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VACUUM ›› 2022, Vol. 59 ›› Issue (2): 66-71.doi: 10.13385/j.cnki.vacuum.2022.02.13

• Vacuum Metallurgy and Thermal Engineering • Previous Articles     Next Articles

An Arc Stabilization Power Supply Used for Vacuum Arc Melting

WANG Qing1, HOU Jing-yue2, LI Hong1   

  1. 1. Xi′an Shiyou University, Xi′an 710065, China;
    2. Shenyang Vacuum Technology Research Institute Co., Ltd., Shenyang 110042, China
  • Received:2021-04-07 Online:2022-03-25 Published:2022-04-14

Abstract: A new design scheme of arc stabilization power supply is introduced in this paper. It not only gives a detailed analysis of the theoretical basis, the unique main circuit topology construction, the control system composed of high-performance chips such as DSP and CPLD, but also some specific control software programs and circuit implementation methods are presented. Finally, a test prototype is developed according to the design idea, and relatively ideal result is obtained by testing the output waveform, which verifies the rationality and feasibility of the design scheme.

Key words: arc stabilization power supply, electromagnetic stir, DSP, CPLD, vacuum arc melting, VAR

CLC Number: 

  • TF136
[1] 张勇. 有色金属真空冶金的技术分析[J]. 世界有色金属, 2019, 524(8): 41-43.
[2] SHVYDKII E, BYCHKOY S, ZAKHVROA V, et al.Impurity distribution in a two-sided electromagnetic stirrer[J]. Russian Metallurgy(Metally), 2019(6): 570-575.
[3] 夏兴国. 一种滞环电流控制PWM整流器的设计研究[J]. 重庆工商大学学报(自然科学版), 2019, 36(3): 77-81.
[4] 章小卫, 周京华, 陈亚爱. 高性能铝熔炼用电磁搅拌器电源的研究[J]. 电气传动, 2019, 49(6): 73-78.
[5] 马伏军, 罗安, 欧阳红林, 等. 电磁搅拌用两相正交逆变电源的控制方法研究[J]. 中国电机工程学报, 2014(15): 2336-2345.
[6] 刘月华. 两相正交逆变电源的研究[D]. 长沙: 湖南大学, 2015.
[7] SUDDAPALLI S R, NISTALA B R.The analog/RF performance of a strained-Si graded-channel dual-material double-gate MOSFET with interfacecharges[J]. Journalof Computational Electronics, 2020, 19(4): 492-502.
[8] 张娜, 廖强, 侯鹏, 等. 稳弧搅拌方式对大规格纯钛铸锭组织的影响[J]. 湖南有色金属, 2019, 35(2): 55-56.
[9] 李犇. 电渣重熔电极熔化与液态金属熔池形状的实验研究[D]. 沈阳: 东北大学, 2014.
[10] 赵仕策, 常云龙, 张康雄, 等. 一种磁压缩焊接电弧装置: CN206998007U[P].2018-02-13.
[11] 卢秋朋, 张清鹏, 秦润杰. 传输线中趋肤效应的介绍及仿真[J]. 电子测量技术, 2015(6): 27-30.
[12] 王忠勇, 陈恩庆. TMS320F2812 DSP原理与应用技术[M]. 电子工业出版社, 2012.
[13] 邹彦. DSP原理及应用[M]. 北京: 电子工业出版社, 2012.
[14] 赵瑞霞, 刘建鹏, 吴道阳, 等. 基于DSP与CPLD的协调控制系统设计[J]. 电子世界, 2019, 575(17): 117-119.
[15] 程然, 马柯. 一种DSP+FPGA/CPLD控制系统互联及同步策略[J]. 电力电子技术, 2019(6): 35-38.
[16] 李锋华. 一种晶闸管同步导通触发电路: CN208445538U[P].2019-01-29.
[17] 张均华, 肖国春, 徐锋, 等. 基于CPLD的三相晶闸管数字移相触发器设计[J]. 工业加热, 2004, 33(5): 45-47.
[18] 苏志刚, 王海力, 陈子贤, 等. 一种基于PLL电路的动态移相及小数分频系统: CN110289856A[P].2019-09-27.
[19] 张立广, 李翰山, 范学明, 等. 基于CPLD的三相全桥数字触发技术[J]. 西北大学学报(自然科学版), 2012, 42(2): 203-206.
[20] 王辉, 李培培, 李宏. 应用DSP与CPLD实现24脉波低频电源触发电路[J]. 信息记录材料, 2018, 19(7): 69-71.
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