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Nature of convection-stabilized DC arcs in dual-flow nozzle geometry. I. The cold flow field and DC arc characteristics

机译:双流喷嘴几何形状中对流稳定的直流电弧的性质。一,冷流场和直流电弧特性

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An experimental investigation of the steady-state low current air arcs in a dual-flow nozzle system is presented. The cold flow field with no arc was determined for various nozzle geometries, i.e. two- and three-dimensional and orifice nozzles, and nozzle pressure ratios. Supersonic flow separation and oblique and detached shock waves were observed in the flow field. Using a finite-element computer program, the Mach number contours were determined in the flow field for various nozzle-gap spacings and pressure ratios. In addition, the DC arc voltage and current measurements were made for an electrode gap spacing of approximately=5.5 cm and current levels of I approximately=25, 50, and 100 A for the three nozzle geometries. The arc voltage and arc power increased rapidly as the flow speed increased from zero to sonic velocity at the nozzle throat. The shock waves in the converging-diverging nozzles resulted in a decrease in the overall resistance by about 15%.
机译:提出了在双流喷嘴系统中稳态低电流电弧的实验研究。对于各种喷嘴几何形状,即二维和三维喷嘴和孔口喷嘴,以及喷嘴压力比,确定没有电弧的冷流场。在流场中观察到超音速流分离以及倾斜和分离的冲击波。使用有限元计算机程序,在流场中针对各种喷嘴间隙间距和压力比确定了马赫数轮廓。此外,对于三个喷嘴几何形状,在电极间隙间距约为= 5.5 cm且电流水平I约为25、50和100 A的情况下,进行了直流电弧电压和电流的测量。随着喷嘴喉部处的流速从零增加到音速,电弧电压和电弧功率迅速增加。收缩喷嘴中的冲击波使总阻力降低了约15%。

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