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Vibration control of platform structures with magnetorheological elastomer isolators based on an improved SAVS law

机译:基于改进的SAVS定律的磁流变弹性体隔离器对平台结构的振动控制

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This paper presents a study on the vibration control of platform structures with magnetorheological elastomer (MRE) isolators. Firstly, a novel MRE isolator design is put forward based on the mechanical properties of MREs, and subsequently a single-degree-of-freedom (SDOF) dynamic model and a multiple-degree-of-freedom (MDOF) dynamic model for platform systems incorporating such isolators are developed. In order to overcome the shortcomings of the conventional on-off control law, an improved semi-active variable stiffness (SAVS) control law is proposed. The proposed SAVS scheme makes full use of the continuously variable stiffness of MREs, and it takes into account the influence of the sampling interval such that the field-dependent restoring force is made to do negative work during the whole sampling interval as far as possible. The results of numerical simulations demonstrate that the improved SAVS control law can achieve better vibration-control effectiveness than the on-off control law. The comparative results are discussed through examining the mechanisms of these two control laws in light of the power spectral density and the energy input. For an MDOF platform a simplified approach is proposed to combine the local response signals with an equivalent SDOF representation to generate the control parameters for individual isolators, and the effectiveness of such a scheme is also verified through numerical simulation.
机译:本文对磁流变弹性体(MRE)隔离器对平台结构的振动控制进行了研究。首先,基于MRE的力学特性,提出了新颖的MRE隔离器设计,随后提出了平台系统的单自由度(SDOF)动态模型和多自由度(MDOF)动态模型。并入了这样的隔离器。为了克服常规开关控制法的缺点,提出了一种改进的半主动变刚度(SAVS)控制法。提出的SAVS方案充分利用了MRE的连续可变刚度,并考虑了采样间隔的影响,从而使得取决于场的恢复力在整个采样间隔内尽可能地发挥负作用。数值模拟结果表明,改进的SAVS控制律比起停控制律具有更好的振动控制效果。通过根据功率谱密度和能量输入来检查这两个控制律的机理,讨论了比较结果。对于MDOF平台,提出了一种简化的方法,将本地响应信号与等效的SDOF表示相结合,以生成各个隔离器的控制参数,并且还通过数值仿真验证了该方案的有效性。

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