Huang Wei, Ji Hongli, Ding Ye, Qiu Jinhao
School of Mechanical Engineering, Nanjing University of Science and Technology, Xiaolingwei 200, Nanjing 210094, China.
State Key Laboratory of Mechanics and Control of Mechanical Structures, Nanjing University of Aeronautics and Astronautics, Yudao Street 29, Nanjing 210016, China.
Polymers (Basel). 2023 May 25;15(11):2457. doi: 10.3390/polym15112457.
The acoustic black hole (ABH) is a feature commonly found in thin-walled structures that is characterized by a diminishing thickness and damping layer with an efficient wave energy dissipation effect, which has been extensively studied. The additive manufacture of polymer ABH structures has shown promise as a low-cost method to manufacture ABHs with complex geometries, exhibiting even more effective dissipation. However, the commonly used elastic model with viscous damping for both the damping layer and polymer ignores the viscoelastic changes that occur due to variations in frequency. To address this, we used Prony exponential series expansion to describe the viscoelastic behavior of the material, where the modulus is represented by a summation of decaying exponential functions. The parameters of the Prony model were obtained through experimental dynamic mechanical analysis and applied to finite element models to simulate wave attenuation characteristics in polymer ABH structures. The numerical results were validated by experiments, where the out-of-plane displacement response under a tone burst excitation was measured by a scanning laser doppler vibrometer system. The experimental results illustrated good consistency with the simulations, demonstrating the effectiveness of the Prony series model in predicting wave attenuation in polymer ABH structures. Finally, the effect of loading frequency on wave attenuation was studied. The findings of this study have implications for the design of ABH structures with improved wave attenuation characteristics.
声学黑洞(ABH)是薄壁结构中常见的一种特征,其特点是厚度和阻尼层逐渐减小,并具有高效的波能量耗散效应,对此已进行了广泛研究。聚合物ABH结构的增材制造已显示出作为一种低成本方法来制造具有复杂几何形状的ABH的前景,表现出更有效的耗散。然而,常用于阻尼层和聚合物的带有粘性阻尼的弹性模型忽略了由于频率变化而发生的粘弹性变化。为了解决这个问题,我们使用Prony指数级数展开来描述材料的粘弹性行为,其中模量由衰减指数函数的总和表示。Prony模型的参数通过实验动态力学分析获得,并应用于有限元模型以模拟聚合物ABH结构中的波衰减特性。数值结果通过实验验证,其中通过扫描激光多普勒振动计系统测量了猝发声激励下的面外位移响应。实验结果与模拟结果显示出良好的一致性,证明了Prony级数模型在预测聚合物ABH结构中的波衰减方面的有效性。最后,研究了加载频率对波衰减的影响。本研究的结果对设计具有改进波衰减特性的ABH结构具有启示意义。