在线策略和方法,以减少平衡努力在转子生产中的电力驱动

B. Hofmann, M. Masuch, P. Kümmeth, J. Franke, P. Frey, M. Merklein
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引用次数: 7

摘要

电驱动的制造仍然是时间和成本密集的。为了减少加工时间,平衡被确定为具有很高创新潜力的工艺之一。与大多数研究工作相反,本文遵循的方法集中在转子装配和实际平衡操作之前的工艺步骤的影响。在目前的生产过程中,称重几乎完全是在生产线结束时进行的。然而,将永磁体集成到层压堆栈(IPM-Drives)中的驱动器的生产已经提供了预制的单个模块。这些模块可以单独评估其不平衡,然后可以组合在一起,以达到最小的不平衡,而无需额外称重。为了装配转子和轴,在预平衡操作之后又进行了新的连接操作。为此,轴具有特殊的载体几何形状,并在轴向压入层压堆栈。这样,就执行了成形连接操作。两种工艺步骤的结合可以提高生产过程的效率。本文介绍了改进转子生产工艺的方法,重点是选择平衡步骤和创新的连接操作。因此,本文提出了在组装操作之前评估单层堆叠不平衡的策略。介绍了一种计算具有最小不平衡的理想转子组合的方法。根据转子拓扑,将考虑有关自由旋转的限制。开发的概念将被实验验证。根据获得的结果,减少不平衡高达30%是可能的。为了证明选择性平衡和连接操作的适用性,对径向跳动进行了连接试验和分析。
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In-line strategies and methods to reduce balancing efforts within rotor production for electric drives
The manufacturing of electric drives is still time- and cost-intensive. In order to reduce processing time balancing is identified as one of the processes with a high potential for innovation. In contrast to most research efforts, the presented paper follows the approach of concentrating on the impact of process steps prior to rotor assembly and the actual balancing operation. Within current production processes, weighing is almost exclusively performed as an end-of-line. However, the production of drives with permanent magnets integrated into the lamination stack (IPM-Drives) already deliver prefabricated single modules. Those modules can be evaluated separately regarding their imbalance and then can be combined in a manner to achieve a minimum imbalance without additional weighing. In order to assemble rotor and shaft, a new joining operation is subsequent to the pre-balancing operation. For this, the shaft has special carrier geometries and is pressed in axial direction into the lamination stack. Thus, a joining by forming operation is performed. The combination of both process steps could increase the efficiency of production process. The paper describes methods to improve the production process for rotors focusing on a selective balancing step and an innovative joining operation. Therefore strategies to evaluate the imbalance of single lamination stacks prior to their assembly operation are presented. A procedure to calculate ideal rotor assemblies with minimum imbalance will be introduced. Depending on the rotor topology, restrictions regarding free rotation will be considered. The developed concept will be experimentally validated. Based on obtained results, a reduction of imbalance up to 30 % may be possible. To proof the applicability of the selective balancing and the joining operation, joining test were carried out and analyzed regarding the radial runout.
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