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PARAMETRIC STUDY AND EXPERIMENTAL CORRELATION OF AN SMA BASED DAMPING AND PASSIVE VIBRATION ISOLATION DEVICE

机译:基于SMA的阻尼和被动振动隔离装置的参数研究和实验相关性

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In this work, the effect of pseudoelastic response of shape memory alloys (SMAs) on damping and passive vibration isolation will be presented. This study has been conducted by developing and utilizing a shape memory alloy (SMA) model (a physically based SMA model) to perform extensive parametric studies on a non-linear hysteretic dynamic system, representing an actual SMA damping and passive vibration isolation prototype device. The prototype device consists of SMA tubes undergoing pseudoelastic transformations under transverse loading. To accurately model the non-linear hysteretic response of SMA tubes present in the prototype device, a Preisach model (an empirical model based on system identification) has also been modified to simulate the response of the prototype device. Both the simplified SMA model and the Preisach model have been utilized to perform experimental correlations with the results obtained from actual testing of the prototype device. The investigations show that variable damping and tunable isolation response are major benefits of SMA pseudoelasticity. Correlation of numerical simulations and experimental results has shown that large amplitude displacements causing phase transformations of SMA components are necessary for an SMA based vibration isolation device to be effective in reducing the transmissibility of a dynamic system. It has also been shown that SMA based devices can overcome performance trade-offs inherent in a typical softening spring-damper vibration isolation system. In terms of modeling, the Preisach model gave relatively accurate results due to close proximity in predicting actual SMA component behavior. However, for a generic parametric study, the simplified SMA model has been found to be more useful as it is motivated from the constitutive response of SMAs and hence, could easily incorporate different changes in system conditions.
机译:在这项工作中,将介绍形状记忆合金(SMA)对阻尼和被动振动隔离的伪弹性响应的影响。该研究已经通过开发和利用形状记忆合金(SMA)模型(物理上的SMA模型)进行,以对非线性滞后动态系统进行广泛的参数研究,代表实际的SMA阻尼和被动隔振原型装置。原型设备由横向载荷下的伪弹性变换的SMA管组成。为了准确地模拟原型装置中存在的SMA管的非线性滞后响应,还修改了预震模型(基于系统识别的实证模型)以模拟原型设备的响应。已经利用了简化的SMA模型和预测模型来执行实验相关性与从原型设备的实际测试中获得的结果进行实验相关性。调查表明,可变阻尼和可调隔离响应是SMA假弹性的主要优点。数值模拟的相关性和实验结果表明,基于SMA的振动隔离装置有效地降低动态系统的传递性,所以需要大的幅度位移。还显示,基于SMA的设备可以克服典型软化弹簧阻尼隔振系统中固有的性能权衡。在建模方面,由于预测实际SMA组件行为,因此预测模型引起了相对准确的结果。然而,对于通用参数研究,已经发现简化的SMA模型更有用,因为它是从SMA的组成态响应的动机,因此可以很容易地纳入系统条件的不同变化。

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