A study to determine the act of excitation current on braking torque for a low power eddy current brake

M. O. Gulbahce, D. Kocabas, A. K. Atalay
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引用次数: 13

Abstract

Eddy currents are induced by the nature of alternating flux related to the frequency of the change. In Eddy currents brakes, no precaution is taken in order to set the currents free to flow. In linear applications, Eddy current brakes are used to slow down a moving object by the produced braking force. In rotating applications, mostly braking torque is used to load a motor to be tested. In load tests, a conductive disk is attached to the rotating shaft of a motor which is placed in front of an unclosed magnetic path to permit the Eddy Current to be induced. The unclosed path consists of a magnetic yoke having poles placed on it which are surrounded by windings. Magnetic flux completes its route over the conductive disk whilst causing the Eddy currents to be induced. Eddy currents lead to a breaking torque related to magnetic coupling which is affected by a number of variables. Although the variables which are disk geometry, angular speed, material properties etc. are wellknown, the exact relation between the input and output quantities is still completely uncertain. In this paper, the effect of the change in excitation current to produce the magnetic flux is analysed for the wounded Eddy current brakes, in order to see the advantage of magnetic flux adjustment on braking torque. A previously obtained optimal design is analysed by finite elements method (FEM) for a different number of excitation currents so as to obtain the effect on output data.
小功率涡流制动器励磁电流对制动转矩影响的研究
涡流是由交变磁通的性质引起的,与变化的频率有关。在涡流制动器中,没有采取预防措施以使电流自由流动。在线性应用中,涡流制动器用于通过产生制动力使运动物体减速。在旋转应用中,大多数制动扭矩用于加载待测电机。在负载测试中,将一个导电圆盘连接到电机的旋转轴上,电机被置于未封闭的磁路前面,以诱导涡流。不闭合的路径由一个磁轭组成,磁轭上有被绕组包围的两极。磁通量完成了它在导电盘上的路线,同时引起了涡流的产生。涡流导致与磁耦合有关的断裂转矩,该转矩受许多变量的影响。尽管圆盘几何形状、角速度、材料特性等变量是众所周知的,但输入量和输出量之间的确切关系仍然完全不确定。本文分析了励磁电流变化对损坏的涡流制动器产生磁通的影响,以了解磁通调节对制动转矩的好处。用有限元法对已有的优化设计进行了分析,得到了不同励磁电流数对输出数据的影响。
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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