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TOPOLOGY, SHAPE, AND SIZE OPTIMIZATION OF ADDITIVELY MANUFACTURED LATTICE STRUCTURES BASED ON THE SUPERFORMULA

机译:基于超级格制造的拓扑结构,形状和尺寸优化粘性制造的晶格结构

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This paper investigates the application of Superformula for structural synthesis. The focus is set on the lightweight design of parts that can be realized using discrete lattice structures. While the design domain will be obtained using the Superformula, a tetrahedral meshing technique will be applied to this domain to generate the topology of the lattice structure. The motivation for this investigation stems from the property of the Superformula to easily represent complex biological shapes, which opens a possibility to directly link a structural synthesis to a biomimetic design. Currently, numerous results are being reported showing the development of a wide range of design methods and tools that first study and then utilize the solutions and principles from the nature to solve technical problems. However, none of these methods and tools quantitatively utilizes these principles in the form of nature inspired shapes that can be controlled parametrically. The motivation for this work is also in part due to the mathematical formulation of the Superformula as a generalization of a superellipse, which, in contrast to the normal surface modeling offers a very compact and easy way to handle set of rich shape variants with promising applications in structural synthesis. The structural synthesis approach is organized as a volume minimization using Simulated Annealing (SA) to search over the topology and shape of the lattice structure. The fitness of each of candidate solutions generated by SA is determined based on the outcome of lattice member sizing for which an Interior Point based method is applied. The approach is validated with a case study involving inline skate wheel spokes.
机译:本文研究了超级型结构对结构合成的应用。将重点设定在可以使用离散晶格结构实现的零件的轻质设计上。虽然使用Superformula获得设计域,但是将施加四面体网格化技术,以产生该域以产生晶格结构的拓扑。该研究的动机源于超级甲型制剂的性质,以容易地代表复杂的生物形状,这打开了直接将结构合成连接到仿生设计的可能性。目前,据报道了许多结果显示了开发一系列第一研究的设计方法和工具,然后利用本质上的解决方案和原则来解决技术问题。然而,这些方法和工具都没有定量地利用这些原理以可以参数控制的自然启发形状的形式。这项工作的动机也是由于超级甲型制的数学制定作为超级椭圆形的概括,与正常表面建模相比,这是一种非常紧凑且简便的方法,可以使用有前途的应用来处理一组丰富的形状变体在结构合成中。结构合成方法被组织为使用模拟退火(SA)来最小化,以搜索晶格结构的拓扑和形状。通过SA产生的每个候选溶液的适应度是基于晶格构件尺寸的结果确定,其中应用了内部点的方法。该方法是用涉及在线滑轮辐条的案例研究验证。

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