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A novel magnetorheological actuator for micro-motion control: identification of actuating characteristics

机译:用于微运动控制的新型磁流变致动器:致动特性的识别

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摘要

A novel actuator using magnetorheological (MR) fluid sandwiched between two electrode type coils is proposed in this research work. The key enabling concept of the proposed actuator is to enhance the force due to the magnetic field produced by the electrode coil using the magnetorheological fluid. The direction and amount of current input to the top and bottom electrode coils decide the characteristics such as contraction, extension and the force generated by the actuator, respectively. To obtain the required displacement and actuation force, the viscosity of the MR fluid sandwiched between the two electrode coils is precisely varied by the input current. In this work, the MR fluid is operated in one of the most powerful modes, called squeeze mode, and hence the designed magnetorheological actuator is more powerful and precise. The experimental results shown in this paper show that it has a great advantage in micron-level displacement and vibration control applications. The main contribution of this innovative magnetorheological actuator design is that it can also behave like a damper. This technology will lead to a new dimension in the design of self-actuation and damping devices. In addition, the proposed magnetorheological actuator has additional advantages such as cost effectiveness and easy implementation.
机译:在这项研究工作中,提出了一种使用磁流变(MR)流体夹在两个电极型线圈之间的新型执行器。所提出的致动器的关键使能概念是增强由于使用磁流变流体的电极线圈产生的磁场而引起的力。输入到顶部电极线圈和底部电极线圈的电流的方向和量分别决定诸如致动器的收缩,伸展和力的特性。为了获得所需的位移和驱动力,夹在两个电极线圈之间的MR流体的粘度会通过输入电流精确变化。在这项工作中,MR流体以一种最强大的模式(称为挤压模式)运行,因此设计的磁流变执行器更加强大和精确。本文显示的实验结果表明,它在微米级位移和振动控制应用中具有很大的优势。这种创新的磁流变执行器设计的主要贡献在于,它也可以像阻尼器一样工作。这项技术将为自驱动和阻尼装置的设计带来新的维度。另外,所提出的磁流变致动器具有诸如成本效益和易于实施的附加优点。

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