基于单管逆变的无线能量和信号同步传输系统研究

Research on Simultaneous Wireless Power and Signal Transmission System Based on Single-switch Inverter

  • 摘要: 针对现有无线能量和信号同步传输(Simultaneous wireless power and signal transmission,SWPST)系统存在功率密度低、系统结构复杂及能量与信号互扰等问题,提出一种基于单管逆变的高频注入式SWPST系统。首先,给出了基于单管逆变的SWPST系统结构,详细分析了系统的工作原理及P#型单管逆变电路的软开关工作特性,构建了能量传输通道和信号传输通道的等效电路模型,并给出了系统参数对信号传输速率和能量传输增益的影响关系;然后,通过对系统参数对能量通道与信号通道相互干扰的电压增益分析,提出了抑制干扰、提升信号传输增益的系统参数优化设计方法,实现了信号的双向传输;最后,搭建了120 W试验平台,对系统的能量传输特性、信号传输性能及互扰特性进行了测试与验证。试验结果表明,在保证恒流输出特性的同时,实现了240 kbit/s的信号传输速率,误码率为零,系统最高效率达88.7%,验证了理论分析的正确性与有效性。

     

    Abstract: Simultaneous wireless power and signal transmission(SWPST) systems typically suffer from low power density, complex system architecture, and significant mutual interference between energy and signal channels. To overcome these limitations, a high-frequency injection SWPST system based on a single-switch inverter is proposed. The system topology is presented, and the operating principle along with the soft-switching characteristics of the P#-type single-switch inverter is analyzed in detail. Equivalent circuit models for both energy transmission and signal transmission channels are established, and the effects of key system parameters on the signal transmission rate and power transfer gain are investigated. Furthermore, based on the voltage gain analysis of the mutual coupling between energy and signal channels, a system parameter optimization method is proposed to suppress crosstalk and improve the signal transmission gain, enabling reliable bidirectional communication. A 120 W experimental prototype is developed to validate the theoretical analysis. Experimental results demonstrate that the system maintains constant-current output characteristics, achieves a signal transmission rate of 240 kbit/s with zero bit error rate, and reaches a maximum power transfer efficiency of 88.7%, confirming the feasibility and effectiveness of the proposed approach.

     

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