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Experimental validation and prototyping of optimum designs obtained from topology optimization

机译:通过拓扑优化获得的最佳设计的实验验证和原型设计

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This paper provides, through both numerical analyses and physical tests, a validation of the optimality of structural designs obtained from a topology optimization process. Issues related to the manufacturability of the topology-optimized design are first addressed in order to develop structural specimens suitable for experimental validation. Multidomain and multistep topology optimization techniques are introduced that, by embedding the designer's intuition and experience into the design process, allow for the simplification of the design layout and thus for a better manufacturability of the design. A boundary identification method is also proposed that is applied to produce a smooth boundary for the design. An STL (STereo Lithography) file is then generated and used as input to a rapid prototyping machine, and physical specimens are fabricated for the experiments. Finally, the experimental measurements are compared with the theoretical and numerical predictions. Results agree extremely well for the example problems considered, and thus the optimum designs pass both virtual and physical tests. It is also shown that the optimum design obtained from topology optimization can be independent of the material used and the dimensions assumed for the structural design problem. This important feature extends the applicability of a single optimum design to a range of different designs of various sizes, and it simplifies the prototyping and experimental validation since small, inexpensive prototypes can be utilized. This could result in significant cost savings when carrying out proof-of-concept in the product development process.
机译:本文通过数值分析和物理测试,提供了从拓扑优化过程获得的结构设计最优性的验证。为了开发适合实验验证的结构标本,首先解决了与拓扑优化设计的可制造性相关的问题。引入了多域和多步拓扑优化技术,该技术通过将设计师的直觉和经验嵌入设计过程中,从而简化了设计布局,从而提高了设计的可制造性。还提出了一种边界识别方法,该方法可用于生成设计的平滑边界。然后生成一个STL(立体光刻)文件,并将其用作快速成型机的输入,并制作了用于实验的物理样本。最后,将实验测量值与理论和数值预测进行比较。结果对于所考虑的示例问题极为吻合,因此最佳设计可以通过虚拟和物理测试。还表明,从拓扑优化中获得的最佳设计可以独立于所使用的材料以及为结构设计问题假设的尺寸。这一重要功能将单个最佳设计的适用性扩展到各种尺寸的不同设计的范围,并且由于可以利用小型廉价的原型,因此简化了原型设计和实验验证。在产品开发过程中进行概念验证时,可以节省大量成本。

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