A novel arc‐shaped magnetic coupler with dual‐channel receiver for rotational misalignment tolerance in AUV underwater wireless power transfer systems

IF 1.8 3区 工程技术 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
Hongmin Tang, Zhiwei Shen, Ronghuan Xie, Wenbin Pan, Xiaoying Chen, Zhongqi Li, Yiming Zhang
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引用次数: 0

Abstract

Traditional wet plug charging for autonomous underwater vehicles (AUVs) limits its application. Inductive power transfer (IPT) is an effective solution to this problem. This paper proposes an arc‐shaped magnetic coupler incorporated with solenoid coils to achieve a stable and efficient output against rotational misalignment for charging AUV. The novel magnetic coupler consists of two solenoid coils and an arc‐shaped coil with a reverse winding, guaranteeing a relatively constant total mutual inductance and decoupling from each other. This magnetic coupler has the characteristics of a compact structure, an ultra‐wide coupling range, and a relatively stable equivalent mutual inductance. The experimental IPT prototype can deliver 1.29 kW with a dc–dc efficiency of 93% under the fully aligned case and 1.2 kW with a dc–dc efficiency of 91% under the misaligned case.
带双通道接收器的新型弧形磁耦合器,用于 AUV 水下无线电力传输系统中的旋转偏差容限
自动潜航器(AUV)传统的湿插头充电方式限制了其应用。电感式功率传输(IPT)是解决这一问题的有效方法。本文提出了一种与电磁线圈相结合的弧形磁耦合器,可在 AUV 充电时实现稳定高效的输出,防止旋转偏差。这种新型磁耦合器由两个电磁线圈和一个反向绕组的弧形线圈组成,可保证相对恒定的总互感和相互解耦。这种磁耦合器具有结构紧凑、耦合范围超宽、等效互感相对稳定等特点。实验性 IPT 原型在完全对准的情况下可输出 1.29 千瓦,直流-直流效率为 93%;在错位的情况下可输出 1.2 千瓦,直流-直流效率为 91%。
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来源期刊
International Journal of Circuit Theory and Applications
International Journal of Circuit Theory and Applications 工程技术-工程:电子与电气
CiteScore
3.60
自引率
34.80%
发文量
277
审稿时长
4.5 months
期刊介绍: The scope of the Journal comprises all aspects of the theory and design of analog and digital circuits together with the application of the ideas and techniques of circuit theory in other fields of science and engineering. Examples of the areas covered include: Fundamental Circuit Theory together with its mathematical and computational aspects; Circuit modeling of devices; Synthesis and design of filters and active circuits; Neural networks; Nonlinear and chaotic circuits; Signal processing and VLSI; Distributed, switched and digital circuits; Power electronics; Solid state devices. Contributions to CAD and simulation are welcome.
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