Electric Current Induced Liquid Al Deposition, Reaction and Flow on Cu Rails at Rail-Armature Contacts in Railguns

I. Dutta, L. Delaney, B. Cleveland, C. Persad, F. Tang
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引用次数: 11

Abstract

When a railgun is fired, the aluminum armature typically undergoes melting at the rail-armature contacts and deposits liquid metal on the rails. Rail-life is affected by these deposits. Localized aluminum armature melting has been attributed to current crowding and localized Joule heating. This paper reports on (1) characterization of debris on fired rails and their role in rail damage, and (2) experiments to elucidate the role of electric current in the transport of liquefied armature material along the rail surfaces. A miniature static railgun model was constructed by wrapping an Al foil around a quartz core, and placing the Al foil in contact with two thin film Cu stripes deposited on Si substrates. In this arrangement, the Cu thin films simulated the surface skins on the two rails, whereas the Al foil represented the skin of the armature. The circuit was subjected to a constant current under high vacuum and various ambient temperatures. The part of the Al foil in contact with Cu melts quickly due to Joule heating, and the liquefied Al starts flowing down the negative rail. In all instances, the direction of liquid flow was from the positive to the negative terminal. The kinetics of Al migration was measured, and it was found that the activation energy for Al migration is close to that for self-diffusion in liquid Al. The observed liquid transport is attributable to liquid electromigration under the influence of the applied current.
在轨道炮的轨道-电枢接触处,电流诱导液态铝在铜轨道上沉积、反应和流动
当轨道炮发射时,铝电枢通常在轨道电枢接触处熔化,并在轨道上沉积液态金属。铁路生活受到这些沉积物的影响。局部铝电枢熔化归因于电流拥挤和局部焦耳加热。本文报道了(1)燃烧轨道上碎片的特征及其对轨道损坏的作用,(2)实验阐明了电流在液化电枢材料沿轨道表面运输中的作用。通过将铝箔包裹在石英芯上,并将铝箔与沉积在Si衬底上的两层Cu条纹薄膜接触,构建了微型静态轨道炮模型。在这种布置中,Cu薄膜模拟了两轨的表面表皮,而Al箔则代表了电枢的表皮。该电路在高真空和各种环境温度下承受恒定电流。由于焦耳加热,铝箔与铜接触的部分迅速熔化,液化的铝开始沿负轨向下流动。在所有情况下,液体的流动方向都是从正极流向负极。测量了Al迁移动力学,发现Al迁移的活化能与Al在液体中自扩散的活化能接近。观察到的液体迁移归因于施加电流影响下的液体电迁移。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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