不同绕组类型对电磁直线执行器热性能的改善及其对复杂阻抗的影响

Lukas Reißenweber, A. Stadler, J. V. Lindenfels, J. Franke
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引用次数: 4

摘要

以现有的直线执行器为例,研究了以氧化铝为绝缘材料的铝绕组体与包覆铜线绕组体的优缺点。最大电流负载的增加(增加的力效应)是通过改善电阻损耗的散热来实现的。如果要保持力的作用,增加电流可以减少绕组的数量,从而也减少了材料和安装空间。虽然由铝制成的线圈由于铝的导电性比铜低而受到更高的损耗,但由于氧化层的导热性,这些损耗可以更好地从执行器中消散。与环氧树脂绝缘相比,氧化层的导热性约高140倍,从而显著降低了热点温度。同时,卷绕体可以承受更高的温度,从而进一步减少安装空间。此外,低层厚度的氧化铝允许更高的填充系数(更紧凑的设计)。再加上氧化铝的介电常数比环氧树脂高3倍,这对有效容量和电阻产生了显著影响,从而影响了电行为。这是工作的第二个重点。分析了不同线圈概念对复杂阻抗的影响。因此,解析计算与详细的轴对称有限元模拟相结合。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improved Thermal Behavior of an Electromagnetic Linear Actuator with Different Winding Types and the Influence on the Complex Impedance
Using the example of an existing linear actuator, the advantages and disadvantages of a winding body made of aluminum with aluminum oxide as insulation in comparison to a winding body made of coated copper wire are investigated. The increase in the maximum current load (increased force effect) is achieved by an improved thermal heat dissipation of the resistive losses. If the force effect is to be maintained, the increase of the current can reduce the number of windings and thus also the material and installation space. Although the coil made of aluminum is subject to higher losses due to the lower electrical conductivity of aluminum compared to copper, these losses can be better dissipated from the actuator due to the thermal conductivity of the oxide layer. The thermal conductivity of the oxide layer is about 140 times higher compared to epoxy insulation that a significant reduction in the hot spot temperature is achieved. At the same time, the winding body can be subjected to significantly higher temperatures, which enables a further reduction in installation space. In addition, the low layer thickness of aluminum oxide allows a higher filling factor (more compact design). Together with the 3 times higher permittivity of aluminum oxide compared to epoxy, this has significant effect on the effective capacities as well as the resistance and thus on electric behavior. This is the second focus of the work. The influence of the different coil concepts on the complex impedance is analyzed. Therefore analytical calculations are combined with detailed axial symmetrical FEM simulations.
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