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引用次数: 1

摘要

降低低频噪声通过薄壁结构的传输是一个多年来研究的课题。由于波长大和质量定律,无源解决方案通常在500 Hz以下的频率范围内获得较低的性能。主动系统有望填补这一空白,并显著减少传播的声音。尽管如此,实验证明了这种专用系统的出色性能,但也证明了这种解决方案的计算和硬件工作量。即将到来的增材制造技术使复杂结构的新型多材料设计成为可能。基于这一技术,声学超材料在实验室和文献中出现。小型化局部谐振结构阵列能够改变薄壁结构在一定频带内超出给定质量定律限制的噪声传输。对于未来的飞机,对旋开旋翼(CROR)发动机是一种很有前途的技术,以减少他们的二氧化碳足迹。由于CROR发动机对机舱噪声的贡献高于喷气发动机,因此有必要采用新的策略来减少200 Hz以下频段的噪声传输。对于crr发动机的音调噪声,声学超材料似乎是一个合适的解决方案。本文介绍了一个110 × 110 × 1mm3的薄壁样品板。它被5 × 5的多材料共振结构阵列覆盖,这些结构以质量形式打印在梁上。类似橡胶的梁材料结合了低杨氏模量和高材料阻尼,导致谐振器的低本征频率。利用仿真和实验数据对谐振腔进行了设计。为了探索设计的潜力,制造了一个声学测试箱。从所有谐振器打开开始,测量板的发射声强。选定谐振器的顺序阻塞证明了这一概念。额外的激光扫描测振仪测量提供了洞察单个谐振器的振动行为。
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Reduction of Low-Frequency Sound Transmission Using an Array of 3D-Printed Resonant Structures
The reduction of low-frequency noise transmission through thin-walled structures is a topic of research for many years now. Due to large wavelengths and the mass law, passive solutions usually gain low performance in the frequency range below 500 Hz. Active systems promised to fill the gap and to achieve significant reductions of transmitted sound. Nevertheless, experiments showed the outstanding performance of such specialized systems, but also demonstrated the computational and hardware effort of such solutions. The upcoming additive manufacturing technology enabled new multi-material designs of complex structures. Based on this technology, acoustic metamaterials emerged in the laboratories and in literature. Arrays of miniaturized locally resonant structures are able to change the noise transmission of thin walled structures beyond the limits of the given mass law in certain frequency bands. For future aircraft contra-rotating open rotor (CROR) engines are a promising technology to reduce their CO2 footprint. Since the contribution of CROR engines to the cabin noise is higher than for jet engines, new strategies for the reduction of noise transmissions for frequency bands below 200 Hz are necessary. For the tonal noise of the CROR engines, acoustic metamaterials seem to be an appropriate solution. In this paper a 110 × 110 × 1 mm3 thin-walled sample plate is presented. It is covered with a 5 × 5 array of multi-material resonant structures, which are printed as mass on a beam. The rubber-like beam material combines a low Young’s modulus with a high material damping, leading to a low eigenfrequency of the resonators. The design of the resonators using simulations and experimental data is shown. To explore the potential of the design, an acoustic test box is manufactured. Starting with all resonators unblocked the emitted sound intensity of the plate is measured. Sequential blocking of selected resonators proves the concept. Additional laser scanning vibrometer measurements give insights into the vibration behavior of single resonators.
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