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Investigation of Short-Arc High-Pressure Xenon Discharge: Effect of Electrode Material Evaporation on Discharge Properties and Pulse Operation

机译:短弧高压氙气放电的研究:电极材料蒸发对放电性能和脉冲操作的影响

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This paper presents and discusses the experimental data obtained in the investigation of a short-arc high-pressure xenon discharge in dc and pulse-periodic operation modes. In the case of the dc discharge, the main focus of attention is the cathode material (thorium) evaporation into the plasma. Spectroscopic measurements show that this process strongly influences the plasma characteristics and first of all the plasma optical emission. Due to low ionization energy, thorium atoms decrease the plasma temperature at the cathode, which is confirmed by experimentally obtained spectra with an unexpectedly low optical emission temperature. The fact cannot be interpreted without the assumption of cathode material evaporation: in a homogeneous short-arc gas discharge with a conical cathode, the emission temperature at the cathode should not be low because the strength of the electric field is obviously maximal near the cathode tip. The findings are important for modeling discharges of such kind. For the pulse-periodic discharge, two effects are described: a decrease in the anode temperature and an increase in the light efficiency of about 35% in some discharge conditions. These can be used for the development of more powerful and effective xenon light sources.
机译:本文介绍并讨论了在直流和脉冲周期操作模式下对短弧高压氙气放电进行研究时获得的实验数据。在直流放电的情况下,主要关注的焦点是阴极材料(th)蒸发成等离子体。光谱测量表明,该过程强烈影响等离子体特性,并且首先影响等离子体的光发射。由于电离能低,th原子降低了阴极的等离子体温度,这是通过实验获得的光谱具有出乎意料的低发射光谱所证实的。没有阴极材料蒸发的假设就无法解释这一事实:在带有圆锥形阴极的均匀短弧气体放电中,阴极处的发射温度不应低,因为在阴极尖端附近电场强度明显最大。这些发现对于模拟此类放电非常重要。对于脉冲周期放电,描述了两个效果:在某些放电条件下,阳极温度降低和光效率提高约35%。这些可用于开发更强大,更有效的氙气光源。

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