Study on the Vibration Isolation Mechanism of Loofah Sponge.

IF 3.9 3区 医学 Q1 ENGINEERING, MULTIDISCIPLINARY Biomimetics Pub Date : 2024-12-26 DOI:10.3390/biomimetics10010005
Weijun Tian, Xu Li, Xiaoli Wu, Linghua Kong, Naijing Wang, Shasha Cao
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Abstract

The loofah sponge has a complex, three-dimensional, porous mesh fiber structure characterized by markedly low density and excellent vibration isolation properties. In this study, loofah sponges made from dried Luffa cylindrica were divided into two components: the core unit and the shell unit, which were further subdivided into five regions. Static compression performance tests and vibration isolation analysis were conducted on the loofah sponge and its individual parts. Scanning models of the loofah sponge were generated using the RX Solutions nano-CT system in France, and finite element analysis was performed using the ANSYS Workbench. This study focused on the vibration isolation performance of the loofah sponge, examining energy absorption and isolation, as well as the vibrational strength of its isolation performance. The goal was to explore the functions and vibration isolation mechanisms of its different components. The results demonstrated that the loofah sponge structure exhibits rigid-flexible coupling, with the coordinated action of multiple parts producing highly effective energy absorption and isolation of the vibration intensity effect. Specifically, the core unit of the loofah sponge provides the best isolation effect of axial vibration intensity, with an acceleration vibration transfer of -60 dB at 300 Hz. Furthermore, both the core and shell unit structures combine to provide multidirectional low-frequency vibration isolation. This study of the loofah sponge's vibration isolation mechanism provides a theoretical foundation and new insights for the design of bionic low-frequency vibration isolation devices.

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丝瓜海绵隔振机理研究。
丝瓜海绵具有复杂的三维多孔网状纤维结构,具有明显的低密度和优异的隔振性能。本研究以丝瓜为原料,将丝瓜海绵分为核心单元和壳单元两部分,再细分为5个区域。对丝瓜海绵及其各部件进行了静压缩性能试验和隔振分析。利用法国RX Solutions纳米ct系统生成丝络海绵的扫描模型,并利用ANSYS Workbench进行有限元分析。本研究主要研究丝瓜海绵的隔振性能,考察其吸能和隔振性能,以及其隔振性能的振动强度。目的是探索其不同部件的功能和隔振机理。结果表明,丝瓜海绵结构呈现刚柔耦合,多部件协同作用,产生了高效的吸能和隔振强度效应。具体而言,丝瓜海绵核心单元对轴向振动强度的隔离效果最好,在300 Hz时的加速度振动传递为-60 dB。此外,核心和壳单元结构结合起来提供多向低频隔振。丝瓜海绵隔振机理的研究为仿生低频隔振装置的设计提供了理论基础和新的见解。
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来源期刊
Biomimetics
Biomimetics Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
3.50
自引率
11.10%
发文量
189
审稿时长
11 weeks
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