Journal of Shanghai Jiao Tong University ›› 2018, Vol. 52 ›› Issue (10): 1410-1416.doi: 10.16183/j.cnki.jsjtu.2018.10.033
CAI Yuefeng,FAN Xiaoping,TAI Nengling
Published:2025-07-02
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CAI Yuefeng,FAN Xiaoping,TAI Nengling. Review of Analytical Methods for Underwater Electric Field in Ships[J]. Journal of Shanghai Jiao Tong University, 2018, 52(10): 1410-1416.
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URL: https://xuebao.sjtu.edu.cn/EN/10.16183/j.cnki.jsjtu.2018.10.033
| [1]孙明, 龚沈光, 周骏等.运动舰船切割地磁场在海水中产生的电场计算[J].电子学报, 2003(3): 464-467. SUN Ming, GONG Shenguang, ZHOU Jun, et al. Calculation of the electric field generated by vessel moving across geomagnetic field in seawater[J]. Acta Electronica Sinica, 2003(3): 464-467. [2]王瑾.舰船水下电场测量[J]. 中国舰船研究, 2007(5): 45-49. WANG Jin. Measurement of underwater electric fieId for ships[J]. Chinese Journal of Ship Research, 2007(5): 45-49. [3]陈夫余, 陈聪, 李定国等.浅海环境下界面对舰船水下标量电位的影响[J]. 探测与控制学报, 2017, 39(2): 29-33. CHEN Fuyu, CHEN Cong, LI Dingguo, et al. The influence of shallow sea interface to the underwater electric field[J]. Journal of Detection & Control, 2017, 39(2): 29-33. [4]刘忠乐, 龚沈光.海水中稳恒电流电场的点电极计算模型[J]. 海军工程大学学报, 2004(1): 35-39. LIU Zhongle, GONG Shenguang.Point-electrode model of electric field of steady current in sea[J]. Journal of Naval University of Engineering, 2004(1): 35-39. [5]刘文宝, 王向军, 嵇斗.基于电偶极子模型的舰船静电场深度换算[J]. 空军雷达学院学报, 2010, 24(6): 435-438. LIU Wenbao, WANG Xiangjun, JI Dou. Depth conversion of ship electrostatic field based on electric dipole model[J]. Journal of Air Force Radar Academy, 2010, 24(6): 435-438. [6]张建春, 王向军.水平电流元在深海中的电场强度算法研究[J]. 舰船科学技术, 2016, 38(1): 90-93. ZHANG Jianchun, WANG Xiangjun. Research on the field intensity algorithm of the horizontal current element in the deep sea[J]. Ship Science and Technology, 2016, 38(1): 90-93. [7]YIN Zhaolei. The analysis method about harmonic electro-magnetic field[M]. Beijing: Science Press, 2000. [8]陈聪, 周骏, 龚沈光.一种损耗媒质中舰船交变电场测量的新方法[J]. 兵工学报, 2006(6): 998-1001. CHEN Cong, ZHOU Jun, GONG Shenguang. A new method of measuring the alternating electric field of ships in Lossy medium[J]. Acta Armamentarii, 2006(6): 998-1001. [9]张乔斌, 欧阳群, 崔明洋.基于ADS1256的舰船电场测量系统研究[J]. 微计算机信息, 2010, 20: 49-50. ZHANG Qiaobin, OU Yangqun, CUI Mingyang. Data acquisition system based on ADS1256 for electric field measure of warship[J]. Microcomputer Information, 2010, 20: 49-50. [10]赵景波, 吴建华, 赵国良等.基于虚拟仪器的海洋电场传感器系统设计[J]. 传感器与微系统, 2006(5): 55-57. ZHAO Jingbo, WU Jianhua, ZHAO Guoliang, et al.Design of marine electric field sensor system based on virtual instruments[J]. Transducer and Microsystem Technoiogies, 2006(5): 55-57+60. [11]程锦房, 龚沈光.水下物体对船舶电场的扰动分析[J]. 海军工程大学学报, 2003(1): 31-34. CHENG Jinfang, GONG Shenguang.Effect of underwater objects on ship’s electric field disturbance[J]. Journal of Naval Engineering University, 2003(1): 31-34. [12]程锦房, 龚沈光.测量体引起的舰船电场畸变[J]. 哈尔滨工程大报, 2009, 30(7): 816-819. CHENG Jinfang, GONG Shenguang. The influence of the electrical field induced by an underwater object[J]. Journal of Harbin Engineering University, 2009, 30(7): 816-819. [13]唐剑飞.基于水平电流线的潜艇运动感应电场分析[J]. 船电技术, 2016, 36(2): 63-65. TANG Jianfei. Induced static electric field of a submarine with horizontal DC current streamline[J]. Marine Electricity Technology, 2016, 36(2): 63-65. [14]曹寓, 嵇斗, 朱武兵.舰船水下腐蚀静电场有限元仿真分析[J]. 舰船科学技术, 2015, 37(7): 69-72. CAO Yu, JI Dou, ZHU Wubing. Finite element model simulation analysis of SE field of ship[J]. Ship Science and Technology, 2015, 37(7): 69-72. [15]卞强, 张民, 柳懿等.一种基于ANSYS的舰船静电场分析方法[J]. 海军工程大学学报, 2010, 22(6): 65-69. BIAN Qiang, ZHANG Min, LIU Yi, et al. An analytic method of ship static electric field[J]. Journal of Naval University of Engineering, 2010, 22(6): 65-69. [16]卢新城, 龚沈光, 孙明等.轴转动调制腐蚀电流产生的极低频电场的测定[J]. 兵工学报, 2004(5): 544-546. LU Xincheng, GONG Shenguang, SUN Ming, et al. Determination of the extremely low frequency electric field produced by the axis rotational modulation corrosion current[J]. Acta Armamentarii, 2004(5): 544-546. [17]卢新城, 孙明, 刘胜道, 等.舰船轴频电场的实验验证[J]. 中国造船, 2004(4): 64-67. LU Xincheng, SUN Ming, LIU Shengdao, et al. Experimental verification of the axial frequency electric field of a ship[J]. Shipbuilding of China, 2004(4): 64-67. |
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