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Integrated Multi-Step Design Method for Practical and Sophisticated Compliant Mechanisms Combining Topology and Shape Optimizations

机译:结合拓扑和形状优化的实用且复杂的柔顺机构的集成多步设计方法

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摘要

Compliant mechanisms designed by traditional topology optimization have a linear output response, and it is difficult for traditional methods to implement mechanisms having nonlinear output responses, such as nonlinear deformation or path. To design a compliant mechanism having a specified nonlinear output path, we propose a two-stage design method based on topology and shape optimizations. In the first stage, topology optimization generates an initial conceptual compliant mechanism based on ordinary design conditions, with "additional" constraints used to control the output path in the second stage. In the second stage, an initial model for the shape optimization is created, based on the result of the topology optimization, and additional constraints are replaced by spring elements. The shape optimization is then executed, to generate the detailed shape of the compliant mechanism having the desired output path. At this stage, parameters that represent the outer shape of the compliant mechanism and of spring element properties are used as design variables in the shape optimization. In addition to configuring the specified output path, executing the shape optimization after the topology optimization also makes it possible to consider the stress concentration and large displacement effects. This is an advantage offered by the proposed method, because it is difficult for traditional methods to consider these aspects, due to inherent limitations of topology optimization.
机译:通过传统拓扑优化设计的兼容机制具有线性输出响应,并且传统方法很难实现具有非线性输出响应(例如非线性变形或路径)的机制。为了设计具有指定非线性输出路径的柔顺机构,我们提出了一种基于拓扑和形状优化的两阶段设计方法。在第一阶段,拓扑优化根据普通设计条件生成初始的概念兼容机制,并在第二阶段使用“其他”约束来控制输出路径。在第二阶段,根据拓扑优化的结果创建用于形状优化的初始模型,并用弹簧元素替换其他约束。然后执行形状优化,以生成具有所需输出路径的柔顺机构的详细形状。在此阶段,代表柔顺机构外形和弹簧元件属性的参数在形状优化中用作设计变量。除了配置指定的输出路径外,在拓扑优化之后执行形状优化还可以考虑应力集中和大位移影响。这是所提出的方法提供的优点,因为由于拓扑优化的固有局限性,传统方法难以考虑这些方面。

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