Comprehensive analysis of band gap modulation of hexagonal fan blade and optimized ligament structure in the low-frequency range

IF 2.7 Q2 PHYSICS, CONDENSED MATTER Micro and Nanostructures Pub Date : 2024-06-18 DOI:10.1016/j.micrna.2024.207918
Ya-jun Xin , Jia-yu Li , Xian-duo Li , Shu-liang Cheng , Yong-tao Sun , Qun Yan , Qian Ding , Hao Yan
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Abstract

This paper proposed a meta material model with low-frequency wide band gap and band gap tunability, optimized its structure as a multibranch chain structure, and analyzed the band gap relationship of above two models based on Brag's theorem and finite element method. Among them, the fan base structure has a band gap of 65.92 % within 20,000 Hz, and the band gap is optimized to low-frequency after the structure is optimized, and the band gap reaches 75.94 % within 10,000 Hz. The effects of the ligament width and the thickness of the center parcel layer on the band gap distribution of the structure are also discussed, and the wave transmission characteristics in the structure are explored by group and phase velocities to verify the acoustic performance of the structure. The results show that the smaller the ligament thickness is, the lower the first band gap opening frequency of the structure is; when the thickness of the central wrapping layer is increased, the structure develops the band gap at the center frequency of 3000 Hz to a lower frequency and generates an ultra-wide band gap at the center frequency of 6000 Hz. These findings can provide a new idea for low-frequency vibration isolation and noise reduction.

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六边形扇叶带隙调制的综合分析以及低频范围内的优化韧带结构
本文提出了一种具有低频宽带隙和带隙可调性的元材料模型,将其结构优化为多支链结构,并基于布拉格定理和有限元法分析了上述两种模型的带隙关系。其中,扇底结构在 20000 Hz 内的带隙为 65.92%,结构优化后带隙向低频优化,在 10000 Hz 内的带隙达到 75.94%。此外,还讨论了韧带宽度和中心包裹层厚度对结构带隙分布的影响,并通过群速度和相速度探讨了结构中的波传输特性,以验证结构的声学性能。结果表明,韧带厚度越小,结构的第一带隙开口频率越低;当中心包裹层厚度增加时,结构在中心频率 3000 Hz 处的带隙向低频发展,并在中心频率 6000 Hz 处产生超宽带隙。这些发现为低频隔振和降噪提供了新思路。
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