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Model for loss calculation of wireless in-wheel motor concept based on magnetic resonant coupling

机译:基于磁谐振耦合的轮毂无线概念车损耗计算模型

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Adopting the In-Wheel Motor technology (IWM) for the traction system of electric vehicles (EVs) leads to several advantages. Since the motors can drive each wheel in the vehicle independently, the EV can take full advantages of technologies such as anti-slip control of tires for enhanced safety and performance, and optimal torque distribution for extension of the vehicle mileage. However, a major problem of conventional IWM is that the power cables and signal wires from the vehicle body to the wheel are exposed to harsh environment, and may be damaged due to continuous bending, impact with debris from the road, or become brittle because of the freezing in snowy areas. To overcome this problem, a system in which the IWM receives its power wirelessly from the vehicle body has been proposed, resulting in the Wireless In-Wheel Motor (W-IWM) concept. This cutting-edge technology eliminates the risk of cable disconnection of IWM and therefore raises the reliability of the whole vehicle system. Due to steering and to the operation of suspensions, the relative position between the car body and the wheel assembly changes during driving. Therefore, the wireless power transfer has been implemented using the principle of magnetic resonant coupling, which is robust to misalignment between the transmitter and receiver coils. A single phase inverter is installed in the car body side (transmitter side). Single phase converter is also installed the wheel side (receiver side). This paper discusses two control schemes on transmitter side and three control schemes on receiver side. The loss analysis of each converter aims to verify the most efficient control combination. Eventually, the DC/DC chopper control regulating the inverter output voltage amplitude is selected because of its better efficiency compared to other control schemes on transmitter side. In addition, this paper proposes symmetric synchronous rectification control on receiver side. The proposed control effectiveness is confirmed by numerical analysis considering its efficiency and total harmonic distortion.
机译:在电动汽车(EV)的牵引系统中采用轮毂电机技术(IWM)具有许多优点。由于电动机可以独立驱动车辆中的每个车轮,因此EV可以充分利用诸如轮胎防滑控制以增强安全性和性能以及优化扭矩分配以延长车辆行驶里程等技术的优势。然而,传统的IWM的主要问题在于,从车身到车轮的电力电缆和信号线暴露于恶劣的环境中,并且可能由于连续弯曲,道路碎屑的撞击而损坏,或者由于以下原因而变脆。多雪地区的冰冻。为了克服这个问题,已经提出了一种系统,其中IWM从车身无线地接收其功率,从而产生了无线轮毂电动机(W-IWM)的概念。这项先进的技术消除了IWM电缆断开的风险,因此提高了整个车辆系统的可靠性。由于转向和悬架的操作,车身和车轮组件之间的相对位置在行驶过程中会发生变化。因此,已经使用磁共振耦合原理实现了无线电力传输,该原理对发射器线圈和接收器线圈之间的未对准具有鲁棒性。单相逆变器安装在车身侧(发射器侧)。单相转换器也安装在车轮侧(接收器侧)。本文讨论了发射机侧的两种控制方案和接收机侧的三种控制方案。每个转换器的损耗分析旨在验证最有效的控制组合。最终,选择了调节逆变器输出电压幅度的DC / DC斩波器控制,因为与发射机侧的其他控制方案相比,它具有更高的效率。另外,本文提出了在接收器侧的对称同步整流控制。考虑到其效率和总谐波失真,通过数值分析证实了所提出的控制有效性。

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