluating the degree of deterioration and the level of performance:
(a) crack pattern, length and width;
(b) the extent of delamination, peeling and spalling of concrete cover, and
scaling and degradation areas;
(c) abnormal hammer tapping sound and the extent of abnormality;
(d) presence and degree of exudation of rust and efflorescence and water
leakage.

#### 9.26.2 Evaluation and Decision Making

##### 9.26.2.1 General

In general, the deterioration and performance degradation of a structure
progress monotonically. The decision, therefore, should be made based on the
evaluation outcome of the performance of the structure at the time of inspection
and at the end of its design life.

##### 9.26.2.2 Threshold level

ঞযব:যৎবংযড়ষফ ষবাবষ ড়ভ:যব ংঃৎঁপঃঁৎব্থং ফবমৎধফবফ ঢ়বৎভড়ৎসধহপব ংযধষষ নব ংঢ়বপরভরবফ রহ
accordance with the requirements of safety, functionality, appearance, societal
friendliness and such other factors, taking into consideration the type,
importance and maintenance level of the structure and the environmental
conditions.

##### 9.26.2.3 Evaluation of inspection results

The results from routine and regular inspections shall be evaluated and a
decision shall be made whether a detailed inspection is required or otherwise.
The results from the detailed and/or extraordinary inspections shall be
evaluated and a decision shall be made whether a remedial action is required or
otherwise.
Immediate remedial actions shall be taken in cases where deterioration, damage
and/or initial defects are found to be hazardous to third parties.
9.27
Remedial Action

#### 9.27.1 General

A remedial action on a deteriorated structure shall be taken on the basis of the
inspection results, importance of the structure, maintenance classification, and
the threshold level of deterioration and/or performance.
Commentary:
Repair and strengthening are the main techniques of remedial actions of which
details are described in Sections 9.2.7.3 and 9.2.7.4 respectively. The following
measures are also included in the remedial actions.
Intensified inspection: inspection may be carried out by suitably increasing one
or more of the following: frequency of inspection, number of inspection items,
and the locations for inspection.
Usage restriction: suitable restriction shall be imposed on the maximum live
load that the structure may carry, depending on the level of deterioration
observed.

Functional improvement or restoration: this may include an appearance
improvement that beautifies a structure with suitably painting or placing
additional concrete, and so on.
Dismantling and removal: in a case when the deterioration of a structure is too
severe for its structural performance to be sufficiently restored, and dismantling
or the removal is one of the choices as the remedial measures.
Special care for emergency: when a deteriorated structure poses an immediate
threat to the environment, its users, or third parties, suitable emergency action
shall be taken immediately.

#### 9.27.2 Selection of Remedial Action

Selection of methods and materials suitable for the relevant deterioration
mechanism and degree of performance degradation is particularly important for
measures for which wide varieties of methods and materials are available. Care
should be taken as the method of restoring the performance may vary
depending on the deterioration mechanism, even if the level of performance is
the same.

#### 9.27.3 Repair

9.27.3.1
General
Repair of a structure refers to the remedial action taken to prevent or slow
down its further deterioration and reduce the possibility of damage to its users
or third parties.
Types of repair include (i) repair of defects such as cracking and peeling; (ii)
removal of concrete damaged by deterioration due to carbonation and such like;
(iii) surface coating to prevent re-intrusion of hazardous substances.
9.27.3.2
Preparation and execution
A complete plan for the repair work including methods of repair, materials to be
used, and tests to ensure the quality of work, shall be developed before the
repair work commences.
Repair works shall be carried out with minimum disturbances to the
surrounding environment. Necessary tests to ensure the quality of the repair
work shall be carried out. Detailed record of the repair work shall be maintained
for future reference.

9.27.3.3
Methods and materials
Some current repair methods and associated materials are

crack repair by injecting epoxy;

section repair including patching using polymer cement mortar;

surface protection by resin or mortar;

cathodic protection;

re-alkalization;

de-salination, wherever required.
Commentary:
Development of a repair plan comprises the selection of a repair method
suitable for the deterioration mechanism, establishment of the required repair
level, and decisions on the repair policy, specifications for the repair materials,
sectional dimensions after repair, and execution methods.

#### 9.27.4 Strengthening

9.27.4.1
General
Strengthening of a structure refers to the remedial action taken to restore or
improve its structural properties including load carrying capacity and stiffness,
to a level which is equal to or higher than that of the original design.
Commentary:
Strengthening methods include (i) replacement of members; (ii) an increase in
the cross-sectional area of concrete; (iii) addition of members; (iv) an increase
of the support points; (v) addition of strengthening members; (vi) external
prestressing, etc.
9.27.4.2
Preparation and execution
Strengthening of a structure shall be preceded by a thorough investigation of its
deterioration considering such factors as the remaining design life,
deterioration mechanism, possible causes and extent of deterioration, the
remaining and desired load-carrying capacity or stiffness, importance of the
structure, maintenance classification, and any remedial actions taken
previously.
A complete plan for the strengthening work including design calculations,
methods of strengthening, materials to be used, and tests to ensure quality of
the work, shall be developed before work commences.
Strengthening work shall be carried out with minimum disturbance to the
surrounding environment and the service condition of the structure.

9.27.4.3
Methods and materials
Some current methods and associated materials for strengthening are

external bonding viz plate or sheet bonding and over or under-laying
using steel or carbon sheets;

external prestressing using additional tension cables;

addition of girders, braces and/or supports;

replacement of members;

seismic isolation.
Commentary:
When selecting a strengthening method, it is necessary to consider effects of
strengthening,
constructability,
cost-effectiveness,
and
impact
on
the
community/ environment during execution. It is also important to consider the
ease of maintenance after strengthening and any influence on the landscape.

#### 9.27.5 Record

##### 9.27.5.1 General

Records shall be kept and preserved for future reference. Such records shall
include details concerning the design, inspection and evaluation procedures,
plans and execution of any repair and/or strengthening work undertaken, and
other such information.

##### 9.27.5.2 Preservation

The maintenance records of a structure shall be preserved while the structure
remains in service. It is also desirable that such records be preserved for an
indefinite period as a useful reference for the construction and maintenance of
other similar structures.
Commentary:
It is important to devise a format that makes it easy to understand the history of
a structure by simply referring to records. The records should be made
accessible at all times.

##### 9.27.5.3 Method and item of recording

Records shall be kept in an easy-to-understand format.
The items to be recorded shall include references to concerned agencies,
drawings, immediate and nearby environment, classification of structure,
results of deterioration rate estimation, results of any inspections carried out,
evaluation of the structure, and details of the plan and actual execution of
remedial and other actions.
