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Optimization for Anisotropy in Additively Manufactured Lattice Structures

机译:加法制造晶格结构中各向异性的优化

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The build orientation of fabricated parts is one the most influential factors affecting material properties in many Additive Manufacturing (AM) processes. Applications such as the optimization of lattice structures for AM, are particularly affected as knowledge of the anisotropy model of the material is crucial. The investigation in this paper shows the influence of material anisotropy and build orientation on the optimized lattice structure designs. First, a material property characterization study for both compression and tension states of a single material is carried out for the example of inkjet 3D printing. Then, a generalized optimality criteria method is extended for the optimal sizing of single material and fixed topology lattice structures with respect to displacement, stress and Euler buckling constraints. The stress and Euler buckling constraints are formulated as side constraints that are handled in combination with fully-stressed design recursion. The results demonstrate the effect of anisotropy on the optimized designs caused by individual struts' build orientation. This demonstrates the need to include anisotropic models in the optimization in order to produce solutions that can be fabricated and tested.
机译:在许多增材制造(AM)过程中,制造零件的构造方向是影响材料性能的最有影响力的因素之一。诸如AM的晶格结构优化之类的应用尤其受到影响,因为对材料的各向异性模型的了解至关重要。本文的研究表明材料各向异性和构造方向对优化的晶格结构设计的影响。首先,以喷墨3D打印为例,对单一材料的压缩状态和拉伸状态进行了材料特性表征研究。然后,针对位移,应力和欧拉屈曲约束,针对单一材料和固定拓扑晶格结构的最佳尺寸扩展了一种通用的最佳化标准方法。应力和Euler屈曲约束被公式化为侧面约束,并与全应力设计递归一起处理。结果证明了各向异性对优化设计的影响,该优化设计是由单个支撑杆的构造方向引起的。这表明需要在优化中包括各向异性模型,以便产生可以制造和测试的解决方案。

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