Yang Fei, Wang Enshuai, Shen Xinmin, Zhang Xiaonan, Yin Qin, Wang Xinqing, Yang Xiaocui, Shen Cheng, Peng Wenqiang
College of Field Engineering, Army Engineering University of PLA, Nanjing 210007, China.
Engineering Training Center, Nanjing Vocational University of Industry Technology, Nanjing 210023, China.
Materials (Basel). 2022 Sep 16;15(18):6450. doi: 10.3390/ma15186450.
To achieve the broadband sound absorption at low frequencies within a limited space, an optimal design of joint simulation method incorporating the finite element simulation and cuckoo search algorithm was proposed. An acoustic metamaterial of multiple parallel hexagonal Helmholtz resonators with sub-wavelength dimensions was designed and optimized in this research. First, the initial geometric parameters of the investigated acoustic metamaterials were confirmed according to the actual noise reduction requirements to reduce the optimization burden and improve the optimization efficiency. Then, the acoustic metamaterial with the various depths of the necks was optimized by the joint simulation method, which combined the finite element simulation and the cuckoo search algorithm. The experimental sample was prepared using the 3D printer according to the obtained optimal parameters. The simulation results and experimental results exhibited excellent consistency. Compared with the derived sound absorption coefficients by theoretical modeling, those achieved in the finite element simulation were closer to the experimental results, which also verified the accuracy of this optimal design method. The results proved that the optimal design method was applicable to the achievement of broadband sound absorption with different low frequency ranges, which provided a novel method for the development and application of acoustic metamaterials.
为了在有限空间内实现低频宽带吸声,提出了一种结合有限元模拟和布谷鸟搜索算法的联合模拟方法的优化设计。本研究设计并优化了一种具有亚波长尺寸的多个平行六边形亥姆霍兹谐振器的声学超材料。首先,根据实际降噪要求确定所研究声学超材料的初始几何参数,以减轻优化负担并提高优化效率。然后,采用结合有限元模拟和布谷鸟搜索算法的联合模拟方法对具有不同颈部深度的声学超材料进行优化。根据获得的最优参数,使用3D打印机制备实验样品。模拟结果与实验结果具有良好的一致性。与理论建模得出的吸声系数相比,有限元模拟得到的吸声系数更接近实验结果,这也验证了这种优化设计方法的准确性。结果证明,该优化设计方法适用于实现不同低频范围的宽带吸声,为声学超材料的开发和应用提供了一种新方法。