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Development of subsonic electrical discharges in water and measurements of the associated pressure waves

机译:水中亚音速放电的发展以及相关压力波的测量

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This paper first presents an experimental electrical and optical study of the development of an electrical discharge in water. The point-plane water gap is subjected to a 0.02 mu s/350 mu s impulse voltage. A Schlieren device associated with an image converter or a photomultiplier demonstrates that the discharge phenomenon requires heating of the water located around the extremity of the point. This thermal process leads to the formation of gas bubbles in which an electrical discharge propagates. In the experimental conditions a threshold value of 80 J is necessary to create bubbles. No UV or IR light emission is recorded before the presence of bubbles is detected. When the energy conditions are sufficient (>= 200 J), the volume of bubbles grows until the whole inter-electrode space is filled; then a breakdown of the gap occurs. When this happens, a high amplitude pressure shock wave is generated. In the second phase of this work the shock wave created by the gap breakdown was studied for energy levels up to 100 kJ. It is clearly pointed out that the pressure shock wave peak value depends on the energy remaining at breakdown time. For a constant remaining energy, the peak pressure value increases with increasing gap length.
机译:本文首先介绍了在水中放电发展的电学和光学实验研究。点平面水隙要承受0.02μs/350μs的脉冲电压。与图像转换器或光电倍增管相关的Schlieren装置证明,放电现象需要加热位于该点末端附近的水。该热处理导致形成气泡,在该气泡中传播放电。在实验条件下,必须产生80 J的阈值才能产生气泡。在检测到气泡存在之前,没有记录到紫外线或红外光的发射。当能量条件足够时(> = 200 J),气泡的体积会增大,直到充满整个电极间空间为止;那么就会出现差距的崩溃。发生这种情况时,会产生高振幅压力冲击波。在这项工作的第二阶段,研究了由间隙击穿产生的冲击波,其能量水平高达100 kJ。清楚地指出,压力冲击波的峰值取决于击穿时剩余的能量。对于恒定的剩余能量,峰值压力值会随着间隙长度的增加而增加。

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