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Enhancing Compression Flange Behaviour of Beams with FRP Prestress

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Title: Enhancing Compression Flange Behaviour of Beams with FRP Prestress


1
Enhancing Compression Flange Behaviour of Beams
with FRP Prestress
Chris Burgoyne Engineering Dept. University of
Cambridge
2
1988
  • ACI Fall Convention, Houston
  • Tony Naaman organised a session on
  • External Prestressing of Bridges
  • Published as SP-120

3
Aramid prestressing tendons had been
developed We had concluded that reinforcing with
FRP was not economic as strain capacity of fibres
could not be utilised Prestressing was
logical Strain capacity absorbed in prestress
4
  • Beam reinforced with an FRP with strain capacity
    of 0.0015
  • Neutral axis very high

0.0012
0.015
5
Section prestressed with FRPand enhanced
concrete strain capacity
0.007
Prestrain
0.008
0.007
6
Thorpe Marsh Power Station
7
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8
Aramid rope prestressing
9
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10
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11
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13
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14
The top flange explodes!
15
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16
Over-reinforced
  • Beams prestressed with FRP are truly
    overreinforced
  • (Beams reinforced with FRP are often tecnically
    over-reinforced but concrete reaches strain limit
    before tendon snaps failure therefore soft)

17
Problem
  • How to make a beam over-reinforced with FRP into
    a ductile flexural element?
  • Tension element cant be ductile
  • Must make concrete fail first and in a ductile
    way
  • Confine concrete

18
Effect of loose confinement
50 mm spacing
35 mm spacing
19
Effect of close confinement
10 mm spacing
20 mm spacing
20
Confinement Reinforcement
  • Sections with steel are under-reinforced, \
    confinement reinforcement does little
  • Sections with composite reinforcement are
    over-reinforced, so confinement reinforcement can
    increase both strength and strain capacity

21
Confinement Hoops
Axial stress varies with depth
Confinement is passive
22
  • Analyse concrete under active confinement
  • Break stresses into hydrostatic and deviatoric
    components (Kotsovos model)
  • Hence determine response to passive confinement

23
Analysis of overlapping spirals using local f.e.
model
24
Resulting stress-strain curves
Axial stress
Axial strain
25
Rectangular beam
26
With hoops added
27
Beam section
28
Beam 7.3 m clear span
Prestressed with two external deviated aramid
cables with 600 kN breaking load. 2-point loading
29
Compression hoops
30
Peak Load
Cover concrete lost
31
Post-failure loading
32
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33
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34
Reinforcement for compression
Amount of fibre in compression zone is 1/6th the
amount of tension reinforcement Confining
spirals triple strain capacity in
compression Economically worthwhile use of
material Uses material properties effectively
35
Improvements
Large amount of unconfined cover concrete
36
Improvements
Needs automated fabrication
37
3-D Textiles
Form of reinforcement
  • We have used spirals
  • Individually most effective
  • But if they overlap, are there easier ways to
    make them?

38
Raschel Knitting
39
So what will beams look like?
  • Partially bonded internal pre-tensioning with
    resin based rods
  • External post-tensioning with resin-free ropes
  • Novel forms of shear reinforcement
  • Confinement reinforcement in the compression zone

40
Compression Hoops
Mesh Shear Reinforcement
External Prestressing
Prestressing With Controlled
Or Intermittent Bond
41
0.0012
  • Concrete reinforced with steel reinforcement
  • Gives good strain distribution.

0.0012
42
Parafil termination
43
Two reinforced concrete footbridges with GFRP
bars
Both are much thicker than they would be with
steel bars
44
Tied arch bridge in Norway GFRP reinforcement
but tie is aramid rope
45
Hamamatsu Bridge
Strengthened by aramid prestressing ropes
46
Tring footbridge
47
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48
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49
Box Lane Footbridge Stoke-on-Trent
Steel deck and towers with CFRP cables
50
Tank Bridge
  • Aramid ropes for attachment

51
No-steel Bridge - Long section
52
No-steel Bridge - Cross-section
53
Cost/unit force - 2004
  • Prestressing steel 1 7-wire strand
  • Reinforcing steel 3 plus bending
  • GFRP pultrusion 6 straight
  • Aramid fibre 4 fibre only
  • Aramid rope 12 terminals
  • AFRP pultrusion 12 straight
  • CFRP pultrusion 12 straight
  • PBO 15 fibre only
  • So it has got more expensive!
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