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Design and Additive Manufacturing of 3D Phononic Band Gap Structures Based on Gradient Based Optimization

机译:基于梯度优化的3D声子带隙结构设计与增材制造

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摘要

We present a novel approach for gradient based maximization of phononic band gaps. The approach is a geometry projection method combining parametric shape optimization with density based topology optimization. By this approach, we obtain, in a two dimension setting, cellular structures exhibiting relative and normalized band gaps of more than 8 and 1.6, respectively. The controlling parameter is the minimal strut size, which also corresponds with the obtained stiffness of the structure. The resulting design principle is manually interpreted into a three dimensional structure from which cellular metal samples are fabricated by selective electron beam melting. Frequency response diagrams experimentally verify the numerically determined phononic band gaps of the structures. The resulting structures have band gaps down to the audible frequency range, qualifying the structures for an application in noise isolation.
机译:我们提出了一种基于梯度的声子带隙最大化的新方法。该方法是将参数形状优化与基于密度的拓扑优化相结合的几何投影方法。通过这种方法,我们在二维设置中获得了分别显示相对和归一化带隙大于8和1.6的细胞结构。控制参数是最小支杆尺寸,其也对应于所获得的结构刚度。由此产生的设计原理被手动解释为三维结构,通过选择性电子束熔化可从中制造出蜂窝状金属样品。频率响应图通过实验验证了数值确定的结构的声子带隙。所得的结构具有低至可听频率范围的带隙,从而使该结构可用于噪声隔离。

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