A microstrip loop resonator loaded with a lumped capacitor is proposed for short-range wireless power transmission applications.The overall physical dimensions of the proposed loop resonator configuration are as small...A microstrip loop resonator loaded with a lumped capacitor is proposed for short-range wireless power transmission applications.The overall physical dimensions of the proposed loop resonator configuration are as small as 3 cm by 3 cm.Power transmission efficiency of greater than 80%is achieved with a power transmission distance smaller than 5 mm via the strong coupling between two loop resonators around 1 GHz,as demonstrated by simulations and measurements.Experimental results also show that the power transmission performance is insensitive to various geometrical misalignments.The numerical and experimental results of this paper reveal a bandwidth of more than 50 MHz within which the power transmission efficiency is above 80%.As a result,the proposed microstrip loop resonator has the potential to accomplish efficient wireless power transmission and high-speed(higher than 10 Mbit/s)wireless communication simultaneously.展开更多
针对煤矿井下复杂环境,为了提高其WPT(Wireless Power Transmission无线电能传输)功率并降低发射端线圈电压,改进了井下WPT发射端的线圈结构,并提出了适合井下WPT的传输模型。根据电路互感耦合理论,推导出WPT系统传输功率与传输效率的...针对煤矿井下复杂环境,为了提高其WPT(Wireless Power Transmission无线电能传输)功率并降低发射端线圈电压,改进了井下WPT发射端的线圈结构,并提出了适合井下WPT的传输模型。根据电路互感耦合理论,推导出WPT系统传输功率与传输效率的数学表达式,分别阐述了耦合系数、输入频率、负载大小对传输功率与传输效率的影响。设计过程中应用Or CAD与Matlab软件对传输系统各个影响因素进行仿真分析,在此基础上设计并制作了实验平台。实验分析得出此传输系统存在最佳功率传输距离和最佳效率传输距离,总体实验结果与理论仿真结果一致,最后通过与典型WPT系统做对比实验分析,得出改进WPT系统提高了传输功率,可为实际井下WPT提供理论参考。展开更多
基金the National Natural Science Foundation of China under Grant No.61871220.
文摘A microstrip loop resonator loaded with a lumped capacitor is proposed for short-range wireless power transmission applications.The overall physical dimensions of the proposed loop resonator configuration are as small as 3 cm by 3 cm.Power transmission efficiency of greater than 80%is achieved with a power transmission distance smaller than 5 mm via the strong coupling between two loop resonators around 1 GHz,as demonstrated by simulations and measurements.Experimental results also show that the power transmission performance is insensitive to various geometrical misalignments.The numerical and experimental results of this paper reveal a bandwidth of more than 50 MHz within which the power transmission efficiency is above 80%.As a result,the proposed microstrip loop resonator has the potential to accomplish efficient wireless power transmission and high-speed(higher than 10 Mbit/s)wireless communication simultaneously.
文摘针对煤矿井下复杂环境,为了提高其WPT(Wireless Power Transmission无线电能传输)功率并降低发射端线圈电压,改进了井下WPT发射端的线圈结构,并提出了适合井下WPT的传输模型。根据电路互感耦合理论,推导出WPT系统传输功率与传输效率的数学表达式,分别阐述了耦合系数、输入频率、负载大小对传输功率与传输效率的影响。设计过程中应用Or CAD与Matlab软件对传输系统各个影响因素进行仿真分析,在此基础上设计并制作了实验平台。实验分析得出此传输系统存在最佳功率传输距离和最佳效率传输距离,总体实验结果与理论仿真结果一致,最后通过与典型WPT系统做对比实验分析,得出改进WPT系统提高了传输功率,可为实际井下WPT提供理论参考。