U. Schuffenhauer, Sören Miersch, N. Michalke, T. Schuhmann, A. Bárdos
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Without rise of the external dimensions a higher power density is accessible in the end. The modeling of the machine for FEA calculations, the specific features of the geometry with copper rotor and the effects on the operational parameters are presented. The development of analytical and numerical models for the description of the electromagnetic behavior includes the influence of the bar form and the slot design, the variation of the slot shape as well as the effects on initial torque and breakdown torque. Special attention is paid on the effects of the changed saturation conditions, rotor losses and additional rotor losses. The calculated data and characteristic curves are verified by measurements on a range of 15 kW standard motors. In this project phase always the same stator geometry has been used for comparability. The rotors have identical sheet cross sections with different cage material. 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引用次数: 4
摘要
DIN EN 60034-30对旋转电机的效率要求越来越高,要求为经典感应电机开发新的电力储备。通过应用铜保持架来减少转子损失的原理在非常大的功率范围以及非常小的机器中都是已知的。在此贡献中,介绍了一种用于标准电机的铜压铸新技术,该技术可以在不增加有效体积的情况下减少损耗并实现更高的能效等级。特别开发的铜合金在获得机械屈服强度的同时具有良好的导电性。在不增加外部尺寸的情况下,最终可以获得更高的功率密度。介绍了该机床的有限元建模、铜转子的几何特性及其对运行参数的影响。建立了描述电磁行为的解析和数值模型,包括杆形和槽形设计的影响、槽形的变化以及对初始转矩和击穿转矩的影响。特别注意了饱和条件变化、转子损耗和附加转子损耗的影响。通过对15kw标准电机的测量,验证了计算数据和特性曲线。在这个项目阶段,始终使用相同的定子几何形状的可比性。转子有相同的板横截面与不同的笼材料。压铸铜转子感应电机由于具有较高的效率和良好的力学性能,在中功率领域特别是在电动汽车和高速应用中开辟了新的应用领域。
Modeling and practical investigation of the efficiency and operational behavior of induction machines with die-cast copper rotor
The increasing standardization requirements in DIN EN 60034-30 with higher efficiency demands on rotating electrical machines necessitates the exploitation of new power reserves for the classical induction machine. The principle of reducing the rotor losses by the application of a copper cage is known in the power range of very big as well as very small machines. In this contribution a new technology of copper die-casting for standard motors is introduced which gives the possibility of loss reduction and the achievement of a higher energy efficiency class without increasing the active volume. Specifically developed copper alloys own a favorable electric conductivity at simultaneously gained mechanical yield strength. Without rise of the external dimensions a higher power density is accessible in the end. The modeling of the machine for FEA calculations, the specific features of the geometry with copper rotor and the effects on the operational parameters are presented. The development of analytical and numerical models for the description of the electromagnetic behavior includes the influence of the bar form and the slot design, the variation of the slot shape as well as the effects on initial torque and breakdown torque. Special attention is paid on the effects of the changed saturation conditions, rotor losses and additional rotor losses. The calculated data and characteristic curves are verified by measurements on a range of 15 kW standard motors. In this project phase always the same stator geometry has been used for comparability. The rotors have identical sheet cross sections with different cage material. Due to the higher efficiency and better mechanical properties new application fields are opened to the induction machine with die-cast copper rotor at middle power area especially in electric mobility and high-speed applications.