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Topology optimization considering the fatigue constraint of variable amplitude load based on the equivalent static load approach

机译:基于等效静载荷的考虑变幅载荷疲劳约束的拓扑优化

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HighlightsA new topology optimization is developed considering fatigue life in time domain.Pseudo sensitivity analysis using the equivalent static load (ESL) is verified.Modified damage ruler is developed for stable convergence and clear optimal result.The validity of the proposed TO method is verified by solving some problems.AbstractIn this research, a new layout optimization method is developed to consider high cycle fatigue constraints which occur due to variable amplitude mechanical loading. Although fatigue is a very important property in terms of safety when designing mechanical components, it has rarely been considered in topology optimization with the lack of concept and the difficulty of sensitivity analysis for fatigue constraints calculated from multiaxial cycle counting. For the topology optimization for fatigue constraint, we use transient stress analysis to extract effective stress cycles and Miner's cumulative damage rule to calculate total damage at every spatial element. Because the calculation of the exact sensitivities of a transient system is complex and time consuming for the topology optimization application, this research proposes to use the pseudo-sensitivities of fatigue constraints calculated by applying equivalent static load approach. In addition, as an aggregated fatigue constraint is very sensitive to the changes in stress value which causes some unstable convergences in optimization process, a new scaling approach of the aggregated fatigue damage constraint is developed. To validate the usefulness of the developed approaches, we solved some benchmark topology optimization problems and found that the present method provides physically appropriate layouts with stable optimization convergence.
机译: 突出显示 根据时域的疲劳寿命,开发了一种新的拓扑优化方法。 使用等效静态负载(ESL)的伪灵敏度分析得到了验证。 已修改损害标尺的开发旨在稳定收敛并获得清晰的最佳结果。 通过解决一些问题验证了所提出的TO方法的有效性。 摘要 在这项研究中,开发了一种新的布局优化方法来考虑由于可变振幅而产生的高周疲劳约束机械负载。尽管在设计机械零件时,就安全性而言,疲劳是非常重要的属性,但由于缺乏概念以及对通过多轴循环计数计算出的疲劳约束进行敏感性分析的困难,因此很少在拓扑优化中考虑到疲劳。对于疲劳约束的拓扑优化,我们使用瞬态应力分析来提取有效应力周期,并使用Miner的累积损伤规则来计算每个空间元素的总损伤。由于瞬态系统精确灵敏度的计算对于拓扑优化应用而言是复杂且耗时的,因此本研究建议使用通过应用等效静载荷方法计算出的疲劳约束的拟灵敏度。另外,由于聚集疲劳约束条件对应力值的变化非常敏感,从而导致优化过程中出现一些不稳定的收敛性,因此,提出了一种新的疲劳损伤约束条件缩放方法。为了验证所开发方法的有效性,我们解决了一些基准拓扑优化问题,发现本方法提供了物理上合适的布局,并具有稳定的优化收敛性。

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