Holonomic Elastoplastic Truss Design Using Displacement Based Optimization
A Displacement Based Optimization (DBO) approach was applied to truss design problems with material nonlinearities, to explore feasibility and verify efficiency of the approach to solve such problem. Various truss sizing problems with holonomic (path-independent) elastoplastic laws were investigate...
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ndltd-VTETD-oai-vtechworks.lib.vt.edu-10919-355082020-09-29T05:40:55Z Holonomic Elastoplastic Truss Design Using Displacement Based Optimization Gu, Wenjiong Aerospace and Ocean Engineering Gürdal, Zafer Kapania, Rakesh K. Librescu, Liviu Structural optimization Truss design Material nonlinearity Holonomic elastoplasticity Linear Programming Displacement based optimization A Displacement Based Optimization (DBO) approach was applied to truss design problems with material nonlinearities, to explore feasibility and verify efficiency of the approach to solve such problem. Various truss sizing problems with holonomic (path-independent) elastoplastic laws were investigated. This type of material nonlinearity allows us to naturally extend the linear elastic truss sizing in the DBO setting to nonlinear problems. A computer program that uses the commercially available optimizer DOT by VR&D and IMSL Linear Programming solver by Visual Numerics was developed to solve this type of problems. For comparison, we chose an important class of minimum-weight truss design problems, where holonomic linear strain hardening behavior was used. Additional examples of optimum design of trusses with elastic perfectly plastic material response that could be easily solved by Limit Design approach using linear programming were investigated for comparison. All demonstrated examples were tested successfully using the DBO approach. Solutions of comparable examples were consistent with the available results by other methods. Computational effort associated with the DBO approach was minimal for all the examples studied. Optimum solutions of several examples proved that the DBO approach is particularly suited for truss topology design where removal of truss members is essential. Master of Science 2014-03-14T20:47:06Z 2014-03-14T20:47:06Z 2000-10-13 2000-10-27 2001-11-10 2000-11-10 Thesis etd-10272000-17460026 http://hdl.handle.net/10919/35508 http://scholar.lib.vt.edu/theses/available/etd-10272000-17460026/ A6_listT.pdf A5_listF.pdf A4_TofC.pdf Z_vitae.pdf A2_abstract.pdf A1_cover.pdf Chap3.pdf A3_acknowledgements.pdf Chap1.pdf Chap4.pdf Chap2.pdf References.pdf In Copyright http://rightsstatements.org/vocab/InC/1.0/ application/pdf application/pdf application/pdf application/pdf application/pdf application/pdf application/pdf application/pdf application/pdf application/pdf application/pdf application/pdf Virginia Tech |
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Structural optimization Truss design Material nonlinearity Holonomic elastoplasticity Linear Programming Displacement based optimization |
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Structural optimization Truss design Material nonlinearity Holonomic elastoplasticity Linear Programming Displacement based optimization Gu, Wenjiong Holonomic Elastoplastic Truss Design Using Displacement Based Optimization |
description |
A Displacement Based Optimization (DBO) approach was applied to truss design problems with material nonlinearities, to explore feasibility and verify efficiency of the approach to solve such problem. Various truss sizing problems with holonomic (path-independent) elastoplastic laws were investigated. This type of material nonlinearity allows us to naturally extend the linear elastic truss sizing in the DBO setting to nonlinear problems. A computer program that uses the commercially available optimizer DOT by VR&D and IMSL Linear Programming solver by Visual Numerics was developed to solve this type of problems. For comparison, we chose an important class of minimum-weight truss design problems, where holonomic linear strain hardening behavior was used. Additional examples of optimum design of trusses with elastic perfectly plastic material response that could be easily solved by Limit Design approach using linear programming were investigated for comparison. All demonstrated examples were tested successfully using the DBO approach. Solutions of comparable examples were consistent with the available results by other methods. Computational effort associated with the DBO approach was minimal for all the examples studied. Optimum solutions of several examples proved that the DBO approach is particularly suited for truss topology design where removal of truss members is essential. === Master of Science |
author2 |
Aerospace and Ocean Engineering |
author_facet |
Aerospace and Ocean Engineering Gu, Wenjiong |
author |
Gu, Wenjiong |
author_sort |
Gu, Wenjiong |
title |
Holonomic Elastoplastic Truss Design Using Displacement Based Optimization |
title_short |
Holonomic Elastoplastic Truss Design Using Displacement Based Optimization |
title_full |
Holonomic Elastoplastic Truss Design Using Displacement Based Optimization |
title_fullStr |
Holonomic Elastoplastic Truss Design Using Displacement Based Optimization |
title_full_unstemmed |
Holonomic Elastoplastic Truss Design Using Displacement Based Optimization |
title_sort |
holonomic elastoplastic truss design using displacement based optimization |
publisher |
Virginia Tech |
publishDate |
2014 |
url |
http://hdl.handle.net/10919/35508 http://scholar.lib.vt.edu/theses/available/etd-10272000-17460026/ |
work_keys_str_mv |
AT guwenjiong holonomicelastoplastictrussdesignusingdisplacementbasedoptimization |
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1719344811068096512 |