thermo mechanical behavior of heat exchangers

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Thermo Mechanical Behavior of Heat Exchangers A. Chidley, F. Roger, A. Traidia ENSTA Paristech, France [email protected] COMSOL Conference 2010 Boston Presented at the

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Page 1: Thermo Mechanical Behavior of Heat Exchangers

Thermo Mechanical Behavior of Heat Exchangers

A. Chidley, F. Roger, A. Traidia

ENSTA Paristech, France

[email protected]

COMSOL Conference 2010 Boston Presented at the

Page 2: Thermo Mechanical Behavior of Heat Exchangers

Thermo Mechanical Behavior of Heat Exchangers

• Aim of the study

• Thermal loading

• Mechanical behavior law

• ThM modeling of inlet critical zone

• Conclusion

Study

Thermal

Behavior

Results

Conclusion

[email protected]

Page 3: Thermo Mechanical Behavior of Heat Exchangers

Introduction

Study

Thermal

Behavior

Results

Conclusion

Radiator

Expansion tank

Engine

Water pump

Thermostatic valve

Thermoswitch

Heater core

Fan system

Ther

mal

sh

ock

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Sketch of an automotive cooling system

Stress/Nb cycles curve

Page 4: Thermo Mechanical Behavior of Heat Exchangers

Introduction

Study

Thermal

Behavior

Results

Conclusion Study a tube with a periodic thermal shock loading

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Usual automotive heat exchanger

Page 5: Thermo Mechanical Behavior of Heat Exchangers

Thermal loading

Real thermal field Study

Thermal

Behavior

Results

Conclusion

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Fatigue experimental design

IR capture of selected points

Page 6: Thermo Mechanical Behavior of Heat Exchangers

Study

Thermal

Behavior

Results

Conclusion

Thermal loading

Time (s)

T/Tmax

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Thermal field in a U-shaped heat exchanger

Dimensionless temperature at the inlet

Page 7: Thermo Mechanical Behavior of Heat Exchangers

Study

Thermal

Behavior

Results

Conclusion

Thermal loading

2 ways in Comsol Multiphysics

As a function, entered as a table

As a trigonometric function, time dependant

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Page 8: Thermo Mechanical Behavior of Heat Exchangers

Mechanical behavior law

Study

Thermal

Behavior

Results

Conclusion

Follow damage

Fit cyclic tensile tests

Plasticity

Choice of hardening model

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Cyclic tensile test

Page 9: Thermo Mechanical Behavior of Heat Exchangers

Mechanical behavior law Study

Thermal

Behavior

Results

Conclusion

Chaboche Elastoplastic behavior law

Thermoelasticity with plastic strain

02 3 2 .1p ptrace T T

plastic strain time evolution

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Page 10: Thermo Mechanical Behavior of Heat Exchangers

Mechanical behavior law Study

Thermal

Behavior

Results

Conclusion

How to implement Chaboche Elastoplastic behavior law in Comsol Multiphysics

PDE General form module Solve hardening tensors

Use thermal structure module T, elastic

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Page 11: Thermo Mechanical Behavior of Heat Exchangers

ThM modeling of the inlet critical zone

Study

Thermal

Behavior

Results

Conclusion

Quarter tube + collector

Thermal loading

Chaboche behavior

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Page 12: Thermo Mechanical Behavior of Heat Exchangers

ThM modeling of the inlet critical zone

Study

Thermal

Behavior

Results

Conclusion

Thermal loading at the critical zone

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Page 13: Thermo Mechanical Behavior of Heat Exchangers

ThM modeling of the inlet critical zone

Study

Thermal

Behavior

Results

Conclusion

Residual stresses at the end of the 10th cycle

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Page 14: Thermo Mechanical Behavior of Heat Exchangers

ThM modeling of the inlet critical zone

Study

Thermal

Behavior

Results

Conclusion

Cumulated plastic strain

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Page 15: Thermo Mechanical Behavior of Heat Exchangers

ThM modeling of the inlet critical zone

Study

Thermal

Behavior

Results

Conclusion

Cyclic stress vs strain

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Page 16: Thermo Mechanical Behavior of Heat Exchangers

Study

Thermal

Behavior

Results

Conclusion

Energy based fatigue criterion

ThM modeling of the inlet critical zone

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Page 17: Thermo Mechanical Behavior of Heat Exchangers

Conclusion

• Save time by entering thermal field

• Combined hardening model

• Good predictability

• Fatigue oriented design

Study

Thermal

Behavior

Results

Conclusion

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Thankyou! Any questions…