IEEE Trans on Power Electron. 论文 (SCI一区)
[1] Zhiliang Zhang, K. Yao, Z. Gao, G. Ke, Y. Wang, X. Chen, X. Ren and Q. Chen, “SiC MOSFETs gate driver with minimum propagation delay time and auxiliary power supply with wide input voltage range for high temperature applications, ” IEEE Trans. Journal of Emerging and Selected Topics in Power Electronics, Vol. 8, No. 8, pp. 417–428, Mar., 2020.
[2] Zhiliang Zhang, K. Xu, Z. W. Xu, J. Xu, X. Ren and Q. Chen, “1-kV Input 1-MHz GaN Stacked Bridge LLC Converters,” IEEE Trans. Industrial Electron., IEEE Trans. Power Electron., Vol. 67, No. 11, pp. 9227–9237, Nov., 2020.
[3] Zhiliang Zhang, K. Xu, Z. W. Xu, J. Xu, X. Ren and Q. Chen, “GaN VHF converters with integrated air-core transformers,” IEEE Trans. Power Electron., Vol. 34, No. 4, pp. 3504–3515, Apr., 2019.
[4] Zhiliang Zhang, B. He, D. Hu, X. Ren and Q. Chen, “Common-mode noise modeling and reduction for 1-MHz eGaN multi-output DC-DC converters,” IEEE Trans. Power Electron., Vol. 34, No. 4, pp. 3239–3254, Apr., 2019.
[5] Zhiliang Zhang, B. He, D. Hu, X. Ren and Q. Chen, “Multi-winding configuration optimization of multi-output planar transformers in GaN active forward converters for satellite applications,” IEEE Trans. Power Electron., Vol. 34, No. 5, pp. 4465–4479, May 2019.
[6] S. Wang, H. Li, Zhiliang Zhang, M. Li, J. Zhang, X. Ren and Q. Chen, “Multi-function capability of SiC bidirectional portable chargers for Electric Vehicles,” IEEE Trans. Journal of Emerging and Selected Topics in Power Electronics, accepted.
[7] H. Li, Zhiliang Zhang, S. Wang, J. Zhang, M. Li, Z. Gu, X. Ren and Q. Chen, “Bidirectional synchronous rectification on-line calculation control for high voltage applications in SiC bidirectional LLC portable chargers,” IEEE Trans. Power Electron., accepted.
[8] Q. Yang, M. He, , Zhiliang Zhang, J. Xu, X. Li, J. Zhu, X. Ren and Q. Chen, “Wide input voltage DC electronic load architecture with SiC MOSFETs for high efficiency energy recycling,” IEEE Trans. Power Electron., accepted
[9] X. Zhu, Zhiliang Zhang, Y. Yang, S. Wang, H. Li, X. Ren and Q. Chen, “A sensorless model-based digital driving scheme for synchronous rectification in 1-kV input 1-MHz GaN LLC Converters,” IEEE Trans. Power Electron., accepted
[10] H. Li, Zhiliang Zhang, S. Wang, M. He, J. Tang, X. Ren and Q. Chen, “A 300-kHz 6.6-kW SiC bidirectional LLC on-board charger,” IEEE Trans. Industrial Electron., Vol. 67, No. 2, pp. 1435-1445, Feb., 2020.
[11] X. Ren, Z. W. Xu, Zhiliang Zhang, H. Li, M. He, J. Tang, and Q. Chen, “A 1-kV input SiC LLC converter with split resonant tanks and matrix transformers,” IEEE Trans. Power Electron., Vol. 34, No. 11, pp. 10446-10457, Nov. 2019.
[12] X. Ren, Z. W. Xu, K. Xu, Zhiliang Zhang and Q. Chen, “Stack-capacitor SiC converters for pulse applications,” IEEE Trans. Power Electron., Vol. 34, No. 5, pp. 4450–4464, May 2019.
[13] Zhiliang Zhang, Y. Q. Wu, D. J. Gu, X. Ren and Q. Chen, “Current ripple mechanism with quantization in digital LLC converters for battery charging applications,” IEEE Trans. Power Electron., Vol. 33, No. 2, pp. 1303–1312, Feb. 2018.
[14] Zhiliang Zhang, X. Cheng, Z. Y. Lu and D. J. Gu, “SOC estimation of lithium-ion battery pack considering balancing current,” IEEE Trans. Power Electron., Vol. 33, No. 3, pp. 2216–2226, Mar. 2018.
[15] Zhi-Liang Zhang, X. Cheng, Z. Y. Lu and D. J. Gu, “SOC estimation of lithium-ion batteries with AEKF and Wavelet Transform Matrix,” IEEE Trans. Power Electron., Vol. 32, No. 10, pp. 7626–7634, 2017.
[16] Zhi-Liang Zhang, Z. Dong, X. W. Zou, D. Hu, and X. Ren, “A digital adaptive driving scheme for eGaN HEMTs in VHF converters,” IEEE Trans. Power Electron., Vol. 32, No. 8, pp. 6197–6205, 2017.
[17] Zhi-Liang Zhang, Z. Dong, D. D. Hu, X. W. Zou, and X. Ren, “Three-level gate drivers for eGaN HEMTs in resonant SEPIC converters, ” IEEE Trans. Power Electron., Vol. 32, No. 7, pp. 5527–5538, 2017.
[18] Zhiliang Zhang, X. W. Zou, Y. Zhou, Z. Dong and X. Ren, “A 10-MHz eGaN isolated Class-Ф2 DCX, ” IEEE Trans. Power Electron., Vol. 32, No. 3, pp. 2029–2040, Mar. 2017.
[19] Zhiliang Zhang, H. D. Gui, D. J. Gui, Y. Yang and X. Ren, “A hierarchical active balancing architecture for lithium-ion batteries, ” IEEE Trans. Power Electron., Vol. 32, No. 4, pp. 2757-2768, Dec. 2017.
[20] Zhiliang Zhang, Y. Y. Cai, Y. Zhang and Y. F. Liu, “A distributed architecture based on micro-bank modules with self-reconfiguration control to improve the energy efficiency in the battery energy storage system,” IEEE Trans. Power Electron., Vol. 31, No. 1, pp. 304–317, Jan. 2016.
[21] Zhiliang Zhang, J. Y. Lin, Y. Zhou and X. Ren, “Analysis and decoupling design of a 30 MHz resonant SEPIC converter, ” IEEE Trans. Power Electron., Vol. 31, No. 6, pp. 4536-4548, Jun. 2016.
[22] X. Ren, Yuan Zhou, D. Wang, X. Zou and Zhiliang Zhang, “A 10-MHz isolated synchronous Class-Φ2 resonant converter,” IEEE Trans. Power Electron., Vol. 31, No. 12, pp. 8317-8328, Dec. 2016.
[23] Zhiliang Zhang, F. F. Li and Y. F. Liu, “A high-frequency dual-channel isolated resonant gate driver with low gate drive loss for ZVS full-bridge converters,” IEEE Trans. Power Electron., Vol. 29, No. 6, June 2014, pp. 3077 -3090.
[24] Zhiliang Zhang, C. Xu and Y. F. Liu, “Digital adaptive discontinuous current source driver for high frequency interleaved boost PFC converter,” IEEE Trans. Power Electron, Vol. 29, No. 3, Mar. 2014, pp. 1298-1310.
[25] Zhiliang Zhang, X. F. He and Y. F. Liu, “An optimal control method for photovoltaic grid-tied interleaved flyback micro-inverters to achieve high efficiency in wide load range,” IEEE Trans. Power Electron, Vol. 28, No. 11, Nov. 2013, pp. 5074-5087.
[26] Zhiliang Zhang, P. Xu and Y. F. Liu, “Adaptive continuous current source drivers for 1-MHz boost PFC converters,” IEEE Trans. Power Electron., Vol.28, No.5, May 2013, pp. 2457-2467.
[27] Zhiliang Zhang, J. Fu, Y. F. Liu and P. C. Sen, “Adaptive current source drivers for efficiency optimization of high frequency synchronous buck converters,” IEEE Trans. Power Electron., Vol.27, No.5, May 2012, pp. 2462-2470.
[28] Zhiliang Zhang, J. Zhen, Y. F. Liu and P. C. Sen, “Switching loss analysis considering parasitic loop inductance with current source drivers for buck converters,” IEEE Trans. Power Electron., Letters, Vol.27, No.7, Jul. 2011, pp. 1815-1819.
[29] Zhiliang Zhang, E. Myer, Y. F. Liu and P. C. Sen, “A non-isolated ZVS self-driven current tripler topology for low voltage and high current applications,” IEEE Trans. Power Electron., Vol. 26, No. 2, Feb. 2011, pp. 512 -522.
[30] Zhiliang Zhang, J. Fu, Y. F. Liu and P. C. Sen, “Discontinuous current source drivers for high frequency power MOSFETs,” IEEE Trans. Power Electron., Vol. 25, No. 7, Jul. 2010, pp. 1863-1876.
[31] Zhiliang Zhang, W. Eberle, Y. F. Liu and P. C. Sen, “A 1-MHz, 12-V ZVS non-isolated full-bridge VRM with gate energy recovery,” IEEE Trans. Power Electron., Vol. 25, No. 3, Mar. 2010, pp. 624-636.
[32] Zhiliang Zhang, W. Eberle, Y. F. Liu and P. C. Sen, “A nonisolated ZVS asymmetrical buck voltage regulator module with direct energy transfer,” IEEE Trans. Ind. Electron., Vol. 56, No. 8, Aug. 2009, pp. 3096-3105.
[33] Zhiliang Zhang, W. Eberle, P. Lin, Y. F. Liu and P. C. Sen, “A 1-MHz high efficiency 12V buck voltage regulator with a new current-source gate driver,” IEEE Trans. Power Electron., Vol. 23, No. 6, Nov. 2008, pp. 2817-2827.
[34] Zhiliang Zhang, W. Eberle, Z. Yang, Y. F. Liu and P. C. Sen, “Optimal design of resonant gate driver for buck converter based on a new analytical loss model,” IEEE Trans. Power Electron., Vol. 23, No. 2, Mar. 2008, pp. 653 -666.
[35] Y. Wu, X. Ren, Y. Zhou, Q. Chen and Zhiliang Zhang, “Dynamic AC line frequency response method for LUT-based variable on-time control in 360 Hz-800 Hz CRM boost PFC converter,” IEEE Trans. Power Electron., accepted
[36] Y. Wu, Q. Chen, X. Ren and Zhiliang Zhang, “Efficiency Optimization Based Parameter Design Method for the Capacitive Power Transfer System,” IEEE Trans. Power Electron., Early Press
[37] B. Zhang, Q. Chen, G. Ke, L. Xu, X. Ren and Zhiliang Zhang, “Coil positioning based on DC pre-excitation and magnetic sensing for wireless EV charging,” IEEE Trans. Industrial Electron., accepted, 2019.
[38] X. Ren, Y. Zou, Z. Guo, Y. Wu, Zhiliang Zhang and Q. Chen, “Analysis and improvement of capacitance effects in 360-800Hz variable on-time controlled CRM boost PFC converters,” IEEE Trans. Power Electron., accepted, 2019
[39] G. Ke, Q. Chen, L. Xu, X. Ren and Zhiliang Zhang, “Analysis and optimization of a double-sided S-LCC hybrid converter for high misalignment tolerance,” IEEE Trans. Industrial Electron., 2019, accepted.
[40] X. Ren, Y. Zhou, Z. Guo, Y. Wu, Zhiliang Zhang and Q. Chen, “Simple analog-based accurate variable on-time control for critical conduction mode boost power factor correction converters, ” IEEE Trans. Journal of Emerging and Selected Topics in Power Electronics, Vol. 8, No. 1, pp. 4025-4036, Dec., 2020.
[41] X. Ren, L. Bai, Zhiliang Zhang and Q. Chen, “Single-phase AC-DC converter with SiC shared active storage unit for pulse load applications,” IEEE Trans. Journal of Emerging and Selected Topics in Power Electronics, Vol. 8, No. 1, pp. 517–528, Mar., 2020.
[42] G. Ke, Q. Chen, W. Gao, S.C. Wang, M. Tse and Zhiliang Zhang, “Research on IPT resonant converters with high misalignment tolerance using multi-coil receiver set” IEEE Trans. Power Electron., accepted, 2019.
[43] X. Ren, Y. Wu, Z. Guo, Zhiliang Zhang and Q. Chen, “Accurate operation analysis based variable on-time control for 360Hz-800Hz CRM boost PFC converters,” IEEE Trans. Industrial Electron., accepted, 2019.
[44] J. Hou, Q. Chen, Zhiliang Zhang, S.C. Wang and M. Tse, “Analysis of output current characteristics for higher order primary compensation in inductive power transfer systems,” IEEE Trans. Power Electron., Vol. 33, No. 8, 2018, pp. 6807 -6821.
[45] X. Ren, Z. Guo, Y. Wu, Zhiliang Zhang, and Q. Chen, “Adaptive LUT-based variable on-time control for CRM boost PFC converters,” IEEE Trans. Power Electron., Vol. 33, No. 9, Sep. 2018, pp. 8123 -8136.
[46] X. Ren, Y. Wu, Z. Guo, Zhiliang Zhang and Q. Chen, “An online monitoring method of circuit parameters for variable on-time control in CRM boost PFC Converters, ” IEEE Trans. Power Electron., accepted
[47] G. He, Q. Chen, X. Ren, S.C Wong and Zhiliang Zhang, “Modeling and design of contactless sliprings for rotary application,” IEEE Trans. Ind. Electron., Vol. 66, No. 5, 2019, pp. 4130 -4140.
[48] P. Shen, Q. Chen, Zhiliang Zhang and X. Ren, “Model reconstruction for body-mounted solar arrays of satellites based on limited information,” IEEE Trans. Energy Conversion, accepted, 2019.
[49] J. Zhen, Zhiliang Zhang, Y. F. Liu and P. C. Sen, “MOSFET switching loss model and optimal design of a current source driver considering the current diversion problem,” IEEE Trans. Power Electron., vol. 27, no. 2, pp. 998-1012, Feb. 2012.
[50] J. Zhen, Zhiliang Zhang, Y. F. Liu and P. C. Sen, “A new high efficiency current source driver with bipolar gate voltage,” IEEE Trans. Power Electron., vol. 27, no. 2, pp. 985-997, Feb. 2012.
[51] E. Meyer, Zhiliang Zhang and Y. F. Liu, “Digital charge balance controller to improve the loading/ unloading transient response of buck converters,” IEEE Trans. Power Electron., vol. 27, no. 3, pp. 1314-1326, Mar. 2012.
[52] E. Meyer, Zhiliang Zhang and Y. F. Liu, “Controlled auxiliary circuit to improve the unloading transient response of buck converters,” IEEE Trans. Power Electron., Vol. 25, No. 4, Apr. 2010, pp. 806-819.
[53] W. Eberle, Zhiliang Zhang, Y. F. Liu and P. C. Sen, “A practical switching loss model for buck voltage regulators,” IEEE Trans. Power Electron., Vol. 24, No. 3, Mar. 2009, pp. 700-713.
[54] E. Meyer, Zhiliang Zhang and Y. F. Liu, “An optimal control method for buck converters using a practical capacitor charge balance technique,” IEEE Trans. Power Electron., Vol. 23, No. 4, Jul. 2008, pp. 1802 -1812.
[55] W. Eberle, Zhiliang Zhang, Y. F. Liu and P. C. Sen, “A current source gate driver achieving switching loss savings and gate energy recovery at 1-MHz,” IEEE Trans. Power Electron., Vol. 23, No. 2, Mar. 2008, pp. 678 -691.
专利
1) Zhiliang Zhang and Yan-Fei Liu, “Current Source Gate Drivers,” U. S. Patent No. 8, 085, 083
2) Yan-Fei Liu, Zhiliang Zhang and Jizhen Fu, “Current Source Gate Driver with Negative Gate Voltage,” US Patent 20120068683 A1
3) 张之梁,胥鹏程,蔡卫,发明专利,“电流源驱动电路及其自适应控制方法与应用”,授权号 ZL 201110143223X
4) 张之梁,蔡勇勇,发明专利,“一种基于单体蓄电池组的蓄电池储能系统及控制方法”,专利号 ZL 2013100005405
5) 桂涵东,张之梁,张玥,“一种优化分布式变换器系统效率的功率分配控制策略”,专利号:ZL 2014101094275
6) 张之梁、董舟、徐志巍、许可、胡栋栋、任小永,“氮化镓器件的超高频门极驱动及控制方法”,授权号:ZL201610368366.3
7) 周嫄,任小永,张之梁,邹学文,余凤兵, “超高频功率变换器的3D集成架构”,专利号:ZL201510353635.4
8) 张之梁,邹学文,董舟,任小永,余凤兵,“一种超高频隔离谐振变换器”,专利号:ZL201410339755.4
9) 邹学文,张之梁,董舟,任小永,余凤兵,“VHF电路的控制方法、VHF电路及其电源扩展架构”,专利号:ZL 201510566195.0
10) 张之梁,程祥,陆舟宇,顾东杰,杨阳,“一种带有均衡电路的串连电池组SOC估算方法”, 专利号:ZL201610470569.3
11) 顾东杰,张之梁,程祥,王栋,利用车载充电机辨识电池参数的电池荷电状态估计方法,专利号:ZL201510412775.4
12) 桂涵东,王栋,顾东杰,张之梁,“基于串联电池组的分层式均衡电路系统及混合控制方法”,专利号:ZL201610013348.3
13) 张之梁,姚恺奇,唐家承,徐志巍,朱文铭,任小永,陈乾宏,适应快速负载突变的LLC变换器最优状态轨迹控制方法,申请号:201910658737.5
14) 张之梁,何铭协,徐佳华,李想,朱靖,任小永,魏小忠,陈乾宏,一种高压、宽电压输入范围回馈式直流电子负载电路,申请号:201910455172.0
15) 张之梁,李浩然,任小永,李建飞,陈乾宏,朱靖,隔离型双向充电机控制方法及控制电路,专利号:201810853726.8
16) 顾占彪,张之梁,成诗鹏,xx, xx, 等,任小永,一种飞跨电容变换器电容电压平衡控制方法,专利号:
17) 任小永,朱昕昳,张之梁,陆懿晨,李加明,杨勇,陈乾宏, 宽范围双向变换拓扑及控制,申请号:201911340580.8
18) 任小永,陈乾宏,阮新波,氮化镓功率晶体管的三电平驱动方法, 授权号:ZL201210071969.9
19) 任小永,张强,陈乾宏,庞振进,高效率多路输出直直变换器及其控制方法,授权号:ZL201310119223.5
20) 任小永,庞振进,张强,陈乾宏,张之梁,“输入串联输出准并联的多路输出变换器的开机控制方法”,专利号:ZL201410090993.6
21) 任小永,郭哲辉、吴羽、陈乾宏、张之梁,自适应优化THD的高频CRM升压型PFC变换器,专利号: ZL201610522189.X
22) 任小永,陈旭东,陈乾宏,张之梁,童丹,适用于Vienna整流器的输出电压动态响应优化控制,专利号: ZL201610825768.1
23) 任小永,吴羽,郭哲辉,陈乾宏,张之梁,CRM升压型PFC变换器变化导通时间的优化控制,专利号: ZL2016109939353
24) 陈乾宏,高伟,柯光洁、耿玉川,徐立刚,张斌,任小永,张之梁,一种非接触电能传输装置的柔性行波激励方法,专利号:ZL201810209877.X
25) 陈乾宏,李志斌,张帅,张之梁,任小永, 一种兼顾电路优化和炉盘高效加热的电磁炉线圈盘, 发明专利,申请号:201910103737.9
26) 张斌、陈乾宏、徐立刚、温振霖、任小永、张之梁. 弱磁场激励三线圈检测装置, 发明专利,申请号:201910310870.1
27) 陈乾宏,郭明达,陈欣,徐立刚,温振霖,任小永,张之梁,一种基波-谐波并行传能的多通道非接触供电系统, 发明专利,申请号:201910763076.2
28) 陈乾宏,张帅,李志斌,徐立刚,温振霖,任小永,张之梁. 一种非接触单管谐振变换器, 发明专利,申请号:201910575234.1
29) 柯光洁,陈乾宏,高伟,朱星宇,徐立刚,温振霖,任小永,张之梁. 一种具有高抗偏移特性的无线电能传输系统, 发明专利,申请号:201910620368.0
30) 陈乾宏,徐立刚,柯光洁,朱星宇,张斌,温振霖,任小永,张之梁. 一种从原边辨识参数的非接触电能传输装置, 发明专利,申请号:201910669747.9
31) 柯光洁,陈乾宏,铁昳雪,徐立刚,温振霖,任小永,张之梁. 一种实现恒流恒压输出切换的感应式无线电能传输系统, 发明专利,申请号:201910766479.2
32) 柯光洁,陈乾宏,徐立刚,温振霖,任小永,张之梁. 一种基于多频能量并行传输的具有强抗偏移性能的无线电能传输拓扑, 发明专利,申请号:201911057811.4
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