Discharge and mass transfer characteristics of atmospheric pressure gas-solid two-phase gliding arc

Min Zhu, Yuchen Ping, Yinghao Zhang, Chaohai Zhang, Shuqun Wu
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Abstract

In this work, a gas-solid two-phase gliding arc discharge (GS-GAD) reactor was built. Gliding arc was formed in the gap between the blade electrodes, and solid powder was deposited on the sieve plate positioned beneath the blade electrodes. A range of experimental parameters, including the inter-electrode spacing, gas flow rate, applied voltage, and the type of the powder, were systematically varied to elucidate the influence of solid powder matter on the dynamics of gliding arc discharge (GAD). The discharge images were captured by ICCD and digital camera to investigate the mass transfer characteristics of GS-GAD, and the electrical parameters, such as the effective values of voltage, current, and discharge power were record to reveal the discharge characteristics of GS-GAD. The results demonstrate that powder undergoes spontaneous movement towards the upper region of the gliding arc due to the influence of electric field force. Increasing the discharge voltage, decreasing relative dielectric constant of the powder and reducing the electrode-to-sieve-plate distance all contribute to a greater involvement of powder in the GAD process, subsequently resulting in an enhanced powder concentration within the GAD region. Additionally, powder located beneath the gliding arc experiences downward resistance caused by the opposing gas flow and arc. Excessive gas flow rate notably hampers the powder concentration within the discharge region, and the velocity of powder motion in the upper part of the GAD region is reduced. Under the condition of electrode-to-sieve-plate distance of 30 mm, gas flow rate of 1.5 L/min, and peak-to-peak voltage of 31 kV, the best combination of arc gliding and powder spark discharge phenomena can be achieved with the addition of Al2O3 powder.
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常压气固两相滑行电弧的放电和传质特性
这项研究建造了一个气固两相滑行电弧放电(GS-GAD)反应器。滑动电弧在叶片电极之间的间隙中形成,固体粉末沉积在位于叶片电极下方的筛板上。为了阐明固体粉末物质对滑弧放电(GAD)动力学的影响,系统地改变了一系列实验参数,包括电极间距、气体流速、外加电压和粉末类型。利用 ICCD 和数码相机捕捉放电图像,研究 GS-GAD 的传质特性;记录电压、电流和放电功率的有效值等电参数,揭示 GS-GAD 的放电特性。结果表明,在电场力的影响下,粉末向滑弧上部区域自发运动。提高放电电压、降低粉末的相对介电常数和减小电极到筛板的距离都有助于粉末更多地参与 GAD 过程,从而提高 GAD 区域内的粉末浓度。此外,位于滑动电弧下方的粉末会受到对向气流和电弧造成的向下阻力。过高的气体流速明显阻碍了放电区域内的粉末浓度,并降低了 GAD 区域上部的粉末运动速度。在电极到筛板距离为 30 毫米、气体流速为 1.5 升/分钟、峰-峰电压为 31 千伏的条件下,加入 Al2O3 粉末可实现电弧滑行和粉末火花放电现象的最佳组合。
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