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Electromagnetic Field Analysis and Modeling of a Relative Position Detection Sensor for High Speed Maglev Trains

机译:高速磁悬浮列车相对位置检测传感器的电磁场分析与建模

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摘要

The long stator track for high speed maglev trains has a tooth-slot structure. The sensor obtains precise relative position information for the traction system by detecting the long stator tooth-slot structure based on nondestructive detection technology. The magnetic field modeling of the sensor is a typical three-dimensional (3-D) electromagnetic problem with complex boundary conditions, and is studied semi-analytically in this paper. A second-order vector potential (SOVP) is introduced to simplify the vector field problem to a scalar field one, the solution of which can be expressed in terms of series expansions according to Multipole Theory (MT) and the New Equivalent Source (NES) method. The coefficients of the expansions are determined by the least squares method based on the boundary conditions. Then, the solution is compared to the simulation result through Finite Element Analysis (FEA). The comparison results show that the semi-analytical solution agrees approximately with the numerical solution. Finally, based on electromagnetic modeling, a difference coil structure is designed to improve the sensitivity and accuracy of the sensor.
机译:高速磁悬浮列车的长定子轨道具有齿槽结构。该传感器通过基于无损检测技术检测长定子齿槽结构,从而获得精确的牵引系统相对位置信息。传感器的磁场建模是典型的具有复杂边界条件的三维(3-D)电磁问题,本文对此进行了半解析研究。引入了二阶矢量电势(SOVP),以将矢量场问题简化为一个标量场,其解决方案可以根据多极子理论(MT)和新等效源(NES)用级数展开表示方法。扩展的系数基于边界条件通过最小二乘法确定。然后,通过有限元分析(FEA)将解决方案与仿真结果进行比较。比较结果表明,半解析解与数值解近似吻合。最后,基于电磁建模,设计了差动线圈结构以提高传感器的灵敏度和准确性。

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