4.7 Article

Beamforming Optimization for MIMO Wireless Power Transfer With Nonlinear Energy Harvesting: RF Combining Versus DC Combining

期刊

出版社

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TWC.2020.3024064

关键词

Beamforming; DC combining; MIMO; nonlinearity; optimization; RF combining; wireless power transfer

资金

  1. Engineering and Physical Sciences Research Council (EPSRC) of U.K. [EP/P003885/1, EP/R511547/1]
  2. EPSRC [EP/P003885/1] Funding Source: UKRI

向作者/读者索取更多资源

This article explores the MIMO wireless power transfer system to enhance the output DC power of rectennas through optimizing transmit and receive beamforming, as well as utilizing RF combining circuits and analog receive beamforming adaptive to CSI. The study demonstrates that using multiple antennas at the transmitter or receiver can linearly increase the output DC power, and RF combining outperforms DC combining significantly in efficiency.
In this article, we study the multiple-input and multiple-output (MIMO) wireless power transfer (WPT) system so as to enhance the output DC power of the rectennas. To that end, we revisit the rectenna nonlinearity considering multiple receive antennas. Two combining schemes for multiple rectennas at the receiver, DC and RF combinings, are modeled and analyzed. For DC combining, we optimize the transmit beamforming, adaptive to the channel state information (CSI), so as to maximize the total output DC power. For RF combining, we compute a closed-form solution of the optimal transmit and receive beamforming. In addition, we propose a practical RF combining circuit using RF phase shifter and RF power combiner and also optimize the analog receive beamforming adaptive to CSI. We also analytically derive the scaling laws of the output DC power as a function of the number of transmit and receive antennas. Those scaling laws confirm the benefits of using multiple antennas at the transmitter or receiver. They also highlight that RF combining significantly outperforms DC combining since it leverages the rectenna nonlinearity more efficiently. Two types of performance evaluations, based on the nonlinear rectenna model and based on realistic and accurate rectenna circuit simulations, are provided. The evaluations demonstrate that the output DC power can be linearly increased by using multiple rectennas at the receiver and that the relative gain of RF combining versus DC combining in terms of the output DC power level is very significant, of the order of 240% in a one-transmit antenna ten-receive antenna setup.

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