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Topology optimization of compliant mechanisms with stress constraints and manufacturing error robustness

机译:具有应力约束和制造错误鲁棒性的顺应性机制的拓扑优化

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This work proposes a robust formulation to address the compliant mechanism design problem subject to both stress constraints and manufacturing uncertainty. The proposed formulation is an extension of the robust approach for compliant mechanism design based on eroded, intermediate and dilated projections. The novelty in this proposal comes from inclusion of a stress failure criterion in each projected field, in order to ensure compliant mechanisms that satisfy the stress failure criterion even in the presence of uniform manufacturing variations. The objective of the optimization problem is the minimization of the maximum displacement at the output port of the mechanism, given eroded, intermediate and dilated designs, subjected to upper and lower volume constraints and one stress constraint per finite element on each of the three projected fields. The objective function is weighted by the volume of the dilated topology, in order to avoid possible numerical instabilities that may occur when the upper volume constraint is not active. Several examples are solved and the optimized results are post-processed with body-fitted finite element meshes. Numerical results demonstrate that: 1) the proposed stress-constrained robust approach provides results in which both maximum stress and output displacements are robust with respect to uniform boundary variations; however, while the maximum stress is almost insensitive to manufacturing variations, the output displacement does show some degradation when compared with the traditional robust approach; 2) the traditional robust approach, i.e., without the stress considerations, provides results in which the maximum stress has unpredictable and non-smooth behavior after uniform boundary variation; and 3) the stress-constrained deterministic approach, i.e., without considering the manufacturing uncertainty, provides results in which both maximum stress and output displacements are non-robust with respect to uniform boundary variations. (C) 2019 Elsevier B.V. All rights reserved.
机译:这项工作提出了一个健壮的解决方案,以解决受应力约束和制造不确定性影响的顺应性机构设计问题。拟议的提法是基于侵蚀,中间和膨胀凸起的柔顺机构设计鲁棒方法的扩展。该提案的新颖之处在于在每个投影领域都包含了应力破坏准则,以确保即使在存在统一制造偏差的情况下,也能满足应力破坏准则的顺应机制。优化问题的目的是,在给定的腐蚀,中间和膨胀设计的情况下,在三个投影场的每个上受到有限体积的上,下体积约束和每个有限元一个应力约束的情况下,机构输出端口的最大位移最小化。目标函数由膨胀拓扑的体积加权,以避免在上限约束未激活时可能出现的数值不稳定性。解决了几个示例,并使用适合人体的有限元网格对优化结果进行了后处理。数值结果表明:1)所提出的应力约束鲁棒方法提供了这样的结果,即最大应力和输出位移对于均匀的边界变化都是鲁棒的;然而,尽管最大应力几乎对制造变化不敏感,但与传统的稳健方法相比,输出位移确实显示出一定程度的下降; 2)传统的鲁棒方法,即在没有应力考虑的情况下,提供的结果是,在均匀边界变化后,最大应力具有不可预测的且不平滑的行为; 3)应力约束确定性方法,即不考虑制造不确定性,提供的结果是,相对于均匀的边界变化,最大应力和输出位移都不稳健。 (C)2019 Elsevier B.V.保留所有权利。

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