Diamagnetic suspension system for small rotors

R. Moser, H. Bleuler, J. Sandtner
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引用次数: 18

Abstract

A novel frictionless motor-bearing combination, featuring a passive five degrees of freedom (DOF) suspension system is presented in this paper. In conventional frictionless systems, levitation is achieved by means of feedback controlled electromagnetics or electrostatics (active bearings), permanent magnets in combination with displacement (passive bearings) or by superconductive repulsion of permanent magnets. Earnshaw's theorem discards the possibility of passive static magnetic levitation, but by taking advantage of the diamagnetic effect, a passive magnetic system can be stabilized. In the proposed system, all the degrees of freedom of a disc-shaped magnetic rotor, except its rotation around the main axis, are stabilized using the diamagnetic properties of materials such as bismuth and graphite. As the weight of the rotor is compensated with a permanent magnet, the proposed system can make use of the weak diamagnetic repelling forces, presenting the only known principle for 'real' levitation (no energy input) at room temperature. The presented approach leads to very compact energy-saving solutions. The principle of diamagnetic levitation is well known and understood. The presented experimental work adds radial stiffness to the classic three degrees of freedom suspension and powers the rotor using an induction motor. The realized motor is hardly bigger than one cubic centimeter and turns with up to 800 rpm. This paper intends to draw attention to this uncommon method of levitation and to show that it could be used to design micro-mechatronical actuators.
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小转子抗磁悬挂系统
提出了一种新型无摩擦电机-轴承组合的被动五自由度悬架系统。在传统的无摩擦系统中,悬浮是通过反馈控制的电磁或静电(主动轴承)、永磁体与位移(被动轴承)的结合或永磁体的超导排斥来实现的。恩肖定理摒弃了被动静态磁悬浮的可能性,但利用抗磁效应,可以使被动磁系统稳定下来。在所提出的系统中,圆盘形磁转子的所有自由度,除了绕主轴旋转外,都是利用铋和石墨等材料的抗磁性来稳定的。由于转子的重量由永磁体补偿,所提出的系统可以利用弱抗磁性排斥力,在室温下提出“真实”悬浮(无能量输入)的唯一已知原理。提出的方法导致非常紧凑的节能解决方案。反磁悬浮的原理是众所周知的。提出的实验工作增加径向刚度的经典三自由度悬架和动力转子使用感应电机。所实现的电机几乎不大于一立方厘米,转速高达800转。本文旨在引起人们对这种罕见的悬浮方法的注意,并表明它可以用于设计微机电致动器。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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