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Stress constrained thermo-elastic topology optimization with varying temperature fields via augmented topological sensitivity based level-set

机译:压力受到不同温度场的热弹性拓扑优化,通过增强拓扑敏感性基于水平集

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摘要

Engineering structures must often be designed to resist thermally induced stresses. Significant progress has been made on the design of such structures through thermo-elastic topology optimization. However, a computationally efficient framework to handle stress-constrained large-scale problems is lacking. The main contribution of this paper is to address this limitation. In particular, a unified topological-sensitivity (TS) based level-set approach is presented in this paper for optimizing thermo-elastic structures subject to non-uniform temperatures. The TS fields for various thermo-elastic objectives are derived, and, to address multiple constraints, an augmented Lagrangian method is developed to explore Pareto topologies. Numerical examples demonstrate the capability of the proposed framework to solve large-scale design problems. Comparison is made between pure elastic problems, and its thermo-elastic counterpart, shedding light on the influence of thermo-elastic coupling on optimized topologies.
机译:通常必须设计工程结构以抵抗热诱导的应力。通过热弹性拓扑优化设计了这些结构的重要进展。然而,缺乏计算应力受压力的大规模问题的计算上有效的框架。本文的主要贡献是解决这一限制。特别地,本文提出了基于统一的拓扑灵敏度(TS)的水平设定方法,用于优化经受不均匀温度的热弹性结构。推导出各种热弹性目标的TS场,并且为了解决多种约束,开发了一种增强的拉格朗日方法以探索帕累托拓扑。数值示例展示了提出的框架解决大规模设计问题的能力。纯弹性问题与其热弹性对应物之间的比较,脱光​​,脱光对热弹性耦合对优化拓扑的影响。

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