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Dynamic Performance of Laminated High-Damping and High-Stiffness Composite Structure Composed of Metal Rubber and Silicone Rubber

机译:金属橡胶和硅橡胶层压高阻尼和高刚度复合结构的动态性能

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摘要

In this study, a laminated composite damping structure (LCDS) with metal rubber (MR) as matrix and silicone rubber (SR) as reinforcement has been designed. The embedded interlocking structure formed by the multi-material interface of the LCDS can effectively incorporate the high damping characteristics of traditional polymer damping materials and significantly enhance the adjustable stiffness of the damping structure. Based on the periodic cyclic vibration excitation, dynamic tests on different laminated structures were designed, and the damping performance and fatigue characteristics under periodic vibration excitation of the LCDS, based on MR and SR, were explored in depth. The experimental results exhibited that, compared to single-compound damping structures, the LCDS with SR as reinforcement and MR as matrix has excellent stiffness and damping characteristics. The incorporation of the silicon-based reinforcement can significantly improve the performance of the entire structure under cyclic fatigue vibration. In particular, the effects of material preparation and operating parameters on the composite structure are discussed. The effects of MR matrix density, operating frequency, amplitude, and preload on the stiffness and damping properties of the MR- and SR-based LCDS were investigated by the single factor controlled variable method. The results demonstrated that the vibration frequency has little effect on the LCDS damping performance. By increasing the density of the MR matrix or increasing the structural preload, the energy dissipation characteristics and damping properties of the LCDS can be effectively improved. With the increase in vibration excitation amplitude, the energy consumption of the LCDS increases, and the average dynamic stiffness changes at different rates, resulting in the loss factor decreasing first and then increasing. In this study, a damping structure suitable for narrow areas has been designed, which overcomes the temperature intolerance and low stiffness phenomena of traditional polymer rubber materials, and provides effective guidance for the design of damping materials with controllable high damping and stiffness.
机译:在本研究中,设计了作为增强件的金属橡胶(MR)作为基质和硅橡胶(SR)的层压复合阻尼结构(LCD)。由LCD的多材料界面形成的嵌入式互锁结构可以有效地掺入传统聚合物阻尼材料的高阻尼特性,并显着提高阻尼结构的可调节刚度。基于周期性循环振动振动,设计了不同层压结构的动态测试,深入探讨了基于MR和SR的LCD的周期性振动激励下的阻尼性能和疲劳特性。实验结果表明,与单复合阻尼结构相比,具有SR作为增强和MR作为基质的LCD具有优异的刚度和阻尼特性。硅基增强件的掺入可以显着提高循环疲劳振动下整个结构的性能。特别地,讨论了材料制备和操作参数对复合结构的影响。通过单因素控制可变方法研究了MR矩阵密度,工作频率,幅度和预载对基于MR和SR的LCD的刚度和阻尼特性的影响。结果表明,振动频率对LCDS阻尼性能几乎没有影响。通过提高MR矩阵的密度或增加结构预载,可以有效地改善LCD的能量耗散特性和阻尼特性。随着振动激励幅度的增加,LCD的能量消耗增加,并且平均动态刚度以不同的速率变化,导致首先降低损耗因子,然后增加。在这项研究中,设计了适用于狭窄区域的阻尼结构,其克服了传统聚合物橡胶材料的温度不耐受和低刚度现象,并为具有可控高阻尼和刚度的阻尼材料提供了有效的指导。

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