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Forced Convective Cooling of Foils in a Repetitively Pulsed Electron-Beam Diode

机译:重复脉冲电子束二极管中的箔片强制对流冷却

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Electron-beam (e-beam)-pumped high-power gas lasers require the use of a transmission window/foil to separate the vacuum diode from the laser cell. Under repetitive operation, the foil is subject to an e-beam heat load and would eventually fail without cooling. This paper investigates forced convective cooling of a foil in the main amplifier of the Electra KrF laser by flowing the laser gas around a closed loop. The experimental data were taken with one of the two diodes operating at 500 kV, 110 kA, a full-width at half-maximum of 140 ns, and with an external axial magnetic field of 0.14 T. Type-T thermocouples are used to measure the temperature of the foil under a variety of conditions including flow-velocity enhancement due to louver inserts, repetition rate, cathode configuration, gas composition, and height along the foil. A first-order model that considers cooling due to turbulent flow, as well as internal foil thermal conduction and radiation, reproduces the general trends observed in the data. The goal is to keep the temperature of a 25-$muhbox{m}$-thick stainless steel foil below the tensile strength and long-term thermal fatigue limits when operating at 5 Hz. The data, in combination with the model, predict that this goal can be achieved by diverting the laser gas to flow at high velocity along the foil surface.
机译:电子束(电子束)泵浦的高功率气体激光器需要使用透射窗/箔来将真空二极管与激光元件分开。在重复操作下,箔片会受到电子束的热负荷,并且最终会在不冷却的情况下失效。本文通过使激光气体绕闭环流动,研究了Electra KrF激光器主放大器中箔片的强制对流冷却。使用两个以500 kV,110 kA工作的二极管之一,半峰全宽为140 ns,外部轴向磁场为0.14 T的两个二极管之一获取实验数据。使用T型热电偶测量箔在各种条件下的温度,包括由于百叶窗插入导致的流速提高,重复率,阴极构型,气体成分和沿箔的高度。一阶模型考虑了湍流引起的冷却以及内部箔片的导热和辐射,从而再现了数据中观察到的一般趋势。目的是将25-muhbox {m} $厚的不锈钢箔的温度保持在5 Hz下时的拉伸强度和长期热疲劳极限以下。数据与模型相结合,可以预测这一目标可以通过使激光气体沿着箔片表面高速流动来实现。

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