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Methods to Reduce Air-Gap Center Region Magnetic and Electric Fields for Large Gap Inductive Wireless Power Transfer Systems

机译:减少大间隙感应无线电力传输系统气隙中心区域磁场和电场的方法

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Active, passive, and reactive designs have been developed to reduce the magnetic leakage field. Magnetic shields have been widely used to shield the magnetic field below the transmitter and above the receiver. However, less attention is paid to the effects on the air-gap center region magnetic and electric field distributions, which are often far above safety limits and pose potential threats to human beings and animals. In this paper, the theoretical maximum transferrable power within given magnetic and electric field safety limits is derived for the air-core large gap inductive wireless power transfer system, and the physical limitations are identified. Then, the drawbacks of conventional magnetic shielding structure are presented. Phase manipulation and flux shaping methods are developed to reduce the air-gap center region magnetic field. In particular, an “I” type shielding structure is proposed to simultaneously shape the magnetic flux path to effectively reduce the air-gap center region magnetic field without degrading the coil-to-coil efficiency, and reduce the air-gap electric field by confining the electric field caused by winding excitation within the shielding structure. The proposed methods are evaluated by a 3 kW, 30 cm transfer distance design example using FEA.
机译:已经开发了活跃,被动和无功设计以减少磁漏电片。磁屏蔽广泛用于屏蔽发射器下方的磁场及接收器上方。然而,对空气间隙中心区域磁电场分布的影响不太注意,这通常远远远远远远远远超过人类和动物的潜在威胁。在本文中,为给定磁性和电场安全限制内的理论最大可转移功率导出用于空心大隙感应无线电力传输系统,并且识别物理限制。然后,呈现了传统磁屏蔽结构的缺点。开发了相位操纵和磁通整形方法以减少气隙中心区域磁场。特别地,提出了“I”型屏蔽结构以同时形成磁通路径,以有效地减小气隙中心区域磁场而不会降低线圈到线圈效率,并通过限制减少空气间隙电场屏蔽结构内绕组激发引起的电场。所提出的方法由使用FEA的3 kW,30cm传递距离设计示例进行评估。

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