Abstract:Experimental investigations concerning electrical explosion of bare Cu wire and polyester (PET) coated Cu wire in water are presented in this paper. Besides, for deeper analysis, the obtained results are also compared with the behaviors of these two kinds of wires exploded in air. A platform has been established, which includes a microsecond timescale pulsed current source, a specially designed load, a diagnostic system, and a chamber with a diameter of 1000 mm. Load voltage, circuit current, shock wave pressure, and time-integrated spectra were recorded and analyzed. The experimental results revealed that the PET layer could slightly cause a time delay of about 0.2μs for the burst time. Meanwhile, the deposition energy of coated wires was larger than those of bare ones both in water and air. In contrast, light emission patterns were obviously different from these two kinds of wires. The insulation layer could absorb the light emitted from the discharge channel. As for shock waves, nevertheless, there was no obvious influence of the PET layer. This study may be helpful for the research of wire exploding process and related applications.
韩若愚, 吴佳玮, 周海滨, 邱爱慈. 水中裸铜丝与镀膜铜丝电爆炸积分光谱与冲击波特性实验研究[J]. 电工技术学报, 2017, 32(24): 257-264.
Han Ruoyu, Wu Jiawei, Zhou Haibin, Qiu Aici. Experimental Study of Electrical Explosion of Bare and Coated Cu Wire in Water. Transactions of China Electrotechnical Society, 2017, 32(24): 257-264.
[1] 张永民, 邱爱慈, 周海滨, 等. 面向化石能源开发的电爆炸冲击波技术研究进展[J]. 高电压技术, 2016, 42(4): 1009-1017. Zhang Yongmin, Qiu Aici, Zhou Haibin, et al. Research progress in electrical explosion shockwave technology for developing fossil energy[J]. High Voltage Engineering, 2016, 42(4): 1009-1017. [2] 孙冰. 液相放电等离子体及其应用[M]. 北京: 科学出版社, 2013. [3] Shafer D, Toker G, Gurovich V T, et al. Generation of cumulative jets during underwater explosion of copper wires in the “X-pinch” con-figuration[J]. Journal of Applied Physics, 2013, 114(20): 203301. [4] 周庆. 空气和水中非难熔金属丝电爆炸能量沉积特性的研究[D]. 西安: 西安交通大学, 2012. [5] 毛志国, 邹晓兵, 王新新, 等. 电爆金属丝产生纳米粉体[J]. 强激光与粒子束, 2010, 22(3): 691-695. Mao Zhiguo, Zou Xiaobing, Wang Xinxin, et al. Nano-powder production by electrical explosion of wires[J]. High Power Laser and Particle Beams, 2010, 22(3): 691-695. [6] 毛志国. 电爆炸金属丝制备纳米粉体的研究[D]. 北京: 清华大学, 2009. [7] 李瑞. 毛细管放电等离子体特性及其射流与发射药作用机理研究[D]. 西安: 西安交通大学, 2012. [8] 戴栋, 宁文军, 邵涛. 大气压低温等离子体的研究现状与发展趋势[J]. 电工技术学报, 2017, 32(20): 1-9. Dai Dong, Ning Wenjun, Shao Tao. A review on the state of art and future trends of atmospheric pressure low temperature plasmas[J]. Transactions of China Electrotechnical Society, 2017, 32(20): 1-9. [9] 高国强, 彭开晟, 董磊, 等. 电压幅值和频率对表面介质阻挡放电与气动特性的影响[J]. 电工技术学报, 2017, 32(8): 55-62. Gao Guoqiang, Peng Kaisheng, Dong Lei, et al. Experimental of surface dielectric barrier discharge and aerodynamic characteristics at different voltage amplitude and frequency[J]. Transactions of China Electrotechnical Society, 2017, 32(8): 55-62. [10] 荣命哲, 吴翊, 杨飞, 等. 开关电弧电流零区非平衡态等离子体仿真研究现状[J]. 电工技术学报, 2017, 32(2): 1-12. Rong Mingzhe, Wu Yi, Yang Fei, et al. Review on the simulation method of non-equilibrium arc plasma during current zero period in the circuit breaker[J]. Transactions of China Electrotechnical Society, 2017, 32(2): 1-12. [11] 马山刚, 于歆杰, 李臻. 用于电磁发射的电感储能型脉冲电源的研究现状综述[J]. 电工技术学报, 2015, 30(24): 221-229. Ma Shangang, Yu Xinjie, Li Zhen. A review of the current research situation of inductive pulsed-power supplies for electromagnetic launch[J]. Transactions of China Electrotechnical Society, 2015, 30(24): 221-229. [12] 廖敏夫, 李文浩, 蒋西平, 等. 激光触发多级气体真空混合开关[J]. 电工技术学报, 2015, 30(9): 91-95. Liao Minfu, Li Wenhao, Jiang Xiping, et al. Laser triggered multistage gas-vacuum mixed switch[J]. Transactions of China Electrotechnical Society, 2015, 30(9): 91-95. [13] 荣命哲, 刘定新, 李美, 等. 非平衡态等离子体的仿真研究现状与新进展[J]. 电工技术学报, 2014, 29(6): 271-282. Rong Mingzhe, Liu Dingxin, Li Mei, et al. Research status and new progress on the numerical simulation of non-equilibrium plasmas[J]. Transactions of China Electrotechnical Society, 2014, 29(6): 271-282. [14] Otsuka M, Itoh S. Destruction of concrete block using underwater shock wave generated by electric discharge[C]//ASME 2006 Pressure Vessels and Piping/ ICPVT-11 Conference, Vancouver, BC, Canada, 2006: 189-194. [15] Krasik Y E, Grinenko A, Sayapin A, et al. Under- water electrical wire explosion and its applications[J]. IEEE Transactions on Plasma Science, 2008, 36(2): 423-434. [16] Tkachenko S I, Kuskova N I. Dynamics of phase transitions at electrical explosion of wire[J]. Journal of Physics: Condensed Matter, 1999, 11(10): 2223. [17] Tkachenko S I, Khishchenko K V, Vorob'ev V S, et al. Metastable states of liquid metal under conditions of electric explosion[J]. High Temperature, 2001, 39(5): 674-687. [18] Pikuz S A, Shelkovenko T A, Sinars D B, et al. Multiphase foamlike structure of exploding wire cores[J]. Physical Review Letters, 1999, 83(21): 4313. [19] Sinars D B, Shelkovenko T A, Pikuz S A, et al. The effect of insulating coatings on exploding wire plasma formation[J]. Physics of Plasmas, 2000, 7(2): 429-432. [20] Krasik Y E, Grinenko A, Sayapin A, et al. Under- water electrical wire explosion and its applications[J]. IEEE Transactions on Plasma Science, 2008, 36(2): 423-434. [21] Oreshkin V I, Chaikovsky S A, Ratakhin N A, et al. “Water Bath” effect during the electrical underwater wire explosion[J]. Physics of Plasmas, 2007, 14(10): 102703. [22] Grinenko A, Efimov S, Fedotov A, et al. Addressing the problem of plasma shell formation around an exploding wire in water[J]. Physics of Plasmas, 2006, 13(5): 052703. [23] 马腾才, 胡希伟, 陈银华. 等离子体物理原理[M]. 合肥: 中国科学技术大学出版社, 2012. [24] Sasaki T, Yano Y, Nakajima M, et al. Warm- dense-matter studies using pulse-powered wire discharge in water[J]. Laser and Particle Beams, 2006, 24(3): 371-380. [25] Wu J, Li X, Wang K, et al. Transforming dielectric coated tungsten and platinum wires to gaseous state using negative nanosecond-pulsed-current in vacuum[J]. Physics of Plasmas (1994-present), 2014, 21(11): 112708. [26] 石桓通, 邹晓兵, 赵屾, 等. 并联金属丝提高电爆炸丝沉积能量的数值模拟[J]. 物理学报, 2014, 63(14): 145206. Shi Huantong, Zou Xiaobing, Zhao Can, et al. Numerical simulation of energy deposition improve- ment in electrical wire explosion using a parallel wire[J]. Acta Physica Sinica, 2014, 63(14): 145206. [27] 吴坚, 李兴文, 李阳, 等. 快前沿电流产生气化铝单丝Z箍缩负载的研究[J]. 物理学报, 2014, 63(12): 125206. Wu Jian, Li Xingwen, Li Yang, et al. Gasified singlewire almunum Z-pinch load formed by fast rising curren[J]. Acta Physica Sinica, 2014, 63(12): 125206. [28] Sarkisov G S, Rosenthal S E, Struve K W, et al. Corona-free electrical explosion of polyimide-coated tungsten wire in vacuum[J]. Physical Review Letters, 2005, 94(3): 035004. [29] Sinars D B, Shelkovenko T A, Pikuz S A, et al. The effect of insulating coatings on exploding wire plasma formation[J]. Physics of Plasmas (1994- present), 2000, 7(2): 429-432. [30] Sinars D B, Hu M, Chandler K M, et al. Experiments measuring the initial energy deposition, expansion rates and morphology of exploding wires with about 1kA/wire[J]. Physics of Plasmas (1994-present), 2001, 8(1): 216-230. [31] Peterson K J, Awe T J, Edmund P Y, et al. Electrothermal instability mitigation by using thick dielectric coatings on magnetically imploded con- ductors[J]. Physical Review Letters, 2014, 112(13): 135002. [32] Stephens J, Neuber A, Kristiansen M. Experimental and theoretical evaluation of surface coated exploding wires[J]. Physics of Plasmas (1994-present), 2012, 19(3): 032702. [33] Wu J, Li X, Wang K, et al. Transforming dielectric coated tungsten and platinum wires to gaseous state using negative nanosecond-pulsed-current in vacuum[J]. Physics of Plasmas (1994-present), 2014, 21(11): 112708. [34] Li Y, Sheng L, Wu J, et al. Influence of insulating coating on aluminum wire explosions[J]. Physics of Plasmas (1994-present), 2014, 21(10): 102513. [35] Shi Z, Wang K, Shi Y, et al. Experimental investigation on the energy deposition and expansion rate under the electrical explosion of aluminum wire in vacuum[J]. Journal of Applied Physics, 2015, 118(24): 243302. [36] 王坤, 史宗谦, 石元杰, 等. 真空中铝单丝电爆炸的实验研究[J]. 物理学报, 2016, 65(1): 328-338. Wang Kun, Shi Zongqian, Shi Yuanjie, et al. Experi- mental investigation on the electrical explosion of single aluminum wire in vacuum[J]. Acta Physica Sinica, 2016, 65(1): 328-338. [37] Han R, Zhou H, Liu Q, et al. Generation of electrohydraulic shock waves by plasma-ignited energetic materials: I. fundamental mechanisms and processes[J]. IEEE Transactions on Plasma Science, 2015, 43(12): 3999-4008. [38] 周海滨, 韩若愚, 吴佳玮, 等. 水中铜丝电爆炸放电通道模型及仿真[J]. 高电压技术, 2015, 41(9): 2943-2949. Zhou Haibin, Han Ruoyu, Wu Jiawei. Model and simulation study of discharge channel during under- water Cu wire explosion[J]. High Voltage Engin- eering, 2015, 41(9): 2943-2949. [39] Romanova V M, Ivanenkov G V, Mingaleev A R, et al. Electric explosion of fine wires: three groups of materials[J]. Plasma Physics Reports, 2015, 41(8): 617-636.