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Analysis of wave band gaps in mechanical metamaterial based on Nelder-Mead method

机译:基于Nelder-Mead方法的机械超材料中的带隙分析

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One of the fundamental challenges in engineering design of an elastic metamaterial is optimizing its structure in a fine but controllable geometry based on a performance criterion. In this study, the wave manipulation ability of the metamaterial is taken as the key criterion for the optimization of its unity structure governed by the changing geometric parameters. The complete dispersion relationship of the metamaterial is set as the performance criterion which is acquired by scanning the wave vector k along the contour of the irreducible Brillouin zone in the reciprocal space for the unit cell and evaluating its eigenfrequency values in different eigenmodes. For the optimization algorithm, the Nelder-Mead method is programmed in the form of MatLab scripts incorporated with tailored parameter ranges to ensure geometric compatibility and a finite element analysis (FEA) solver for eigenfrequency evaluation. Parametric optimization is conducted for 100 iterations where promising convergence is observed. The optimized geometry is then compared to the initial in its performance. In all three case studies, including planar and spatial lattices, the optimized geometry showed superior properties and larger complete band gaps. The Nelder-Mead method is proved to be an effective tool for metamaterial optimization.
机译:弹性超材料的工程设计中的基本挑战之一是基于性能标准,以精细但可控制的几何形状优化其结构。在这项研究中,超材料的波操作能力被视为优化其统一结构的关键标准,该统一结构受几何参数的变化控制。将超材料的完全色散关系设置为性能标准,该性能标准是通过沿晶胞的倒数空间中沿不可约布里渊区的轮廓扫描波矢k并评估其在不同本征模式下的本征频率值而获得的。对于优化算法,以MatLab脚本的形式对Nelder-Mead方法进行编程,并结合量身定制的参数范围以确保几何兼容性和用于本征频率评估的有限元分析(FEA)求解器。对100次迭代进行参数优化,可以观察到有希望的收敛。然后将优化的几何形状与初始性能进行比较。在所有三个案例研究中,包括平面和空间晶格,优化的几何形状均显示出优异的性能和更大的完整带隙。 Nelder-Mead方法被证明是超材料优化的有效工具。

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