Shear and Diagonal Tension in...

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Shear and Diagonal Tension in Beams Chapter 4

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Shear and Diagonal Tension

in Beams

Chapter 4

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Introduction

• Chapter 3 deals with flexure

• Beams must have adequate safety margin

against other types of failure

• They may be more dangerous-more

uncertain and more catastrophic

• Shear failure is one such failure

• It is not fully understood and sudden

without warning

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• Special shear reinforcement are provided to

ensure flexural failure would occur before

shear failure if overloading happens.

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DIAGONAL TENSION

• Shear analysis and design are not really

concerned about shear as such.

• The real concern is DIAGONAL TENSION

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DIAGONAL TENSION: video

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Diagonal Tension in

homogeneous beams

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Principal Stresses

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RC BEAMS WITHOUT SHEAR

REINFORCEMENTS

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RC Beams without shear

reinforcements

• No flexural failure unlike plain concrete

beam

• Diagonal tension failure occurs elsewhere

• Caused by shear alone or combined action

of shear and flexure

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Web-shear crack

• when flexure small

•Near neutral axis

•Shear stress equals tensile strength

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Flexure shear cracking

• Both moment and shear significant

• Fails at a lower stress due to preexisting

cracks due to flexure

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• The shear at which diagonal cracks develop

depends on the ratio of shear force to

bending moment

• more precisely on the v to f near the top of

flexural crack

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Behaviour of diagonally cracked beam

• Flexural cracks are harmless as longitudinal

steel is present

• If shear reinforcement is not present,

diagonal cracks is critical and determines

the strength

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•Two types of behaviour as diagonal cracks

formed:

• The diagonal cracks spread immediately

from tension face to compression, splitting

it in to two and failing- for shallow beams

(span to depth 8 or more)

• For deeper beams, the crack spreads

partially in to compression zone. Failure

load is significantly higher

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Once crack is formed

Dowel V is small and can

cause splitting

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Formation of diagonal crack produce

following redistribution of stress

• Shear stress increases on the uncracked area

• Compression force increases

• Tension in steel increases

• Failure occurs in various ways-yielding,

crushing, splitting, pull out

• Relatively deep beam can take significant

load after formation of diagonal crack, but

this reserve strength is erratic and is ignored

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RC BEAM WITH WEB

REINFORCEMENT

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Types of web reinforcement

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Behaviour of web reinforced concrete beams

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Beams with vertical stirrups

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Beams with inclined bars

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ACI CODE PROVISIONS

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Vc

•Conservative where shear-moment ratio is high

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Minimum web reinforcement

Read from book

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Design of web reinforcement

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Graphically

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More rigorous formula

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Provide stirrups even if not required

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Torsion

• RC beams are subjected to flexure and Shear

• For RC columns, Axial load is present along

with bending and shear

• Torsion/twisting is sometimes present.

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Primary torsion

• Equilibrium or statically determinate

torsion.

• No alternate load path, must be supported

by torsion to maintain static equilibrium

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Secondary torsion

• Compatibility or Statically indeterminate

torsion

• Arises from compatibility of deformation of

adjacent parts

• If the spandrel beam has little torsional

stiffness or inadequate reinforcement,

torsional cracking will reduce the torsional

stiffness further.

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Longitudinal bar and stirrup