海马外骨骼启发结构,具有线性到扭转过渡特性,用于低频隔振

IF 6.2 3区 综合性期刊 Q1 Multidisciplinary
Bo Yan , Shangwen Wang , Peng Ling , Zhibo Yang , Hongye Ma , Qinchuan Li
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引用次数: 0

摘要

海马的方形外骨骼可以将直线运动转化为扭转,以耗散能量,并在受到外界干扰时保护脊椎动物。受海马方形外骨骼线性向扭转过渡的自我保护机制的启发,设计了一种新型海马外骨骼启发结构(SES),该结构由两个斜杆和弹簧以及一个旋转圆盘组成。建立了相应的几何关系和动力学模型,揭示了相应的非线性刚度、可调的高承载能力和大工作范围的特点。根据拉格朗日方程推导了系统的动力方程,用谐波平衡法得到了系统的频响关系。然后综合研究了结构参数对非线性恢复力、非线性惯性、非线性二次力、非线性阻尼和隔振性能的影响,实现了结构的低频隔振特性。制作了SES样机,并进行了相应的实验,验证了SES的低频隔振性能。由于SES的线性-扭转特性,其测试峰值频率可降至1.48 Hz,从而产生扭转惯性和反谐振现象。非线性阻尼与输入位移呈正相关。SES在大激励幅值下具有较好的隔振性能。本文为具有线性-扭转过渡机构的低频仿生隔振器的设计提供了指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Seahorse‐exoskeleton‐inspired structure with linear‐to‐torsion transition property for low-frequency vibration isolation

Seahorse‐exoskeleton‐inspired structure with linear‐to‐torsion transition property for low-frequency vibration isolation
The square exoskeleton of seahorses can transit linear motion into torsion to dissipate energy and protect the vertebrate when subjected to external disturbances. Inspired by the self-protection mechanism of the linear-to-torsion transition of the square exoskeleton of seahorses, a novel seahorse-exoskeleton-inspired structure (SES) is designed, which consists of two oblique rods and springs, and a rotational disc. The geometric relationship and dynamic model are established to reveal the corresponding nonlinear stiffness, adjustable high carrying capacity and large working range characteristics. The dynamic equation of the SES is derived according to the Lagrange equation and the frequency response relationship is obtained with the harmonic balance method. Then the effects of structural parameters on the nonlinear restoring force, nonlinear inertia, nonlinear quadratic force, nonlinear damping and the vibration isolation performance are studied comprehensively to achieve the low-frequency isolation characteristics. A SES prototype was manufactured and the corresponding experiment was carried out to verify the low-frequency vibration isolation performance of SES. The tested peak frequency of the unloaded SES can be lower to 1.48 Hz due to the linear-to-torsion property, which can generate torsional inertia and anti-resonance phenomenon. Furthermore, the nonlinear damping is positively correlated with input displacement. SES has a better vibration isolation performance under large excitation amplitude. This paper provides a guideline for the design of low-frequency bio-inspired vibration isolators with the linear-to-torsion transition mechanism.
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来源期刊
Fundamental Research
Fundamental Research Multidisciplinary-Multidisciplinary
CiteScore
4.00
自引率
1.60%
发文量
294
审稿时长
79 days
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