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Plasma jet characteristics in long DC arc with ring-shaped anode

机译:带环形阳极的长直流电弧中的等离子体射流特性

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Fluctuation characteristics of plasma jet flow in an innovative long DC arc system with ring-shaped anode were successfully clarified on the basis of the high-speed camera visualization. The long DC arc with long electrode gap distance more than 350 mm has been applied to gas decomposition due to its advantages such as large plasma volume and long residence time of treated gas. However, large heat loss at a conventional hemispherical-shaped anode was critical issue in the long DC arc system. Therefore, a ring-shaped anode was utilized to convert large energy loss at the anode into the plasma jet flow. Two kinds of the experiments were conducted. One was the estimation of energy balance in the long DC arc system. Calorimetric measurements were carried out. Another was the high-speed camera observation of the arc fluctuation and the plasma jet fluctuation. Results indicated that the 60% of heat loss at the conventional hemispherical-shaped anode was converted into the plasma jet flow when the ring-shaped anode was utilized. High-speed camera observation revealed that the plasma jet fluctuation with sharp FFT peak in the range of 25-500Hz was attributed to the arc fluctuation, which originated from the restrike phenomena of the anode spot. In contrast, results also suggested that the plasma jet fluctuation with broad FFT peaks in the range of 100-300Hz was attributed to the eddy formation due to the entrainment of ambient cold gas. To understand and control the fluctuation phenomena in the plasma jet enables to establish the innovative waste treatment by thermal plasmas.
机译:在高速摄像头可视化的基础上,成功地阐明了带有环形阳极的创新长直流电弧系统中等离子流的波动特征。电极间隙距离大于350 mm的长DC电弧由于具有等离子体体积大和处理后气体停留时间长等优点而被用于气体分解。然而,在长的直流电弧系统中,常规的半球形阳极的大量热损失是关键问题。因此,利用环形阳极将阳极处的大量能量损失转换为等离子体射流。进行了两种实验。一种是长直流电弧系统中能量平衡的估算。进行量热测量。另一个是高速相机观察到的电弧波动和等离子流波动。结果表明,当使用环形阳极时,常规半球形阳极的60%的热损失转化为等离子体射流。高速相机观察表明,在25-500Hz范围内具有尖锐FFT峰的等离子流起伏是由于电弧起伏引起的,电弧起伏是由阳极斑点的再起弧现象引起的。相反,结果还表明,在100-300Hz范围内具有较宽FFT峰的等离子流波动是由于夹带环境冷气而形成涡流。了解和控制等离子流中的波动现象可以通过热等离子体建立创新的废物处理方式。

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