Yoon Seoyeon, Lim Taejun, Lee Yongshik
Department of Electrical and Electronic Engineering, Yonsei University, Seoul, 03722, South Korea.
Sci Rep. 2023 Dec 21;13(1):22838. doi: 10.1038/s41598-023-50094-4.
This paper presents a multifunctional coil technique to enhance the transfer efficiency of an inductively-coupled wireless power transfer (WPT) system, regardless of the alignment condition and size ratio between the transmitter (Tx) and receiver (Rx) coils. The technique incorporates an auxiliary coil on the Tx side, where current is induced through coupling from the primary coil. Since the Tx coil consists of two coils, transmission to the Rx occurs through the coil with the higher coupling coefficient, determined by the misalignment state. Additionally, by controlling this current using a varactor placed on the auxiliary coil, an optimal magnetic flux is generated based on the alignment condition and/or the size of the Rx coil. In perfect alignment, the auxiliary coil focuses the flux from the Tx to the Rx coil, maximizing transfer efficiency. In misalignment scenarios, the current on the auxiliary coil is adjusted to shift the effective center of the Tx coil, achieving the strongest alignment of the magnetic flux traversing the Rx coil. This adjustment, which can be controlled adaptively based not only on the degree of misalignment but also on the size of the Rx coil, enables virtually null-free operation across varying misalignment conditions and for different Rx sizes. Furthermore, as this multifunctionality of the proposed system is achieved with a minimal number of additional components-just a single auxiliary coil and a single varactor-the impact on the overall quality factor (Q) of the system is minimized, contributing to the higher efficiency. In a size-symmetric system, where the Tx and Rx coils have the same size, the efficiency reaches 98.1% in perfect alignment and remains above 60% with up to 135% misalignment relative to the largest coil dimension. In a size-asymmetric system, with the Rx coil reduced to a quarter of the Tx coil, the efficiency is 96.1% in perfect alignment and remains above 60% up to 95% misalignment. Despite its enhanced practicality through a simple structure featuring only one auxiliary coil and an asymmetric configuration integrated solely on the Tx side, the proposed technique surpasses previous methods by delivering significantly superior performance. Moreover, it demonstrates unprecedented tolerance to both misalignment and smaller Rx coil sizes, which is frequently encountered in practical applications.
本文提出了一种多功能线圈技术,以提高感应耦合无线电力传输(WPT)系统的传输效率,而不受发射器(Tx)和接收器(Rx)线圈之间的对准条件和尺寸比的影响。该技术在Tx侧并入一个辅助线圈,通过与初级线圈的耦合在其中感应出电流。由于Tx线圈由两个线圈组成,传输到Rx是通过具有较高耦合系数的线圈进行的,该耦合系数由未对准状态决定。此外,通过使用放置在辅助线圈上的变容二极管控制该电流,基于对准条件和/或Rx线圈的尺寸产生最佳磁通量。在完美对准时,辅助线圈将来自Tx的磁通聚焦到Rx线圈上,使传输效率最大化。在未对准的情况下,调整辅助线圈上的电流以移动Tx线圈的有效中心,实现穿过Rx线圈的磁通的最强对准。这种调整不仅可以根据未对准程度进行自适应控制,还可以根据Rx线圈的尺寸进行控制,从而在不同的未对准条件下和不同的Rx尺寸下实现几乎无零点的运行。此外,由于所提出的系统的这种多功能性是通过最少数量的附加组件(仅一个辅助线圈和一个变容二极管)实现的,因此对系统的整体品质因数(Q)的影响最小,有助于提高效率。在Tx和Rx线圈尺寸相同的尺寸对称系统中,完美对准时效率达到98.1%,相对于最大线圈尺寸有高达135%的未对准时效率仍保持在60%以上。在尺寸不对称系统中,Rx线圈缩小到Tx线圈的四分之一,完美对准时效率为96.1%,高达95%的未对准时效率仍保持在60%以上。尽管通过仅具有一个辅助线圈的简单结构和仅集成在Tx侧的不对称配置提高了实用性,但所提出的技术通过提供显著优越的性能超越了先前的方法。此外,它展示了对未对准和较小Rx线圈尺寸前所未有的耐受性,这在实际应用中经常遇到。