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Optimization of the Linear Coil Winding Process by Combining New Actuator Principles on the Basis of Wire Forming Analysis

机译:基于电线形成分析的新型致动器原理结合线性线圈绕组过程的优化

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Due to the electrification of the automotive drive train new challenges in production technology must be faced. One of the big challenges are the copper losses within the electric drive that can be reduced by an optimized layer structure of the winding on the coil. This paper is targeting an optimized linear coil winding process with a special focus on the first layer which is decisive for the quality of the following layers. Here, the forming influence of the wire during winding on the bobbin is examined in particular. Crucial parameters in this context are the change in diameter through bending and the development of the clearance between wire and coil bobbin including their main influencing parameters. Especially the wire guide represents a machine element which influences the clearance negatively. This paper focuses on deriving critical process points from a process model and deriving forming strategies for controlling the winding process. For the first time, two actuator principles are combined to compensate the fluctuations in wire tensile force during winding and also to minimize the influence of the wire guide by moving it according to a FE simulation. Therefore, firstly the state of the art is analyzed and characterized in order to derive systematically the selection of the actuators and the control strategy. This is done in the context of achieving a higher efficiency of the electric motor through a deeper understanding of the forming process. On the one hand the integration of a fluidic muscle is serving as a compensation of the free wire length between the wire guide and the coil bobbin for a normalization of the wire tensile force. On the other hand, a piezo actuator is preventing the pre-deformation of the wire by the wire guide for keeping the clearance at a low level.
机译:由于汽车传动系统的电气化,生产技术的新挑战必须面临。其中一个挑战是电动驱动内的铜损失,其可以通过线圈上的绕组的优化层结构来减小。本文旨在瞄准优化的线性线圈绕组过程,其特殊聚焦在第一层上是对下层的质量决定性的。这里,特别地检查了绕组缠绕期间的线的形成影响。在这种情况下的关键参数是通过弯曲的直径和线圈和线圈筒管之间的间隙的变化,包括它们的主要影响参数。特别是线引导件代表一种机器元件,其消极影响间隙。本文重点介绍从过程模型中导出关键过程点并导出用于控制绕组过程的形成策略。首次,组合两个致动器原理以补偿绕组期间的线拉力的波动,并且还通过根据FE模拟移动丝引导件的影响。因此,首先分析技术的状态,以系统地选择致动器和控制策略的选择。这是通过更深入地理解形成过程的电动机效率的背景下完成的。一方面,流体肌肉的整合用作线引导和线圈线轴之间的自由线长度的补偿,用于归一化线拉力。另一方面,压电致动器通过线引导件防止导线预变形,以保持低电平的间隙。

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