A 70w And 90% Gan-Based Class-E Wireless-Power-Transfer System With Automatic-Matching-Point-Search Control For Zero-Voltage Switching And Zero-Voltage-Derivative Switching

2018 IEEE INTERNATIONAL SOLID-STATE CIRCUITS CONFERENCE - (ISSCC)(2018)

引用 22|浏览203
暂无评分
摘要
High-power (u003e50W) and high-efficiency (u003e90%) wireless-power-transfer (WPT) systems are becoming in demand for portable electronic applications. In Fig. 8.2.1, power efficiency and/or output power specifications in prior-art designs are much below the expected requirements [1-5]. Frequency tuning in [1,2] is simple, but the switching frequency (f SW ) deviates from 6.78MHz. Capacitor tuning [3,5] is the most intuitive approach, but the capacitor matrix occupies a large area, and the dynamically tuned compensation capacitor bank is limited by the digital-control resolution and compensation accuracy. In addition, the duty-cycle control in [4] leads to an unregulated output voltage at the RX side. Existing impedance-matching techniques for reducing power loss are not applicable to high-power impedance matching of a GaN-based WPT system in the case of timevariable charging distance, loading, operation voltage, and temperature variations that induce a wide range of inductive or capacitive loading effects. Inductive loading degrades the efficiency by 51% in a GaN power switch and induces serious coupling effects to the gate of the GaN device due to the hard-switching (HS) power loss. Likewise, capacitive loading results in the efficiency degradation of 14% due to the body-diode conduction (BDC) power loss. Such large dissipation easily breakdowns a GaN device and even seriously damages the wPt system, especially when transmitting high-power. Therefore, simultaneously achieving both (1) the minimized HS and BDC power loss by efficient impedance matching and (2) highly reliable operation of a GaN device over a wide range of loading effects is in urgent demand for high-power and high-efficiency WPT systems.
更多
查看译文
关键词
class-E wireless-power-transfer system,automatic-matching-point-search control,zero-voltage switching,portable electronic applications,power efficiency,output power specifications,frequency tuning,switching frequency,dynamically tuned compensation capacitor bank,digital-control resolution,compensation accuracy,duty-cycle control,unregulated output voltage,high-power impedance matching,WPT system,operation voltage,inductive loading effects,capacitive loading effects,efficiency degradation,body-diode conduction power loss,high-efficiency WPT systems,zero-voltage-derivative switching,impedance-matching techniques,power switch,capacitor tuning,capacitor matrix,HS power loss,power loss reduction,time variable charging distance,temperature variations,hard-switching power loss,body-diode conduction power loss,BDC power loss,high-power WPT systems,frequency 6.78 MHz,power 90 W,efficiency 51 percent,efficiency 14 percent,GaN
AI 理解论文
溯源树
样例
生成溯源树,研究论文发展脉络
Chat Paper
正在生成论文摘要