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A Linear Model of Magnetostrictive Actuators for Active Vibration Control

机译:用于主动振动控制的磁致伸缩执行器的线性模型

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摘要

If there is one actuator technology that is almost exclusively linked to a single application, that is the magnetostrictive actuator, the application is active structural vibration control (AVC). Almost all the applications described in the literature on magnetostrictive actuators are related in one way or another to vibration suppression mechanisms. Magnetostrictive actuators (MA) deliver high-output forces and relatively high displacements (compared to other emerging actuator technologies) and can be driven at high frequencies. These characteristics make them suitable for a variety of vibration control applications. The use of this technology, however, requires an accurate knowledge of the dynamics of such actuators. The paper introduces a linear model of magnetostrictive actuators hold in a range of frequencies below 2 kHz useful in real time application as AVC. The hypotesis supporting the linearity of the systems are discussed and the theoretical model is presented. Finally the model is validated by testing two different models of magnetostrictive actuators and comparing experimental results with the theoretical ones.
机译:如果有一种几乎完全与单个应用程序关联的执行器技术,即磁致伸缩执行器,则该应用程序为主动结构振动控制(AVC)。文献中关于磁致伸缩致动器的几乎所有应用都以一种或另一种方式与振动抑制机制相关。磁致伸缩执行器(MA)提供高输出力和相对较高的位移(与其他新兴执行器技术相比),并且可以高频驱动。这些特性使其适合各种振动控制应用。然而,使用该技术需要对这种致动器的动力学有准确的了解。本文介绍了一种磁致伸缩执行器的线性模型,该模型在2 kHz以下的频率范围内保持有效,可作为AVC实时应用。讨论了支持系统线性的假设,并提出了理论模型。最后,通过测试两种不同的磁致伸缩执行器模型并将实验结果与理论模型进行比较,从而验证了该模型。

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