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A novel high temperature eddy current damper with enhanced performance by means of impedance matching

机译:一种新型高温涡流阻尼器,通过阻抗匹配具有增强的性能

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When an electrically conductive material is exposed to time-varying magnetic fields, eddy currents are generated inside the conductor which oppose the change in the magnetic field. When eddy currents circulate through the conductor they are dissipated in form of heat due to the resistivity of the material. For low frequency vibrations, eddy current damping force is proportional to the vibration speed. Therefore, damping of vibrations at low frequencies or displacement amplitudes becomes increasingly difficult using this technology. Typical damping densities of eddy current dampers range between 0.1 for most devices and 2 MN s m(-4) for bestin-class prototypes. Those values are relatively low compared with, for examples, hydraulic dampers that can reach up to 4 MN s m(-4) . This low density limits potential applications of the technology. In addition, certain applications like vibration isolation of aircraft engines may require the damper to operate at high temperatures. However, most of current damping solutions are rarely effective at temperature higher than 100 degrees C because they frequently use NdFe magnets. In this paper, a passive eddy current damper with enhanced performance for use in high temperatures is presented. The Z-Damper takes advantage from impedance matching inside a magnetic linear gear to amplify the input vibration motion, maximizing the effectiveness of an integrated eddy current damper. SmCo magnets and high temperature components are used in the Z-Damper, potentially enabling operation in a wide temperature range. A theoretical model describing the dynamic behavior of the Z-Damper is presented and a set of experiments were conducted to evaluate its performance. A prototype of the Z-Damper has been designed, manufactured and experimentally demonstrated in a temperature range from 25 degrees C to 200 degrees C under low frequency (up to 60 Hz) harmonic excitations. A maximum equivalent viscous damping coefficient of 35 Ns mm(-1) , measured at
机译:当导电材料暴露于时变磁场时,在导体内产生涡流,这反对磁场的变化。当涡流通过导体循环时,由于材料的电阻率,它们以热量的形式散发。对于低频振动,涡流阻尼力与振动速度成比例。因此,使用该技术,低频或位移幅度的振动阻尼变得越来越困难。对于Bestin-Class原型的大多数设备和2 MN S M(-4),涡流阻尼器的典型阻尼密度范围为0.1。对于实施例,这些值相比,液压阻尼器相比,液压阻尼器可以达到高达4mN S m(-4)。这种低密度限制了该技术的潜在应用。此外,某些应用类似于飞机发动机的振动隔离可能需要阻尼器在高温下操作。然而,大多数电流阻尼解决方案在高于100摄氏度的温度下很少有效,因为它们经常使用NDFE磁体。本文提出了一种具有增强性能的无源涡流阻尼器,用于在高温下使用。 Z-Damper利用磁性线性齿轮内部的阻抗匹配来放大输入振动运动,最大化集成涡流阻尼器的有效性。 SMCO磁铁和高温部件在Z-DUMPER中使用,可能在宽温度范围内能够进行操作。提出了描述Z-Damper的动态行为的理论模型,并进行了一组实验以评估其性能。在低频(高达60Hz)谐波激发下,设计,在温度范围内的温度范围内,制造和实验地设计,制造和实验,在25℃至200摄氏度。测量的35 ns mm(-1)的最大等效粘性阻尼系数

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