In complex forging processes, it is essential to "nd the optimal deformation path and the optimal preform shape that will lead to the desired "nal shape and service properties. A sensitivity analysis and optimization for preform billet shape in thermo-mechanical coupled simulation is developed in th
Sensitivity analysis and shape optimization in nonlinear solid mechanics
โ Scribed by Liang-Jenq Leu; Subrata Mukherjee
- Publisher
- Elsevier Science
- Year
- 1993
- Tongue
- English
- Weight
- 782 KB
- Volume
- 12
- Category
- Article
- ISSN
- 0955-7997
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โฆ Synopsis
The objective of this paper is twofold. First, it presents a boundary element formulation for sensitivity analysis for solid mechanics problems involving both material and geometric nonlinearities. The second focus is on the use of such sensitivities to obtain optimal design for problems of this class. Numerical examples include sensitivity analysis for small (material nonlinearities only) and large deformation problems. These numerical results are in good agreement with direct integration results. Further, by using these sensitivities, a shape optimization problem has been solved for a plate with a cutout involving only material nonlinearities. The difference between the optimal shapes of solids, undergoing purely elastic or elasto-viscoplastic deformation is shown clearly in this example.
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