Characteristics Analysis of High Power Marine Electromagnetic Transmitter DC-DC Controlled Source Circuit
Tao Haijun1, 2, Zhang Yiming2, Ren Xiguo2
1. College of Electrical Engineering and Automation Henan Polytechnic University Jiaozuo 454003 China; 2. College of Electrical Information and Control Engineering Beijing University of Technology Beijing 100124 China
Abstract:Marine electromagnetic transmitter transmits large power electromagnetic wave to the seabed for obtaining the submarine structure and mineral resources. However, the current transmitter has the problems of large volume and low transmission power. In this paper, PWM converter is used to construct the DC-DC controllable source circuit. Since the conventional zero voltage switching full bridge (ZVS-FB) PWM converter has many limitations, such as high loop energy, loss of duty cycle and limited ZVS range of lagging bridge arm, a zero voltage zero current switching full bridge (ZVZCS-FB) controlled source circuit is proposed using asymmetric phase-shifted control. The operating process and circuit characteristics of ZVZCS-FB-PWM DC-DC controlled source circuit are analyzed, including the maximum control duty ratio, reset primary current and capacitance, the loss of the duty ratio, the switching loss and energy circulation etc. Simulation and experimental results show that the DC-DC controlled source circuit realizes the leading-leg switches to be operated with ZCS turn-on and ZVS turn-off, the lagging-leg switches with ZCS turn-on and turn off. The circuit efficiency and power density are accordingly improved.
[1] Eidesmo T, Ellingsrud S, Macgregor L M, et al. Re-mote detection of hydrocarbon filled layers using marine controlled source electromagnetic sounding[C]// EAGE 64th Conference & Exhibition-Florence, Italy, May, 2002: 27-30. [2] Constable S, Orange A, Hoversten G M, et al. Marine magnetotellurics for petroleum exploration Part Ⅱ: A sea-floor instrument system[J]. Geophysics, 1998, 63(3): 816-825. [3] Constable S, Srnka L J. An introduction to marine controlled source electromagnetic methods for hydro- carbon exploration[J]. Geophysics, 2007, 72(2): WA3-WA12. [4] Wang Meng, Deng Ming, Zhao Qingxian, et al. Two types of marine controlled source electromagnetic transmitters[J]. Geophysical Prospecting, 2015, 63(6): 1403-1419. [5] Steven Constable, Srnka Leonard J. An introduction to marine controlled-source electromagnetic methods for hydrocarbon exploration[J]. Geophysica, 2007, 72(7): WA3-WA12. [6] 张学广, 陈佳明, 马彦, 等. 电网不平衡情况下三相PWM变换器并联控制[J]. 电工技术学报, 2015, 30(20): 139-144. Zhang Xueguang, Chen Jiaming, Ma Yan, et al. Control strategy for parallel connection systems of three-phase PWM converters in unbalanced grid condition[J]. Transactions of China Electrotechnical Society, 2015, 30(20): 139-144. [7] Zheng Hong, Liang Zhengfeng, Li Mengshu, et al. Optimization of parameters for LCL filter of least square method based three-phase PWM converter[J]. Journal of Electrical Engineering and Technology, 2015, 10(4): 1627-1635. [8] 陈仲, 汪洋, 李梦南. 一种低环流损耗的宽范围ZVS移相全桥变换器[J]. 电工技术学报, 2015, 30(22): 71-79. Chen Zhong, Wang Yang, Li Mengnan. Wide-range zero voltage switching phase-shifted full-bridge converter with low circulation loss[J]. Transactions of China Electrotechnical Society, 2015, 30(22): 71-79. [9] 陈仲, 李梦南, 汪洋. ZVS全桥变换器辅助网络技术的比较研究[J]. 电工技术学报, 2015, 30(22): 89-99. Chen Zhong, Li Mengnan, Wang Yang. Comparison study on auxiliary network techniques of zero voltage switching full bridge converter[J]. Transactions of China Electrotechnical Society, 2015, 30(22): 89-99. [10] Uno Masatoshi, Kukita Akio. PWM converter integrating voltage equalizer for photovoltaic panels under partial shading[J]. IEEJ Transactions on Industry Applications, 2017, 137(3): 274-281. [11] 魏立明, 吕雪莹. 固体氧化物燃料电池发电系统模型建立及逆变器仿真研究[J]. 电力系统保护与控制, 2016, 44(24): 37-43. Wei Liming, Lü Xueying. Solid oxide fuel cell power generation system model and study on inverter simulation[J]. Power System Protection and Control, 2016,44(24): 37-43. [12] Chen Yenan, Xu Dehong, Xi Jiangbei. Common- mode filter design for a transformerless ZVS full- bridge inverter[J]. IEEE Journal of Emerging and Selected Topics in Power Electronics, 2016, 4(2): 405-413. [13] 赵晋斌, 刘金彪, 梁晓霞, 等. 一种新型交错式反激变换器分析与设计[J]. 电力系统保护与控制, 2015, 43(18): 129-137. Zhao Jinbin, Liu Jinbiao, Liang Xiaoxia, et al. Analysis and design of a new interleaved flyback converter[J]. Power System Protection and Control, 2015,43(18): 129-137. [14] Yachiangkam Samart, Sangswang Anawach, Naeti- laddanon Sumate, et al. Steady-state analysis of ZVS and NON-ZVS full-bridge inverters with asymmetrical control for induction heating applications[J]. Journal of Power Electronics, 2015, 15(2): 544-554. [15] 侯川川, 仇志丽, 刘建华. 双有源桥轻载下的软开关研究[J]. 电力系统保护与控制, 2017, 45(8): 23-29. Hou Chuanchuan, Chou Zhili, Liu Jianhua, et al. Research on soft switching of dual active bridge with light load[J]. Power System Protection and Control, 2017, 45(8): 23-29.