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On the use of electrical and optical strain gauges paired to magnetostrictive patch actuators

机译:关于将电子和光学应变仪与磁致伸缩膜片执行器配对使用

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Giant Magnetostrictive Actuators (GMA) can be profitably used in application of vibration control on smart structures. In this field, the use of inertial actuators based on magnetostrictive materials has been consolidate. Such devices turn out to be very effective in applications of vibration control, since they can be easily paired with sensors able to ensure the feedback signal necessary to perform the control action. Unlike most widespread applications, this paper studies the use of patch magnetostrictive actuators. They are made of a sheet of magnetostrictive material, rigidly constrained to the structure, and wrapped in a solenoid whose purpose is to change the intensity of the magnetic field within the material itself. The challenge in the use of such devices resides in the impossibility of having co-located sensors. This limit may be exceeded by using strain gauge sensors to measure the deformation of the structure at the actuator. This work analyzes experimentally the opportunity of introducing, inside a composite material structure, both the conventional electric strain gauges and the less conventional optical sensors based on Bragg's gratings. The performance of both solutions are analyzed with particular reference to the signal to noise ratio, the resolution of the sensors, the sensitivity to variations of the electric and magnetic fields and the temperature change associated with the operation of the actuator.
机译:巨磁致伸缩执行器(GMA)可在智能结构的振动控制应用中获利。在该领域,基于磁致伸缩材料的惯性致动器的使用已得到巩固。事实证明,这样的设备在振动控制的应用中非常有效,因为它们可以轻松地与能够确保执行控制动作所需的反馈信号的传感器配对。与大多数应用不同,本文研究了贴片磁致伸缩执行器的使用。它们由一块磁致伸缩材料制成,刚性地限制在结构上,并包裹在螺线管中,螺线管的目的是改变材料本身内部的磁场强度。使用这样的设备的挑战在于不能在同一位置放置传感器。通过使用应变仪传感器来测量执行器处结构的变形,可以超过此限制。这项工作通过实验分析了在复合材料结构内引入常规电应变仪和基于布拉格光栅的次常规光学传感器的机会。将特别参考信噪比,传感器的分辨率,对电场和磁场变化的敏感性以及与执行器操作相关的温度变化来分析这两种解决方案的性能。

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