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Research Article | Open Access

Topological design of continuum structures with global stress constraints considering self-weight loads

Yun Ni1Jinqing Zhan2( )Min Liu2
Key Laboratory of Crop Harvesting Equipment Technology of Zhejiang Province, Jinhua Polytechnic, Jinhua 321007, China
School of Mechatronics and Vehicle Engineering, East China Jiaotong University, Nanchang 330013, China
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Abstract

This paper proposes an approach for the topological design of continuum structures with global stress constraints considering self-weight loads. The rational approximation of material properties is employed to describe the material distribution for overcoming the parasitic effect for low densities. The structure volume is used as the objective function to be minimized. The local stress constraints for all elements are aggregated into a global stress constraint using the improved P-norm method. A model for the stress-constrained topology optimization of continuum structures considering the self-weight loads is established. The projection filtering method is adopted to avoid numerical instability, and the topology optimization problems are solved using the method of moving asymptotes. Several numerical examples are presented to demonstrate the validity of the proposed method. The structures obtained by the proposed method can have better performance. The effects of different norm parameters, stress constraints and mesh densities on the topological structures are analyzed.

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Electronic Research Archive
Pages 4708-4728

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Cite this article:
Ni Y, Zhan J, Liu M. Topological design of continuum structures with global stress constraints considering self-weight loads. Electronic Research Archive, 2023, 31(8): 4708-4728. https://doi.org/10.3934/era.2023241

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Received: 26 April 2023
Revised: 13 June 2023
Accepted: 24 June 2023
Published: 15 August 2023
©2023 the Author(s), licensee AIMS Press.

This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0)