用户名: 密码: 验证码:
煤矿综采工作面电磁骚扰的研究
详细信息    本馆镜像全文|  推荐本文 |  |   获取CNKI官网全文
摘要
本文主要研究煤矿综采上作面采煤机产生的电磁骚扰对井下电磁兼容环境的影响。分析了采煤机产生电磁骚扰的机理及特点,探讨了综采工作面电磁环境的特殊性。针对采煤机牵引部和截割部电动机传动特点,分别研究了采煤机的谐波骚扰、瞬态骚扰和连续辐射骚扰。根据采煤机变频牵引控制原理,深入研究了不同控制方式下的谐波分布和幅值,并依据实际牵引系统参数建立了仿真模型。对采煤机截割电动机投切时产生的瞬态骚扰建立了等效分析模型,并运用电磁暂态仿真软件模拟开关投切过程。运用行波天线理论和非止弦脉冲电磁辐射理论,建立了浪涌和电快速瞬变脉冲的辐射模型,并仿真分析了瞬态脉冲辐射电磁场。在井下大量实测电磁辐射骚扰数据的基础上,运用类比方法研究了采煤机的辐射骚扰,得出具有一定参考价值的辐射骚扰等级。基于井下电磁波传播理论,分析了综采工作面电磁波的传播规律,并运用有限元方法建立仿真模型。运用电路理论和电磁理论,建立了井下传导骚扰的祸合模型,以及辐射骚扰对电缆和孔缝的耦合模型,并分析了耦合模型的作用机理。
This dissertation is devoted to a study of the influence of electromagnetic disturbance from a shearer upon electromagnetic environment in fully-mechanized mining faces. In view of the specific characteristics of electromagnetic environment in coal mines, the induced mechanism of electromagnetic disturbances from a shearer are analyzed.For driving characteristics of shearer traction and cutting motor units, harmonic and transient disturbance and continuous radiation disturbance are studied respectively. According to the variable frequency control principle harmonics produced by shearer traction unit with different control methods have been analyzed deeply in theory. Based on the actual parameters of traction system, simulation models are built and simulation results are given. When a shearer cutting motor is swithching on or off, transient disturbances produced by the cutting motor are analyzed and caculated, and switching off a cutting motor is also simulated by electromagnetic transients program (EMTP). Radiation models for transient current impulse is established based on traveling wave antenna theory and nonsinusoidal pulse electromagnetic radiation theory, and radiated electromagnetic fields of transient impulse are analyzed by simulations.Based on a large number of electromagnetic radiation data measured in underground coal tunnels, the radiated disturbance from a shearer is studied by an analogy method.Some value results for radiation disturbance levels are obtained. According to the electromagnetic wave propagation theory in a coal mine, the electromagnetic wave attenuation rules are analyzed in a coal tunnel and a coal mining tunnel, and the simulation models are established by using the finite element method. The conduction coupling model and radiation coupling model are built in coal mines.and the mechanisms of coupling models are analyzed.
引文
1. 孙继平,胡省三.煤矿自动化与信息化[J].第19届全国煤矿自动化与信息化学术会议暨中国矿业大学(北京)百年校庆学术会议论文集.2009.
    2. 国家煤矿安全监察局.2009年全国煤矿事故分析报告.2010.
    3. 孙继平.煤矿安全监控系统[M].北京:煤炭工业出版社,2006.
    4. 国家质量技术监督局.GB/T 17624.1-1998电磁兼容综述电磁兼容基本术语和定义的应用与解释[S].北京:中国标准出版社,1999.12
    5. 高攸纲.电磁兼容总论[M].北京:北京邮电大学出版社,2002.
    6. 路宏敏.工程电磁兼容[M].西安:西安电子科技大学出版社,2003.
    7. 杨克俊.电磁兼容原理与设计技术[M].北京:人民邮电出版社,2004.
    8. 陈淑凤,马蔚宇.马晓庆.电磁兼容试验技术[M].北京:北京邮电大学出版社.2001
    9. 孙继平.煤矿监控系统手册[M].北京:煤炭工业出版社,2007.
    10. 贺景亮.电力系统电磁兼容[M].水利电力出版社,1993.
    11. Paul C R.闻映红.等译.电磁兼容导论[M].北京:人民邮电出版社.2007.
    12. 柴常.王存莲.机电安全技术[M].北京:化学工业出版社.2006
    13. 沙斐.机电一体化系统的电磁兼容技术[M].中国电力出版社.2000.
    14. W. D. Bensema. M. Kanda.J. W. Adams. Electromagnetic Noise in 1TMANN Mine[R].Prepared for U. S. Bureau of Mines United States Department of the Interior Pittsburgh. Pennsylvania 15222.1974.
    15. M. Kanda.J. W. Adams, W. D. Bensema. Electromagnetic Noise in McELROY Mine[R]. Prepared for U. S. Bureau of Mines United States Department of the Interior Pittsburgh. Pennsylvania 15222.1974.
    16.]W.D. Bensema,Motohisa Kanda.John W. Adams. Electromagnetic Noise in Robena No.4 Coal Mine[R]. National Bureau of Standards Technical Note 654, April.1974.
    17. MOTOHISA KANDA. Time and Amplitude Statistics for Electromagnetic Noise in Mines[J]. IEEE Transactions on Electromagnetic Compatibility. Vol. EMC-17, No.3.1975:122-129.
    18. и.Φ.奥戈罗德涅丘克[苏],吴荣光.虞梦先译.矿井低频无线通讯[M].煤炭工业出版社.1981.
    19. Wait J R. Propagation Of Radio Waves[J]. Antennas and Propagation Magazine. IEEE.1998,40(2):88-92
    20. Hill D A and Wait J R. Analysis of Radio Frequency Transmission in a Semicircular Mine Tunnel Containing Two Axial Conductors[J]. Communications. IEEE Transactions on,1977,25(9):1046-1050
    21. Wait J R and Hill D A. Radio frequency transmission via a trolley wire in a tunnel with a rail return[J]. Microwave Theory and Techniques. IEEE Transactions on,1977.25(2):248-253
    22. Wait J R. Radiowave propagation in a coal seam with inhomogeneous rock walls[J]. Geoscience an Remote Sensing. IEEE Transactions on,1991.29(3):469-472
    23. Wait J R and Hill D A. Guided electromagnetic waves along an axial conductor in a circular tunnel[J]. Antennas and Propagation, IEEE Transactions on,1974,22(4):627-630
    24. Wait J R and Hill D A. Propagation Along a Braided Coaxial Cable(编织同轴电缆) in a Circular Tunnel[C]. Microwave Theory and Techniques. IEEE Transactions on,1975,23(5):401-405
    25. Wait J R and Hill D A. Low-frequency radio transmission in a circular tunnel containing a wire conductor near the wall[J]. Electronics Letters.1976.12(13):346-347
    26. Wait J R and Nabulsi K A. Preforming an electromagnetic pulse in lossy medium[J]. Electronics Letters 1992.28(6):542-543]
    27. Hill D A. Electromagnetic wave propagation in an asymmetrical coal seam[J]. Antennas and Propagation. IEEE Transactions on.1986.34(2):244-247
    28. Hill D A and Wait J R. Guided electromagnetic waves along axial conductors in a circular tunnel[C]. Antennas and Propagation Society International Symposium.1974.12:11-13
    29. Hill D A and Wait J R. Propagation Along a Braided Coaxial Cable Loc Hill D A and Wait J R. Guided electromagnetic waves along axial conductors in a circular tunnel[C]. Antennas and Propagation Society International Symposium.1974.12:11-13
    30. Hill D A and Wait J R. Analysis of Radio Frequency Transmission along a Trolley Wire in a Mine Tunnel[J]. Electromagnetic Compatibility. IEEE Transactions on.1976.18(4):170-174
    31. Hill D A and Wait J R. The Impedance of Dipoles in a Circular Tunnel with an Axial Conductor[J]. Geoscience Electronics. IEEE Transactions on,1978,16(2):118-126
    32. Hill D A and Wait J R. Bandwidth of a Leaky Coaxial Cable in a Circular Tunnel[J]. Communications. IEEE Transactions on.1978,26(11):1765-1771
    33. Rosich R K and Wait J R. On the convergence of a perturbation series solution for reflection from periodic rough surfaces[J]. Antennas and Propagation. IEEE Transactions on.2000.48(9):1489-1495
    34. Holloway C L. Hill D A. Dalke R A. et al. Radio wave propagation characteristics in lossy circular waveguides such as tunnels.mine shafts, and boreholes[J]. Antennas and Propagation. IEEE Transactions on. 2000.48(9):1354-1366
    35. Emslie A. Lagace R. and Strong P. Theory of the propagation of UHF radio waves in coal mine tunnels[J]. Antennas and Propagation. IEEE Transactions on [legacy, pre-1988].1975.23(2):192-205
    36. Anon. Mine power systems research[J]. Information Circular-United States. Bureau of Mines.1979:1-72
    37. Stanek E K. Fesak G. Acker F. et al. Overcurrent and overvoltage protection of mine power systems-panel discussion[C]. Conference Record-IAS Annual Meeting (IEEE Industry Applications Society),1979: 1191-1194
    38. Stanek E K. Cataltepe T and Wiitanen D O. Phenomena that affect the calculation of the inductance and resistance of mine track/trolley systems[C]. Conference Record-IAS Annual Meeting (IEEE Industry Applications Society),1984:100-106
    39. Stanek E K and Venkata S S. Mine power system reliability[C]. Conference Record-IAS Annual Meeting (IEEE Industry Applications Society).1985:154-168
    40. Wiitanen D O and Stanek E K. Analysis of reliability of mine electrical power systems[C]. Conference Record-IAS Annual Meeting (IEEE Industry Applications Society),1986:1567-1576
    41. Hassan M M and Stanek E K. Evaluation of alternate network layouts for mine electrical distribution systems[J]. IEEE Transactions on Components. Hybrids and Manufacturing Technology,1980:3.1-3.17
    42. Hassan M M and Stanek E K. Optimal voltage selection in underground coal mine power systems[C]. Conference Record-IAS Annual Meeting (IEEE Industry Applications Society),1980:104-113
    43. Kunjara A. Russell G P and Stanek E K. Prediction and suppression of electrical transients in mine electrical systems[C]. Conference Record-IAS Annual Meeting (IEEE Industry Applications Society).1977: 994-1002
    44. Cataltepe T. Rogers J C and Stanek E K. Characteristics of dc mine power systems affecting fuse performance[J]. IEEE.1983:85-102
    45. Trutt F C and Morley L A. Mine electrical power equipment modeling[C]. Conference Record-IAS Annual Meeting (IEEE Industry Applications Society),1977:982-987
    46. Trutt F C and Thomas S A. Dynamic simulation of coal mine electrical power systems[C]. Conference Record-IAS Annual Meeting (IEEE Industry Applications Society).1978:279-284
    47. Trutt F C, Rivell R A and King R L. Balanced fault analysis of coal mine electrical power syslems[C]. IEEE International Symposium on Electromagnetic Compatibility.1979:42-56
    48. Trutt F C. Rivell R A and Morley L A. Analysis of unbalanced faults on coal-mine electrical power systems[C]. Conference Record-IAS Annual Meeting (IEEE Industry Applications Society),1979: 1161-1167
    49. Trutt F C. Novak T and Morley L A. Analysis of shock potential in AC mine power systems[C]. Conference Record-IAS Annual Meeting (IEEE Industry Applications Society).1983:134-138
    50. Trutt F C and Kohler J L. Non-iterative approach to mine power-system analysis[C]. Conference Record-IAS Annual Meeting (IEEE Industry Applications Society).1984:113-116
    51. Trutt F C and Morley L A. Mine power system analysis[C]. Conference Record-IAS Annual Meeting (IEEE Industry Applications Society),1985:169-175
    52. Trutt F C, Rotithor H G and Kohler J L. Coordination-free ground-fault relay for AC mine distribution systems[C]. Conference Record-IAS Annual Meeting (IEEE Industry Applications Society),1988,35(6): 1267-1271
    53. Wagner J K. and Trutt F C. Interactive mine power system relay coordination[C]. Conference Record-IAS Annual Meeting (IEEE Industry Applications Society),1981:148-153
    54. Novak T. Trutt F C and Morley L A. Analysis of dc mine power systems with respect to electrical safety [C]. Conference Record-IAS Annual Meeting (IEEE Industry Applications Society).1983:129-133
    55. Seshaprasad B J and Peters R R. Investigation of switching transients in 3.3 kV underground mine power systems[J]. Mining Technology,1997,79(914):267-270
    56. Machowski J and Dabek R. Filters for mine thyristor controlled locomotives with the alternating current line feed[C]. Power Electronics & Applications-Proceedings,1985,2:5.129-5.133
    57. Sinchuk O N. Udovenko O A and Chumak V V. Transient electromagnetic processes in a tractional drive with a pulsed voltage converter for battery-driven mine locomotives[J]. Russian Electrical Engineering,2004, 75(6):98-103
    58. K.J.Cornick.A.M.Kunji.Nanosecond switching transients recorded in a mining transformer installation[J]. IEEE Trans on Power Delivery,1993(7):1130-1137.
    59. 孙继平.矿井监控与通信设备电磁兼容性试验的严酷等级[J].煤炭科学技术.1999.27(6):23-24.39.
    60.孙继平.潘涛.田子建.煤矿井下电磁兼容性探讨[J].煤炭学报.2006.31(3):377-399.
    61. 闫文忠.李长青,安葳鹏,赵建贵.KJ93型矿井安全生产监控系统中的抗干扰技术研究[J].焦作工学院学报(自然科学版),2004.23(5):395-398.
    62. 韩建平.煤矿安全监控系统的主要干扰源与抗干扰措施[J].神华科技.2010,8(6):32-37.
    63. 冯利国.王国辉,李鑫宝等.煤矿安全监控系统抗电磁干扰的研究[J].煤矿安全.2010(8):60-72.
    64.王宣.煤矿监控系统的抗干扰[J].西煤炭科技,1999(1):61-62
    65.单丙军.李红霞,刘凯等.煤矿监控系统的抗干扰措施[J].煤矿机械.2001(7):62-64.
    66. 孙继平.王福增.煤矿井下电磁干扰对通信和监控系统的影响分析[J].工矿自动化.2009(2):23-26.
    67. 王晓珠.煤矿井下电子设备防电磁干扰的方法[J].煤碳科技.2003(4):25-27
    68. 祖国林.杜学东.余进.刘春富.煤矿安全监控系统电磁兼容抗扰度试验研究[J].煤炭科学技术.2008.36(5):67-71.
    69. 刘艺平.煤矿用产品电磁兼容测试技术研究[D].煤科总院沈阳研究院硕士学位论文.2008.
    70. 唐长华.电网i皆波对煤矿设备运行的危害及治理[J]煤矿安全.2009(7):103-105
    71.巩学海.何金良.李雨.变电所的瞬态电磁环境分析[J].高压电气,2009.45(5):39-43.
    72.吕东霞.对煤矿供配电系统谐波危害及治理的探讨[J].煤炭工程.2008(8):17-18
    73.任子晖.石莹.付华科.李伟泺.基于小波和FFT的煤矿电网谐波测量分析[J].煤矿机械,2010.31(6):186-188.
    74.张会娜.刘东晓.煤矿安全中高次谐波的问题分析[J]煤炭工程.2008(3):54-56.
    75.张义杰.煤矿变电所谐波滤波及无功分段补偿技术[J].电力自动化设备.2002.22(9):82-84.
    76.任了晖.仇润鹤.张艳.煤矿电网谐波分析模型的建立与滤波器设计[J].中国矿业大学学报.2004.33(1):45-49.
    77. 李永国.张梅.煤矿供电系统中的电磁兼容问题[J].工况自动化.2010(6):95-97.
    78. 李关锦.煤矿供电系统中谐波危害的防治[J].煤矿安全.2002.33(8):34-35.
    79. 孙振海.侯杰.煤矿绞车系统谐波抑制和无功补偿[J]电气技术.2006(8):35-36.
    80. 卢军晓.王富元.煤矿井下电力系统谐波与无功功率综合补偿的研究[J].装备制造技术,2010(8):167-169
    81. 周玉峰.乔和.煤矿井下软启动器的网侧谐波分析[J].辽宁工程技术大学学报(自然科学版).2010.29(2):271-273.
    82.亓跃峰.煤矿生产中电网谐波危害分析及滤波改进办法[J].电气应用.2006,25(4):55-57.
    83. 侯继才.姜筱瀛,胡腾蛟.煤矿主井提升机谐波治理及无功补偿[J].电气技术.2007(2):86-89.
    84.徐美生.煤矿主通风机供电系统谐波与电磁T扰辐射治理[J].煤矿机电.2010(1):75-76.
    85. 纵建民,石波.浅析煤矿井下荧光灯电r镇流器谐波的产生及其危害[J].工况自动化.2006(6):87-89.
    86. 毕可仁.孙锡春,邢金成.矿用变频器谐波的产生与抑制[J].煤炭技术.2006.25(7):29-30.
    87. 郝文清.矿用隔爆变频器的谐波干扰与抑制[J].煤.2007.47-48.
    88.张英梅.袁晓光.煤矿井下直流牵引网络中杂散电流分布[J].太原理工大学学报,1998,29(3):237-239.
    89.武兴华.于向东.煤矿井下电机车牵引网络中杂散电流研究[J].煤炭科学技术.2001.29(3):38-40.
    90.张英梅.煤矿井下杂散电流分布规律的研究[J].煤炭学报.2005.30(1):129-132
    91. 张帆.煤矿井下电机车电磁干扰问题探讨[J].煤炭科学技术.2009.37(4):88-90.102.
    92 尹小本.范迪鹏.煤矿井下直流杂散电流的研究[J].工矿自动化.2009(5):12-15.
    93.单志茹.煤矿电力网过电压的防范[J].煤矿机电.2005(6):50-54.
    94.苗美菊.史丽萍,许允之.王崇林.煤矿电网内部过电压[J].煤矿自动化,1994(2):44-46.
    95.郝富成.宋虎森,孔亚娥.煤矿井下高压供电系统过电压的分析与预防[J].煤.2003(1):44-45.
    96.王玉洁,郭海文.煤矿井下供电系统操作过电压的测辨研究[J].辽宁工程技术大学学报(自然科学版).2000.19(3):285-287.
    97.王玉洁.李桂莲,朱小龙.煤矿井下供电系统过电压的仿真研究[J].辽宁工程技术大学学报(自然科学版).2000.19(5):507-509.
    98. 杜学玲.张金刚.浅谈煤矿高压设备常见操作过电压的危害及改进措施[J].西北煤炭,2006,4(3):49-50
    99.邹有明.煤矿35/6 kV终端变电所过流保护系统的优化研究[J].煤炭科学技术,25(5):19-22.
    100.杜生华.王拓.邹有明.陈淑红.煤矿井下6-10 kV电网选择性速断过流保护系统设计[J].煤矿安全,2005.36(4):1-3.
    101.康润生.柳春生.煤矿井下低压电网的过流保护研究[J].中国煤田地质.13(4):2001.74-75.
    102.秦连军.煤矿井下低压供电过流保护装置性能分析[J].煤炭技术.2009.28(6):20-22.
    103.丁光彬.煤矿井下低压过流保护装置的选择及整定值的计算[J].水力采煤与管道运输.2008(2):47-48.
    104.李金波.煤矿井下供电的过硫保护[J].电工技术,2009(12).5-6.
    105.卢晓.姜建国.煤矿井下复杂电磁环境与电磁干扰特性研究[J].工矿自动化.2007(6):64-66.
    106.孟润泉.梁翼龙.宋建成,李安平.基于谐波检测的井下高压电网选择性漏电保护系统[J].继电器.2001.29(5):37-40.
    107郑国莘.矿用智能化通用性选择性漏电保护馈电开关[J].煤炭科学技术.2000.28(11):11-14.
    108.王艺华.煤矿井下甚高频电磁十扰分布的分析[J].电信科学.2002(3):63-64.
    109.王艺华.井下漏泄电磁场强的分布及其测量[J].工况自动化.2002(4):3-5.
    110.杨卫英.矿用多芯供电电缆中动力芯线对信号芯线的电磁干扰[J].煤炭学报.2000.25(4):427-429.
    111.孙丽萍.郑国莘.矿用电器中的电容性干扰研究[J]太原理工大学学报,2000.31(1):18-21.
    112.张会清.于洪珍.李佳宁CDMA技术在井下移动通信中应用的酬究[J].中国矿业大学学报.2001,30(5):499-502.
    113.李锋.刘志毅.王建新.杨来和.现代采掘机械[M]北京:煤炭工业出版社,2007
    114.李炳文,万丽荣,柴光远.矿山机械[M].徐州:中国矿业大学出版社,2010.
    115.彭伦天,韩治华.采掘机械选型与操作[M].重庆:重庆大学出版社.2010.
    116.高国富.王安.连续采煤设备电控技术[M].徐州:中国矿业大学出版社,2003.
    117.中国煤炭工业协会物资流通分会.中煤贸发物资有限公司机电设备部.煤矿常用机电产品实用手册[M].北京:煤炭工业出版社,2006.
    118.穆连生.郭增军.邸满田.煤矿综连采实用电工技术[M].北京:煤炭工业出版社,2006.
    119.穆连生.刘同良.现代煤矿采掘设备电气控制及维修技术[M].北京:煤炭工业出版社,2008.
    120.隆泗.煤矿机电设备与安全竹理[M].成都:西南交通大学出版社.2010
    121.孙继平.宋秋爽.王国发.高效综合机械化采煤成套装备技术[M].徐州:中国矿业大学出版社,2008.
    122.杨玉涛.陈国华,安站东.矿用变频器与采煤机电牵引系统使用与维修[M].北京:媒炭工业出版社,2009
    123.赖昌干,矿山电上学[M].北京:煤炭工业出版社.2007.
    124.梁南丁.史万才,庞元俊.煤矿供电[M].徐州:中国矿业大学出版社.2009.
    125.李树伟.矿山供电[M].中国矿业大学出版社.2006.
    126.陶学仪.尚药世.现代化矿井安全高效综采工作而供电技术[J].煤炭学报.2010.35(11):1930-1934
    127.任子晖.煤矿电网谐波分析与治理[M].徐州:中国矿业大学出版社.2003.
    128.吴敏慧.变电站电气二次回路及抗干扰[M].北京:中国电力出版社.2010
    129.吕润餘.电力系统高次谐波[M].北京:中国电力出版社,1998
    130. Francisco C. De La Rose赵琰.孙秋野.电力系统谐波[M].北京:机械上业出版社,2009
    131. George J. Wakileh徐政.电力系统谐波—基本原理、分析方法和滤波器设计[M].北京:机械工业出版社.2011.
    132.张选正,陈乐萌.矿用防爆变频器和软启动器应用[M].北京:化学工业出版社,2012.
    133.张承慧,崔纳新.李珂.交流电机变频调速及其应用[M].北京:机械工业出版社.2008.
    134.蔡士齐.感应电动机传动和变频器应用技术[M].北京:机械工业出版社,2008.
    135.丁荣军,黄济荣.现代变流技术与电气传动[M].北京:科学出版社,2009.
    136.胡伟.查晓明.PWM-VSI变频调速系统谐波分析模型的构建[J].电气应用,2006.25(5):59-71.
    137.梁魁.王建明.电压型PWM变频调速系统供电电网的谐波分析[J].电气传动,2003.22(6):65-68.73.
    138.刘进军,卓放,王兆安.电容滤波型电路的网侧谐波分析[J].电力电子技术.1995(4):14-19.
    139.王兆安,杨君.刘进军.王跃.谐波抑制和无功功率补偿[M].北京:机械工业出版社,2006.
    140.陈国呈.PWM变频调速及软开关电力变换技术[M].北京:机械工业出版社,2001.
    141.杨耕.罗应立等.电机与运动控制系统[M].北京:清华大学出版社,2006.
    142.许期英,刘敏军.交流调速技术与系统[M].北京:化学工业出版社.2010.
    143.莫付江,阮江军.陈允平.浪涌抑制与电磁兼容[J].电网技术.2004.28(5):69-72
    144.杨敏.陈俊武.熊军.浪涌抑制技术研究[J].电瓷避雷.2008(6):28-30.
    145.周承忠,於益军.电力自动化设备的浪涌电压保护[J].电工技术杂志,2002(9):28-40.
    146.程利军.尹项根.张哲.微机保护装置的抗浪涌骚扰研究[J].电网技术.2008.32(2):51-55.
    147国家标准GB/T 17626.5-2008/1EC 61000-4-5:2005电磁兼容测试和测量技术浪涌(冲击)抗扰度实验北京:中国标准出版社.2008.
    148.钱振宇.史建华.电气、电子产品的电磁兼容技术及设计实例[M].北京:电子工业出版社.2008
    149.汤蕴璆,张奕黄.范瑜.交流电机动态分析[M].北京:机械工业出版社.,2005.
    150.施围,郭洁.电力系统过电压计算[M].北京:高等教育出版社.2006.
    151.杨斌文、许俊.高压电动机的操作过电压保护[J].电机技术.2006(1):55-57.
    152.平绍勋.周玉芳.电力系统中性点接地方式及运行分析[M].北京:中国电力出版社,2010.
    153.卓金玉.电力电缆设计原理[M].北京:机械工业出版社,1999.
    154.孙继平,郑召文,冯德旺.任锦彪.浪涌对矿井水泵房电磁环境的影响[J]煤炭学报.Vol.35(2).2010:349-352.
    155.孙继平.郑召文,冯德吐.矿井浪涌脉冲电磁辐射特性研究[J].煤炭学报.2009.34(5):707-710.
    156. JUN ZHAN, QI-LING QIN. Analytic Solutions of Traveling-Wave Antennas Excited by Nonsinusoidal Currents[J]. IEEE Trans. on Electromagnetic Compatibility. Vol.31 No.3.1989:328-330.
    157.倪光止.钱秀英.电磁场数值计算[M].北京:高等教育出版社.1996.
    158.王玉峰.邹积岩.廖敏夫.一次回路形成电快速瞬变脉冲群骚扰的研究及防护[J].电力自动化设备.2007.27(9):22-26.
    159.王玉峰.邹积岩.廖敏夫.二次回路中电快速瞬变脉冲群骚扰的研究[J].电力系统自动化.2007.31(16):79-82.
    160.梁志成.傅静波.李富同.江峰,何彬.微机保护装置的电快速瞬变脉冲群抗扰度研究[J].电力系统自动化,2003.27(11):65-68.
    161.李清泉,李彦明.牛业民.变电站开关操作引起的瞬变电磁场及其防护[J].高电压技术.2001.27(4):35-37.
    162.孙继平,冯德旺,赵振保等.矿用线缆电快速瞬变脉冲群骚扰的传输特性[J].中国矿业大学学报.2009.38(1):46-49.
    163.孙继平,冯德旺.郑召文,任锦彪,靳风荣.电快速瞬变脉冲群对矿井大巷电磁辐射环境的影响[J].北京理工大学学报.2009.29(4):336-338.355.
    164.赵晓明,吴俊.余志慧.电快速瞬变脉冲群干扰频谱分析及其导致微机保护非止常重启实例[J].继电器,2006.34(17):8-12.
    165.GB/T 17626.4-2008.电磁兼容-实验和测量技术-电快速瞬变脉冲群抗扰度实验[S].北京:中国标准出版社.2008.
    166.康伟,吴子安,陈继明.基于MATLAB的电快速瞬变脉冲群形成机理及防护措施研究[J].电气自动化,33(4).2011.
    167. Fawwaz T.Ulaby尹华杰.应用电磁学基础(第4版)[M].北京:人民邮电出版社.2007
    168. MALEK G. M. HUSSAIN. Antenna Patterns of Nonsinusoidal Waves with the Time Variation of a Gaussian Pulse-Part I. IEEE Transactions On Electromagnetic Compatibility.1988.30(4):504-512.
    169. HENNING F. HARMUTH. D.R.Shao. Antennas for Nonsinusoidal Waves. I. Radiators. IEEE Transactions On Electromagnetic Compatibility.1983. EMC-25(1):13-24.
    170.中国煤炭工业协会物资流通分会.中媒贸发物资有限公司机电设备部.煤矿常用机电产品.实用手册[M].北京:煤炭工业出版社.2006
    171.GB 755-2008:旋转电机 定额和性能[S]北京:中国标准出版社,2008
    172.GB/Z 18039.1-200:电磁兼容环境电磁环境的分类[S].北京:中国标准出版社,2000.
    173.GB12668.3-2003:调速电气传动系统 第3部分:产品的电磁兼容性标准及其特定的试验方法[S].北京:中国标准出版社.2003
    174. Giulio Antonini. Saverio Cristina. Antonio Orlandi. A Prediction Model for Electromagnetic Interferences Radiated by an Industrial Power Drive System[J]. IEEE Transactions on industry applications, vol.35. no.4, 1999:p870-876.
    175. Francesco Della Torre. Adriano Paolo Morando. Study on Far-Field Radiation From Three-Phase Induction Machines[J]. IEEE Transactions on electromagnetic compatibility, vol.51, no.4,2009:928-936.
    176.白同云.电磁兼容设计实践[M].北京:中国电力出版社.2007
    ]77.钱振宇.史建华.电气电子产品的电磁兼容技术及设计实例[M].北京:电子工业出版社,2008.
    178.王崇林.中性点接地方式与消弧线圈[M].徐州:中国矿业大学出版社.1999.
    179.平绍勋,周玉芳.电力系统中性点接地方式及运行分析[M]北京:中国电力出版社,2010.
    180.孙继平.成凌飞.张长森.电导率对巷道中电波传播的影响[J].辽宁上程技术大学学报,2007(1):96-98.
    181.孙继平.石庆冬.矩形隧道中的列车对电磁波截止频率的影响[J].电波科学学报,2001(1):100-102.
    182.孙继平.魏占永.矿井隧道中电磁场能量的损耗[J].中国矿业大学学报.2002(6):575-578
    183.孙继平.魏古永.隧道中低频导行电磁波的传播特性[J],电波科学学报.2003(2):203-206
    184.孙继平.魏古永.矩形隧道中的金属支护立柱对电磁波截止频率的影响[J].西安电r科技大学学报(自然科学版).2003(4):565-568.
    185.孙继平.成凌飞.张长森.截而尺寸对矩形巷道中电磁波传播的影响[J].中国矿业大学学报.2005(5):596-599.
    186.孙继平.张长森.梯形隧道中电磁波的传播特性[J].中国矿业大学学报,2003(1):64-67
    187.孙继平.张长森.圆形隧道中电磁波的传播特性[J].电波科学学报.2003(4):408-412
    188孙继平.张传雷.梯形隧道中横截而尺寸对电磁波传播特性的影响[J].电子与信息学报.2006(8).1504-1507.
    189.孙继平.成凌飞.矩形隧道中电磁波传播模式的分析[J].电波科学学报,2005(4):522-525.
    190. ALFRED G. EMSLIE. ROBERT L. LAGACE. PETER F. STRONG. Theory of the Propagation of UHF Radio Waves in Coal Mine Tunnels[J]. IEEE Transactions on antennas and propagation, vol.23. no.2,1975:192-205.
    191. Y. P. Zhang. Guorui Han. Wenmei Zhang, and J. H. Sheng. Electromagnetic Mode Theory of Periodically-Loaded Oversized Imperfect Waveguide and Its Application to the Propagation of Radio Waves in Long Wall Coal Mining Face Tunnels[J]. IEEE Transactions on antennas and propagation, vol.58, no.5, 2010:1816-1822.
    192.傅君眉.冯恩信.高等电磁理论[M].西安:西安交通大学出版社,2000
    193. Y. P. Zhang. G X. Zheng, and J. H. Sheng. Radio Propagation at 900 MHz in Underground Coal Mines[J]. IEEE Transactions on antennas and propagation, vol.49. no.5,2001:757-762.
    194. Y. P. Zhang and Y. Hwang. Characterization of UHF Radio Propagation Channels in Tunnel Environments for Microcellular and Personal Communications[J]. IEEE Transactions on vehicular technology, vol.47. no. 1.1998:283-296.
    195 曹善勇Ansoft HFSS磁场分析与应用实例[M].北京:中国水利水电出版社,2010.
    196.周佩白.鲁君伟.傅正财.杜亚平.电磁兼容问题的计算机模拟与仿真技术[M].北京:中国电力出版社.2006.
    ]97蔡仁钢电磁兼容原理、设计和预测技术[M].北京:北京航空航天大学出版社.1997.
    198.(关)佛雷德甲卡·M·特奇.(瑞士)米歇尔·V·艾诺茨,(瑞典)托比杰恩·卡尔松.EMC分析方法与计算模型[M].北京:北京邮电大学出版社,2009.

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700