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Topology optimization of phononic-like structures using experimental material interpolation model for additive manufactured lattice infills

机译:使用实验材料插值模型对添加剂制造的晶格填充的实验材料插值模型的拓扑优化

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Phononic crystals (PnCs) have seen increasing popularity due to band gap property for sound wave propagation. As a natural bridge, topology optimization has been applied to the design of PnCs. However, thus far most of the existent works on topological design of PnCs have been focused on single micro-scale topology optimization of a periodical unit cell. Moreover, practical manufacturing of those designed structures has been rarely involved. This paper presents a quasi two-scale topology optimization framework suitable for additive manufacturing (AM) implementation to design 2D phononic-like structures with respect to sound transmission coefficient (STC). A designate topology is employed and subjected to sizing optimization in the micro-scale design. The thin-walled square lattice structures made of single metal material are selected as the infills for the design domain to guarantee material connectivity in the optimized design in order to facilitate fabrication by AM. The practical effective mechanical property of the lattice structures with different volume densities obtained by experimental measurement is employed in the topology optimization. The proposed framework is applied to the design of 2D phononic-like structures with different macroscopic shapes for the desired band gap feature. Numerical examples show the desired band gap containing a prescribed excitation frequency can be realized through the proposed quasi two-scale topology optimization method. Moreover, the optimized designs are reconstructed into CAD files with the thin-walled lattice infills. The reconstruction makes fabrication of the optimized designs feasible by practical AM process. (C) 2021 The Author(s). Published by Elsevier B.V.
机译:由于声波传播的带隙属性,声子晶体(PNCS)已经看出越来越受欢迎。作为天然桥梁,拓扑优化已应用于PNC的设计。然而,到目前为止,PNCS的拓扑设计上的大部分都集中在周期性单元电池的单个微观拓扑优化上。而且,很少有涉及这些设计的结构的实际制造。本文介绍了适用于附加制造(AM)实现的准二维拓扑优化框架,以设计相对于声音传输系数(STC)设计2D声子样结构。使用指定拓扑,并在微尺度设计中进行大小的优化。选择由单金属材料制成的薄壁方形晶格结构作为设计域的填充物,以保证优化设计中的材料连接,以便于am的制造。通过实验测量获得的不同体积密度的晶格结构的实际有效力学性质在拓扑优化中采用。所提出的框架应用于具有不同宏观形状的2D声子样结构的设计,用于所需的带隙特征。数值示例示出了通过所提出的准二维拓扑优化方法实现包含规定激发频率的所需带隙。此外,通过薄壁晶格填充物重建优化的设计。重建使得通过实用AM过程制造可行的优化设计。 (c)2021提交人。由elsevier b.v出版。

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