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Formation Regularities of Gaseous Vapour Plasma Envelope in Electrolyzer

机译:电解槽中气态气相等离子体包络的形成规律

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This work focuses on the factors causing appearance of a steady and continuous vapour-gas envelope which functions as medium for plasma electrolytic saturation of metal and alloys with interstitial elements (nitrogen, carbon, and boron). It is established that second critical voltage associated with transition from the current oscillation mode to the stable heating is determined by anion emission from boiling electrolyte in the envelope and heat transfer conditions in the system. Stability of the interface electrolyte-envelope is provided by the energy liberation in the envelope due to the passage of current. Second critical voltage promoting the anion emission is calculated on the base of Gouy-Chapman model and Tonks-Frenkel aperiodic instability. Theoretical dependence of critical voltage on the electrolyte concentration is confirmed experimentally. The influence of the electrolyte concentration on the second critical voltage is explained by the ability of the electrolyte to emit anions. Effect of solution flow rate on this voltage accounts for heat transfer conditions. It should be noted that the anion emission explains the influence of electrolyte composition on the weight change of the anode sample, limit beating temperature (~1000℃) due to the limited emissivity of electrolyte, discrete current in the case of a small surface anode, and high-frequency pulse of the current.
机译:这项工作的重点是导致出现稳定连续的蒸气-气体包膜的因素,该气体-包膜用作金属和具有间隙元素(氮,碳和硼)的合金的等离子体电解饱和的介质。已经确定,与从电流振荡模式到稳定加热的转变相关的第二临界电压由外壳中沸腾的电解质的阴离子发射和系统中的传热条件确定。由于电流的通过,外壳中的能量释放提供了界面电解质-包膜的稳定性。基于Gouy-Chapman模型和Tonks-Frenkel非周期性不稳定性,计算了促进阴离子发射的第二个临界电压。实验证实了临界电压对电解质浓度的理论依赖性。电解质浓度对第二临界电压的影响通过电解质释放阴离子的能力来解释。溶液流速对该电压的影响解释了传热条件。应该注意的是,阴离子发射解释了电解质成分对阳极样品重量变化的影响,由于电解质的发射率有限而导致的极限击打温度(〜1000℃),在表面较小的阳极情况下的离散电流,和高频脉冲电流。

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