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Design and modeling of a magnetic shock absorber based on eddy current damping effect

机译:基于涡流阻尼效应的电磁减振器设计与建模

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This paper describes the design, modeling, and analysis of a novel magnetic spring-damper. This cost-effective, self-powered magnetic spring-damper utilizes two permanent magnets and a conductive aluminum plate to generate both spring and variable damping effects. Eddy currents are generated in the aluminum plate due to its relative motion with respect to the magnets. These eddy currents produce a repulsive force that is proportional to the velocity of the conductor such that the moving magnet and conductor act as a viscous damper. The structure of the proposed passive magnetic spring-damper is simple, and does not require an external power supply or any other electronic device. An accurate, analytical model of the system is obtained by using the electromagnetic theory to estimate the electromagnetic forces, induced in the system. The newly developed model can be used to design high-performance dampers for various applications. To optimize the design, simulations are conducted and the design parameters are evaluated. After a magnetic spring-damper prototype is fabricated, experiments are conducted to verify the accuracy of the theoretical model. The eddy current model exhibits a 7.5% RMS error for the damping ratio estimation, and a damping ratio as high as 40 N s/m is achieved by the fabricated prototype. (c) 2008 Elsevier Ltd. All rights reserved.
机译:本文介绍了新型电磁弹簧阻尼器的设计,建模和分析。这种经济高效的自供电磁性弹簧减震器利用两个永磁体和一块导电铝板来产生弹簧和可变的阻尼效果。由于铝板相对于磁体的相对运动,在铝板上会产生涡流。这些涡流产生与导体速度成比例的排斥力,从而使运动的磁体和导体充当粘性阻尼器。所提出的无源磁性弹簧阻尼器的结构简单,并且不需要外部电源或任何其他电子设备。通过使用电磁理论估算在系统中感应的电磁力,可以获得系统的精确分析模型。新开发的模型可用于设计用于各种应用的高性能阻尼器。为了优化设计,进行了仿真并评估了设计参数。在制造了磁性弹簧阻尼器原型之后,进行了实验以验证理论模型的准确性。涡流模型在阻尼比估算中表现出7.5%的RMS误差,并且通过所制造的原型可以实现高达40 N s / m的阻尼比。 (c)2008 Elsevier Ltd.保留所有权利。

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