Lim Jaemyung, Lee Byunghun, Ghovanloo Maysam
School of Electrical and Computer Engineering, Atlanta, GA, USA.
IEEE Trans Ind Electron. 2018 Feb;65(2):1645-1654. doi: 10.1109/TIE.2017.2733456. Epub 2017 Jul 28.
This paper presents the design procedure for a new multi-cycle resonance-based voltage boosting rectifier (MCRR) capable of delivering a desired amount of power to the load (PDL) at a designated high voltage (HV) through a loosely-coupled inductive link. This is achieved by shorting the receiver (Rx) LC-tank for several cycles to harvest and accumulate the wireless energy in the RX inductor before boosting the voltage by breaking the loop and transferring the energy to the load in a quarter cycle. By optimizing the geometries of the transmitter (Tx) and Rx coils and the number of cycles, , for energy harvesting, through an iterative design procedure, the MCRR can achieve the highest PDL under a given set of design constraints. Governing equations in the MCRR operation are derived to identify key specifications and the design guidelines. Using an exemplary set of specs, the optimized MCRR was able to generate 20.9 V across a 100 kΩ load from a 1.8 V, 6.78 MHz sinusoid input in the ISM-band at a Tx/Rx coil separation of 1.3 cm, power transfer efficiency (PTE) of 2.2%, and = 9 cycles. At the same coil distance and loading, coils optimized for a conventional half-wave rectifier (CHWR) were able to reach only 13.6 V from the same source.
本文介绍了一种新型基于多周期谐振的电压提升整流器(MCRR)的设计过程,该整流器能够通过松耦合电感链路在指定的高电压(HV)下向负载输送所需量的功率(PDL)。这是通过在几个周期内短路接收器(Rx)LC 谐振槽,以在 Rx 电感中收集和积累无线能量,然后通过断开回路在四分之一周期内将能量传输到负载来提升电压实现的。通过优化发射器(Tx)和 Rx 线圈的几何形状以及能量收集的周期数,通过迭代设计过程,MCRR 可以在给定的一组设计约束下实现最高的 PDL。推导了 MCRR 运行中的控制方程,以确定关键规格和设计准则。使用一组示例性规格,优化后的 MCRR 能够在 Tx/Rx 线圈间距为 1.3 cm、功率传输效率(PTE)为 2.2%以及 = 9 个周期的情况下,从 1.8 V、6.78 MHz 的 ISM 频段正弦输入在 100 kΩ 负载上产生 20.9 V 的电压。在相同的线圈距离和负载条件下,为传统半波整流器(CHWR)优化的线圈从同一电源仅能达到 13.6 V。