|
|
|
| Simulation on Ablation Dynamics and Doping Design of CuCr Contact Materials for Vacuum Circuit Breakers |
| Feng Dawei1,2,3, Liu Tingting1, Fu Xinye1, Li Zhe1, Liu Xiaoming1 |
1. Key Lab of Electromagnetic Field and Electrical Apparatus Reliability of Hebei Province School of Electrical Engineering Hebei University of Technology Tianjin 300401 China; 2. Key Laboratory of Special Machine and High Voltage Apparatus Ministry of Education Shenyang University of Technology Shenyang 110870 China; 3. SUNTEN Electrical Equipment Co. Ltd Foshan 528000 China |
|
|
|
Abstract With the development of power system toward high voltage and large current, vacuum circuit breakers, as environmentally friendly control and protection devices, play a vital role in ensuring power transmission safety and improving the reliability of electrical energy delivery. The ablation resistance of traditional CuCr contact materials has become insufficient to meet the demand of severe working conditions. This limitation has emerged as a critical bottleneck restricting the advancement of vacuum circuit breakers. To address this challenge, this dissertation systematically investigates the ablation mechanism and doping-enhanced effects of CuCr contact materials based on the microscopic dynamic simulations of arc ablation on contacts. Furthermore, the non-thermodynamic macroscopic physical parameters of the contact materials are characterized by first principles calculations. Based on the above, a new doping-enhanced design method for ablation-resistant contact materials is proposed to provide theoretical basis and methodological guidance for the development of high-performance contact materials. Firstly, a microscopic dynamic model of arc ablation was constructed. Crystal models of five CuCr alloys with Cr atom contents ranging from 10% to 50% were generated by using the special quasi-randomized method. These models were then structurally optimized by hybrid Monte Carlo/molecular dynamics (MC/MD) simulations to eliminate the effects of lattice distortion and defects induced by atomic radius differences. Furthermore, a microscopic dynamic model of arc ablation was established based on vacuum arc ablation characteristics. The ablative mass served as a quantitative parameter to characterize ablation resistance, which provides a theoretical foundation for studying the ablation resistance of contact materials and guiding doping-enhanced design. Subsequently, the microscopic arc ablation mechanism of CuCr contact materials was systematically investigated to guide the doping-enhanced design. The arc ablation simulation results demonstrate that the ablation resistance of CuCr contact materials, primarily influenced by erosion-deposition atoms, exhibits a positive correlation with Cr content. Through simulations of 60 Mo/W-doped CuCr contact materials, Cu47Cr50W3 was identified as the optimal composition with the highest ablation resistance. Additionally, it was also found that CuCr alloys containing 70%~80% Cu atoms possess the greatest potential for ablation resistance enhancement through doping. Finally, the non-thermodynamic macrostatic physical parameters of the ablation-resistant CuCr contact materials were characterized. The mechanical properties of CuCr alloys are enhanced with increasing Cr content. However, Cr has been identified as a critical factor in reducing the electrical conductivity of CuCr alloys, as Cr atoms possess numerous s- and p-orbital electrons distributed in energy levels below -40 eV, which exhibit low transition probabilities to the conduction band. Among the screened ablation-resistant doped alloys, Cu87Cr10Mo3, Cu80Cr18Mo2 and Cu67Cr30W3 demonstrate superior properties compared to their matrix alloys in terms of deformation resistance, fusion weld resistance, and hardness. Notably, certain mechanical properties of Cu67Cr30W3 are now equivalent to those of CuCr40 and CuCr50. Unfavorably, the addition of Mo and W reduces the population of valence band electrons between -10 eV and 0 eV that can participate in conduction, resulting in conductivity that remains predominantly governed by the Cu content. Considering the balance between ablation resistance, mechanical properties, and electrical conductivity, CuCr doped alloys with 70%~80% Cu atoms content demonstrate optimal comprehensive performance. Alloy systems in this range should be the focus of future research on high-performance contact materials.
|
|
Received: 25 June 2025
|
|
|
|
|
|
[1] Papadiotis K, Danikas M G, Sarathi R, et al.Recent advances in vacuum circuit breakers[J]. Journal of Engineering Science and Technology Review, 2022, 15(6): 164-169. [2] 马飞越, 姚晓飞, 刘志远, 等. 2/3匝线圈式纵磁触头大开距真空断路器分闸速度设计[J]. 电工技术学报, 2024, 39(13): 4139-4152. Ma Feiyue, Yao Xiaofei, Liu Zhiyuan, et al.Design of opening velocities for large-gap vacuum circuit breakers with 2/3 coil-type axial magnetic field contacts[J]. Transactions of China Electrotechnical Society, 2024, 39(13): 4139-4152. [3] 赵靖英, 李宁, 张雪辉, 等. 多簧片结构的磁保持继电器多物理场刚柔耦合仿真模型建立和实验分析[J]. 电工技术学报, 2024, 39(10): 3192-3205. Zhao Jingying, Li Ning, Zhang Xuehui, et al.Establishment and experimental analysis of rigid flexible coupling simulation model for multiphysics of magnetic latching relay with multi-reed structure[J]. Transactions of China Electrotechnical Society, 2024, 39(10): 3192-3205. [4] Xing Licheng, Zhang Xiaodong, Tong Qingbin, et al.Study of ablation of arc contacts and dynamic contact resistance in high current breaker[J]. Journal of Electrical Engineering & Technology, 2020, 15(3): 1015-1023. [5] 张登奎, 张立岩, 李志兵, 等. 基于经验小波变换的真空断路器关合预击穿燃弧时间分析[J]. 电工技术学报, 2024, 39(增刊1): 106-116. Zhang Dengkui, Zhang Liyan, Li Zhibing, et al.Analysis of pre-strike arcing time for vacuum circuit breaker closure based on empirical wavelet transform[J]. Transactions of China Electrotechnical Society, 2024, 39(S1): 106-116. [6] 王海涛, 王彦岭, 李书舸, 等. 不同电流下Ce掺杂AgCuO触头材料转移行为研究[J]. 电工技术学报, 2025, 40(2): 574-586. Wang Haitao, Wang Yanling, Li Shuge, et al.Study of materials transfer behavior of Ce-doped AgCuO contact materials at different current levels[J]. Transactions of China Electrotechnical Society, 2025, 40(2): 574-586. [7] 吴昱怡, 陈允, 崔博源, 等. 测试条件对断路器喷口材料性能测试的影响研究[J]. 绝缘材料, 2024, 57(3): 108-112. Wu Yuyi, Chen Yun, Cui Boyuan, et al.Effect of test conditions on performance test of circuit breaker nozzle material[J]. Insulating Materials, 2024, 57(3): 108-112. [8] Han Jinru, Dou Zhihe, Zhang Tingan, et al.Review of the recent Chinese research on the electrical properties of CuCr contacts for vacuum interrupters[J]. Journal of Materials Research and Technology, 2023, 25: 1585-1598. [9] Bizjak M, Karpe B, Jakša G, et al.Surface precipitation of chromium in rapidly solidified Cu-Cr alloys[J]. Applied Surface Science, 2013, 277: 83-87. [10] Zhao Laijun, Li Zhenbiao, Shi Kunyu, et al.Electrical properties of nanocrystalline CuCr25 contact material[J]. IEEE Transactions on Components, Packaging and Manufacturing Technology, 2013, 3(4): 625-632. [11] Feng Dawei, Fu Xinye, Wang Shuhui, et al.Enhancing ablation resistance of CuCr contact materials through metallic element doping: first-principles calculations[J]. Materials Letters, 2024, 360: 135935. [12] van de Walle A, Tiwary P, Jong M D, et al. Efficient stochastic generation of special quasirandom structures[J]. Calphad, 2013, 42: 13-18. [13] Cao Weichan, Liang Shuhua, Zhang Xiao, et al.Effect of Mo addition on microstructure and vacuum arc characteristics of CuCr50 alloy[J]. Vacuum, 2011, 85(10): 943-948. [14] 王亚平, 丁秉钧, 周敬恩. 合金元素对CuCr触头材料不同温度下真空耐电压强度的影响[J]. 高压电器, 1998, 34(3): 13-16. [15] Ibrahim A, Abdallah M, Mostafa S F, et al.An experimental investigation on the W-Cu composites[J]. Materials & Design, 2009, 30(4): 1398-1403. [16] Duan Junbiao, Guo Xiuhua, Feng Jiang, et al.Study on the arc erosion resistance and mechanism of Cr- doped WCu composites[J]. Materials Characteriza- tion, 2023, 205: 113291. [17] Yang Xiaohong, Gao Yong, Xiao Peng, et al.The effect of Cr on the properties and sintering of W skeleton as an activated element[J]. Materials Science and Engineering: A, 2011, 528(10/11): 3883-3889. [18] Wang Yanlong, Liang Shuhua, Luo Nan.Mechanical properties and thermal shock resistance of Zr, Cr doped WCu composite[J]. Rare Metal Materials and Engineering, 2016, 45(2): 329-332. [19] 周宁, 蒋彤, 刘宇航, 等. 一种耐高压烧蚀的Wf-CuCrW触头及其制备方法: CN117672727A[P].2024-03-08. [20] 付思, 曹云东, 李静, 等. 触头分离瞬间真空金属蒸气电弧形成过程的仿真[J]. 电工技术学报, 2020, 35(13): 2922-2931. Fu Si, Cao Yundong, Li Jing, et al.Simulation researches on vacuum metal vapor arc formation at the initial moment of contact parting[J]. Transactions of China Electrotechnical Society, 2020, 35(13): 2922-2931. [21] Carmina Monreal R.Auger neutralization and ionization processes for charge exchange between slow noble gas atoms and solid surfaces[J]. Progress in Surface Science, 2014, 89(1): 80-125. [22] Hollingsworth S A, Dror R O.Molecular dynamics simulation for all[J]. Neuron, 2018, 99(6): 1129-1143. [23] Yang Haonan, Shen Shuhang, Xu Ruoyu, et al.Molecular dynamics simulation of cathode crater formation in the cathode spot of vacuum arcs[J]. Journal of Physics D: Applied Physics, 2023, 56(37): 375203. [24] Feng Dawei, Fu Xinye, Ikra Amir O H M, et al. Molecular dynamics simulation of arc ablation for CuCr contact materials and improvement method of ablation resistance[J]. Materials Today Communica- tions, 2024, 40: 109934. [25] Stukowski A.Visualization and analysis of atomistic simulation data with OVITO-the open visualization tool[J]. Modelling and Simulation in Materials Science and Engineering, 2010, 18(1): 015012. [26] Xu Ruoyu, Zhou Mingyu, Wang Xin, et al.A molecular dynamics simulation study on the role of graphene in enhancing the arc erosion resistance of Cu metal matrix[J]. Computational Materials Science, 2022, 212: 111549. [27] Yang Xiaodong, Guo Jianwen, Chen Xiaofei, et al.Molecular dynamics simulation of the material removal mechanism in micro-EDM[J]. Precision Engineering, 2011, 35(1): 51-57. [28] 韩智云, 王梦溪, 任瀚文, 等. 石墨烯/铜钨合金触头电弧烧蚀的固-液相变动力学模拟与烧蚀程度微观表征[J]. 中国电机工程学报, 2023, 43(21): 8490-8502. Han Zhiyun, Wang Mengxi, Ren Hanwen, et al.Kinetic simulation of the solid-liquid phase transition and the microscopic characterization of the electric arc ablation of graphene/copper-tungsten alloy contacts[J]. Proceedings of the CSEE, 2023, 43(21): 8490-8502. [29] Daw M S, Baskes M I.Embedded-atom method: Derivation and application to impurities, surfaces, and other defects in metals[J]. Physical Review B, 1984, 29(12): 6443-6453. [30] Zhou X W, Johnson R A, Wadley H N G. Misfit-energy-increasing dislocations in vapor-deposited CoFe/NiFe multilayers[J]. Physical Review B, 2004, 69(14): 144113. [31] Tepper J, Seeger M, Votteler T, et al.Investigation on erosion of Cu/W contacts in high-voltage circuit breakers[J]. IEEE Transactions on Components and Packaging Technologies, 2006, 29(3): 658-665. [32] Zhang Yong, Maginn E J.A comparison of methods for melting point calculation using molecular dynamics simulations[J]. The Journal of Chemical Physics, 2012, 136(14): 144116. [33] 李爽, 鲁旭臣, 唐红, 等. GIS内触头过热的无线感知系统研制[J]. 高压电器, 2024, 60(5): 31-38, 45. Li Shuang, Lu Xuchen, Tang Hong, et al.Development of wireless sensing system on the contacts overheating in GIS[J]. High Voltage Apparatus, 2024, 60(5): 31-38, 45. [34] Guan Weimian, Yun Jie, Lv Hao, et al.Homogeneous arc ablation behaviors of CuCr cathodes improved by chromic oxide[J]. Journal of Materials Science & Technology, 2021, 81: 1-12. [35] Huang Xiaolong, Wang Lijun, Jia Shenli, et al.Numerical simulation of thermal characteristics of anodes by pure metal and CuCr alloy material in vacuum arc[J]. IEEE Transactions on Plasma Science, 2015, 43(8): 2283-2293. [36] Sato J, Watanabe K, Seki T, et al.Effect of Cr content in CuCr contact material on the interrupting ability of VCB[C]//Proceeding of 3rd International Conference on Electrical Contacts, Arcs, Apparatus and Their Applications, Xi’an, China, 1997: 249-253. [37] Li Wangpei, Thomas R L, Smith R K.Effects of Cr content on the interruption ability of CuCr contact materials[J]. IEEE Transactions on Plasma Science, 2001, 29(5): 744-748. [38] Clark S J, Segall M D, Pickard C J, et al.First principles methods using CASTEP[J]. Zeitschrift Fur Kristallographic - New Crystal Structures, 2005, 220(5/6): 567-570. [39] Tong Yonggang, Bai Linhui, Liang Xiubing, et al.Mechanical performance of (NbTaW)1-xMox (x = 0, 0.05, 0.15, 0.25) refractory high entropy alloys: perspective from experiments and first principles calculations[J]. Journal of Alloys and Compounds, 2021, 873: 159740. [40] 钟明君. 微量元素对铜基键合丝性能影响的第一性原理研究[D]. 重庆: 重庆理工大学, 2019. Zhong Mingjun.Effects of trace elements on properties of copper based bonding wire from first- principles calculations[D]. Chongqing: Chongqing University of Technology, 2019. [41] Le Page Y, Saxe P.Symmetry-general least-squares extraction of elastic data for strained materials from ab initio calculations of stress[J]. Physical Review B, 2002, 65(10): 104104. [42] Gao M C, Suzuki Y, Schweiger H, et al.Phase stability and elastic properties of Cr-V alloys[J]. Journal of Physics: Condensed Matter, 2013, 25(7): 075402. [43] Hill R.The elastic behaviour of a crystalline aggregate[J]. Proceedings of the Physical Society Section A, 1952, 65(5): 349. [44] Chang Chao, Zhang Hui.First-principles calculations to investigate elastic and thermodynamic properties of FeAlNixCrMn quinternary alloys[J]. Journal of Materials Research and Technology, 2022, 18: 1322-1332. [45] Huang Bo, Duan Yonghua, Sun Yong, et al.Electronic structures, mechanical and thermodynamic properties of cubic alkaline-earth hexaborides from first principles calculations[J]. Journal of Alloys and Compounds, 2015, 635: 213-224. [46] 杨志懋, 丁秉钧, 王笑天. CuCr真空触头材料的抗熔焊性能研究[J]. 西安交通大学学报, 1994, 28(7): 95-98, 104. Yang Zhimao, Ding Bingjun, Wang Xiaotian.A study of anti-welding properties of CuCr contact materials[J]. Journal of Xi’an Jiaotong University, 1994, 28(7): 95-98, 104. [47] Tian Yongjun, Xu Bo, Zhao Zhisheng.Microscopic theory of hardness and design of novel superhard crystals[J]. International Journal of Refractory Metals and Hard Materials, 2012, 33: 93-106. [48] 张茜. 基于第一性原理的选区激光熔化铜及铜铬锆合金的性能研究[D]. 西安: 西安建筑科技大学, 2023. Zhang Xi.Properties of selective laser melting Cu and CuCrZr alloys based on first principles[D]. Xi’an: Xi’an University of Architecture and Technology, 2023. [49] 张颖, 王景芹, 康慧玲, 等. 金属掺杂AgSnO2触头材料的仿真与实验[J]. 电工技术学报, 2021, 36(8): 1587-1595. Zhang Ying, Wang Jingqin, Kang Huiling, et al.Simulation and experiment of metal-doped AgSnO2 contact material[J]. Transactions of China Electro-technical Society, 2021, 36(8): 1587-1595. [50] Ning Zengye, Li Xiuqing, Yang Qingxia, et al.Effect of Cr content on microstructure and properties of Cu-Cr-W alloy based on theoretical and experimental analysis[J]. Journal of Alloys and Compounds, 2025, 1036: 181902. |
|
|
|