Impact of Acoustic Impedances of the Electrodes on the Recovery Algorithm and Measured Results in Pulsed Electro-Acoustic Method
Ren Hanwen1, Li Qingmin1, Wang Jingrui1, Liu Tao1, Wang Zhongdong2
1. State Key Laboratory of Alternate Electrical Power System with Renewable Energy Sources North China Electric Power University Beijing 102206 China; 2. School of Electrical and Electronic Engineering The University of Manchester Manchester M13 9PL UK
Abstract:Accurate recovery of distorted measurement waveforms is a key process of research for space charge measurement when using the pulsed electro-acoustic (PEA) method. Based on the equivalent model of interfacial acoustic waves, the simulation results indicates that the difference of acoustic impedances between upper electrode and sample can affect the measured wave component. Combined with the propagation process of acoustic waves under electric pulses, the theoretical analysis indicates that the difference of acoustic impedance can further influence the process of attenuation recovery and charge quantity conversion. Based on the derivation process of attenuation coefficient and voltage-charge conversion coefficient, an improved recovery algorithm was proposed for charge measurement of single-layer and multi-layer samples considering the influence of acoustic impedance of upper electrode. Recovery results of the waveforms measured by different upward electrodes were used to verify the algorithm. Meanwhile, comparative analysis indicates that the difference of acoustic impedances between electrode and sample should be included in recovery calculations even if the semi-conductive material is selected as the upper electrode. Moreover, by recovering the waveform of a double-layer sample, the improved algorithm was proved to be used in the waveform recovery of multi-layer samples.
任瀚文, 李庆民, 王靖瑞, 刘涛, 王忠东. 电极声阻抗对电声脉冲法恢复算法与测量结果的影响[J]. 电工技术学报, 2020, 35(3): 669-678.
Ren Hanwen, Li Qingmin, Wang Jingrui, Liu Tao, Wang Zhongdong. Impact of Acoustic Impedances of the Electrodes on the Recovery Algorithm and Measured Results in Pulsed Electro-Acoustic Method. Transactions of China Electrotechnical Society, 2020, 35(3): 669-678.
[1] 鲁杨飞, 李庆民, 刘涛, 等. 高频电压下表面电荷分布对沿面放电发展过程的影响[J]. 电工技术学报, 2018, 33(13): 3059-3070. Lu Yangfei, Li Qingmin, Liu Tao, et al.Effect of surface charge on the surface discharge evolution for polyimide under high frequency voltage[J]. Transactions of China Electrotechnical Society, 2018, 33(13): 3059-3070. [2] Tanaka Y.Space charge distribution measurement using PEA method-encounter with unexpected behavior[C]//International Conference on Properties and Applications of Dielectric Materials, Xi’an, China, 2018: 1-10. [3] 李亚莎, 代亚平, 花旭, 等. 杂质对交联聚乙烯电缆内部电场和空间电荷分布影响[J]. 电工技术学报, 2018, 33(18): 4365-4371. Li Yasha, Dai Yaping, Hua Xu, et al.The Influence of impurities on electric field and space charge distribution in XLPE cable[J]. Transactions of China Electrotechnical Society, 2018, 33(18): 4365-4371. [4] 王威望, 李盛涛, 刘文凤. 聚合物纳米复合电介质的击穿性能[J]. 电工技术学报, 2017, 32(16): 25-36. Wang Weiwang, Li Shengtao, Liu Wenfeng.Dielectric breakdown of polymer nanocomposites[J]. Transactions of China Electrotechnical Society, 2017, 32(16): 25-36. [5] 周远翔, 王宁华, 王云杉, 等. 固体电介质空间电荷研究进展[J]. 电工技术学报, 2008, 23(9): 16-25. Zhou Yuanxiang, Wang Ninghua, Wang Yunshan, et al.Review of research on space charge in solid dielectrics[J]. Transactions of China Electrotechnical Society, 2008, 23(9): 16-25. [6] 廖瑞金, 柳海滨, 柏舸, 等. 纳米SiO2/芳纶绝缘纸复合材料的空间电荷特性和介电性能[J]. 电工技术学报, 2016, 31(12): 40-48. Liao Ruijin, Liu Haibin, Bai Ge, et al.Space charge characteristics and dielectric properties of nano-SiO2/aramid paper composite[J]. Transactions of China Electrotechnical Society, 2016, 31(12): 40-48. [7] Fukunaga K.Progress and prospects in PEA space charge measurement techniques[J]. IEEE Electrical Insulation Magazine, 2008, 24(3): 26-37. [8] Li Ying, Aihara M, Murata K, et al.Space charge measurement in thick dielectric materials by pulsed electroacoustic method[J]. Review of Scientific Instruments, 1995, 66(7): 3909-3916. [9] Li Ying, Yasuda M, Takada T.Pulsed electroacoustic method for measurement of charge accumulation in solid dielectrics[J]. IEEE Transactions on Dielectrics and Electrical Insulation, 1994, 1(2): 188-195. [10] Fukuma M, Funo R, Murakami Y, et al.Measurement of acoustic property for signal recovery in PEA method[C]//International Conference on Electrical Insulating Materials, Kyoto, Japan, 2011: 69-72. [11] Wadamori M, Fukuma M, Maeno T, et al.Proposal of numerical analysis model of acoustic wave propagation and generation on PEA method[C]// International Conference on Properties and Applications of Dielectric Materials, Nagoya, Japan, 2003: 863-866. [12] 张博雅, 张贵新. 直流GIL中固-气界面电荷特性研究综述Ⅰ: 测量技术及积聚机理[J]. 电工技术学报, 2018, 33(20): 4649-4662. Zhang Boya, Zhang Guixin.Review of charge accumulation characteristics at gas-solid interface in DC GIL, part I: measurement and mechanisms[J]. Transactions of China Electrotechnical Society, 2018, 33(20): 4649-4662. [13] IEC/TS 62758. Calibration of space charge measuring equipment based on the pulsed electro-acoustic (PEA) measurement principle[S]. Geneva, Switzerland: International Electrotechnical Commission, 2012. [14] 兰莉, 吴建东, 王雅妮, 等. 低密度聚乙烯/乙丙橡胶双层介质的界面空间电荷特性[J]. 中国电机工程学报, 2015, 35(5): 1266-1272. Lan Li, Wu Jiandong, Wang Yani, et al.Space charge property at the interface in low density polyethylene/ethylene propylene rubber double layered insulation[J]. Proceedings of the CSEE, 2015, 35(5): 1266-1272. [15] 郝建, 黄博, George Chen, 等. 空间电荷在多层结构油纸绝缘混合体系的积聚规律及其对电场分布的影响[J]. 高电压技术, 2017, 43(6): 1973-1979. Hao Jian, Huang Bo, George Chen, et al.Space charge accumulation behavior of multilayer structure oil-paper insulation and its effect on electric field distribution[J]. High Voltage Engineering, 2017, 43(6): 1973-1979. [16] Bodega R, Morshuis P H F, Smit J J. Space charge measurements on multi-dielectrics by means of the pulsed electroacoustic method[J]. IEEE Transactions on Dielectrics and Electrical Insulation, 2006, 13(2): 272-281. [17] 兰莉, 尹毅, 吴建东. 双层介质的电声脉冲法空间电荷波形恢复[J]. 中国电机工程学报, 2016, 36(2): 570-576. Lan Li, Yin Yi, Wu Jiandong.Recovery of space charge waveform in multi-layer dielectrics by means of the pulsed electro-acoustic method[J]. Proceedings of the CSEE, 2016, 36(2): 570-576. [18] Chahal J S, Reddy C C.Modeling and simulation of pulsed electroacoustic measurement method[J]. IEEE Systems Journal, 2014, 8(4):1283-1292. [19] 吴超一, 钟力生, 王霞, 等. 脉冲电声法空间电荷测量波形恢复的数据处理[J]. 中国电机工程学报, 2005, 25(16): 137-140. Wu Chaoyi, Zhong Lisheng, Wang Xia, et al.Data Processing of space charge waveform recovery in PEA method[J]. Proceedings of the CSEE, 2005, 25(16): 137-140. [20] Murkami Y, Sugiyama T, Kasashima T, et al.Signal recovery of space charge distribution using acoustic property in PEA method[C]//IEEE International Conference on the Properties and Applications of Dielectric Materials, Sydney, Australia, 2015: 344-347. [21] 周凯, 吴广宁, 刘君, 等. 基于电声脉冲法的空间电荷直接测量仪的研制[J]. 仪器仪表学报, 2008, 29(10): 2110-2115. Zhou Kai, Wu Guangning, Liu Jun, et al.Development of space charge direct measurement device for polymer insulation based on PEA[J]. Chinese Journal of Scientific Instrument, 2008, 29(10): 2110-2115. [22] 蔡川, 李旭光, 尹毅, 等. 空间电荷测量信号恢复中的频域反卷积技术及实现[J]. 电工技术学报, 2009, 24(10): 165-169. Cai Chuan, Li Xuguang, Yin Yi, et al.Frequency domain deconvolution technique and its implementation in the recovery of the space charge signal[J]. Transactions of China Electrotechnical Society, 2009, 24(10): 165-169. [23] Vázquez A, Chen G, Davies A E, et al.Space charge measurement using pulsed electroacoustic technique and signal recovery[J]. Journal of the European Ceramic Society, 1999, 19(6): 1219-1222. [24] Sugiyama T, Uqbah M, Ishikawa A, et al.Development of a space charge measurement method without a semiconducting electrode[C]//International Symposium on Electrical Insulating Materials, Niigata, Japan, 2014: 397-400. [25] Bodega R, Morshuis P H F, Smit J J. Space charge signal interpretation in a multi-layer dielectric tested by means of the PEA method[C]//IEEE International Conference on Solid Dielectrics, Toulouse, France, 2004: 1-4.