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Pseudoleastic SMA Spring Elements for Passive Vibration Isolation: Part I - Modeling

机译:用于被动振动隔离的伪松散SMA弹簧元件:第一部分-建模

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In this work, the effect of pseudoelastic response of shape memory alloys (SMAs) on passive vibration isolation has been investigated. This study has been conducted by developing, modeling, and experimentally validating a SMA-based vibration isolation device. This device consists of layers of preconstrained SMA tubes undergoing pseudoelastic transformations under transverse dynamic loading. These SMA tubes are referred to as SMA spring elements in this study. To accurately model the nonlinear hysteretic response of SMA tubes present in this device, at first a Preisach model (an empirical model based on system identification) has been adapted to represent the structural response of a single SMA tube. The modified Preisach model has then been utilized to model the SMA-based vibration isolation device. Since this device also represents a nonlinear hysteretic dynamical system, a physically based simplified SMA model suitable for performing extensive parametric studies on such dynamical systems has also been developed. Both the simplified SMA model and the Preisach model have been used to perform experimental correlations with the results obtained from actual testing of the device. Based on the studies conducted, it has been shown that SMA-based vibration isolation devices can overcome performance trade-offs inherent in typical softening spring-damper vibration isolation systems. This work is presented as a two-part paper. Part I of this study presents the modification of the Preisach model for representing SMA pseudoelastic tube response together with the implemented identification methodology. Part I also presents the development of a physically based simplified SMA model followed by model comparisons with the actual tube response. Part II of this work covers extensive parametric study of a pseudoelastic SMA spring-mass system using both models developed in Part I. Part II also presents numerical simulations of a dynamic system based on the prototype device, results of actual testing of the device and correlations of the experimental cases with the model predictions.
机译:在这项工作中,已经研究了形状记忆合金(SMA)的拟弹性响应对被动隔振的影响。该研究是通过开发,建模和实验验证基于SMA的隔振设备进行的。该装置由预约束的SMA管层组成,这些管在横向动态载荷下经受伪弹性变形。这些SMA管在本研究中称为SMA弹簧元件。为了准确地模拟此设备中存在的SMA管的非线性滞后响应,首先已对Preisach模型(基于系统识别的经验模型)进行了调整,以表示单个SMA管的结构响应。修改后的Preisach模型随后已用于对基于SMA的隔振设备进行建模。由于该设备还代表非线性滞后动力学系统,因此还开发了一种基于物理的简化SMA模型,适用于在此类动力学系统上进行广泛的参数研究。简化的SMA模型和Preisach模型都已用于与设备的实际测试结果进行实验相关。基于所进行的研究,已经表明基于SMA的隔振设备可以克服典型的软化弹簧-阻尼器隔振系统固有的性能折衷。这项工作分为两部分。本研究的第一部分介绍了用于代表SMA伪弹性管响应的Preisach模型的修改以及实现的识别方法。第一部分还介绍了基于物理的简化SMA模型的开发,然后将模型与实际管响应进行了比较。这项工作的第二部分涵盖了使用第一部分中开发的两个模型对伪弹性SMA弹簧-质量系统进行的广泛参数研究。第二部分还介绍了基于原型设备的动态系统的数值模拟,设备的实际测试结果和相关性具有模型预测的实验案例。

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