一种用于低速风洞的简易磁悬浮系统的开发

S. Surya, S. Ramyashree, Rashmi Nidhi, D. Singh, R. Aparna
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引用次数: 3

摘要

目前的工作旨在开发一种适合低速风洞的磁悬浮(MAGLEV)系统,通过构建模块设计,开发和实验来支持轻型模型。给出了相应电路的设计、元器件的设计、在ORCAD-PSPICE上的仿真结果和台架试验结果。将一组扣式永磁体(总重量为4克)作为悬浮物体,并使用线圈缠绕的电磁铁产生与物体重量相反的磁力。物体与电磁铁之间的距离使用本地可用的霍尔效应传感器测量,输出放大使用本地可用的差分放大器。脉宽调制用于控制产生所需电磁力所需的电流。结果表明,即使电磁铁能够悬浮物体,保持物体的CG相对于电磁力中心的完美对齐是一个重要的问题。因此,建议使用条形磁铁和马蹄形磁铁来产生所需的电磁力,这将是一个解决方案。此外,由于原型模型可以经历沿着三个轴的空气动力和力矩,一个令人满意的磁悬浮系统需要使用多个马蹄形磁铁,这些磁铁可以提供矢量电磁力,以保持物体的力和力矩平衡。
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Development of a simple MAGLEV system for a low-speed wind tunnel
The present work seeks to develop a magnetic levitation (MAGLEV) system suitable for a low-speed wind tunnel, to support light-weight models through building-block design, development and experimentation. Design of an appropriate electrical circuit, design of components, results obtained by simulation (on ORCAD-PSPICE) and experimental results obtained through bench-tests are presented. A set of button-type permanent magnet (total weight = 4 gm.) was considered as the object to be levitated and a coil-wound electromagnet used to create a magnetic force which opposed the weight of the object. Distance between the object and the electromagnet was measured using locally available Hall effect sensors and the output amplified using a locally available differential amplifier. Pulse Width Modulation was used to control the current required to generate the required electromagnetic force. The results show that even though the electromagnet was capable of levitating the object, maintaining perfect alignment of the CG of the object with respect to the centre of the electromagnetic force is an important issue. It is therefore suggested that a bar-magnet for the object and a horseshoe magnet for generating the required electromagnetic force would provide a solution. Further, since the model of a prototype can experience aerodynamic forces and moments along three axes, a satisfactory MAGLEV system requires use of multiple horseshoe magnets which can provide vectored electromagnetic forces to keep the object in force as well as moment equilibrium.
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