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Numerical Study of the Arc Fluctuations in DC Plasma Torch

机译:直流等离子体火炬电弧波动的数值研究

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Plasma spray technology is widely employed by industry to apply coatings on different components to protect them from corrosion, wear and high temperature environments. The gases introduced into the DC plasma torch are heated by the arc and a plasma jet exits the torch. Powders are injected into the plasma jet where they are then accelerated, heated, and melted before impacting the substrate, which is placed at some distance from the outlet of plasma spray torch. Plasma arc exhibits strong voltage fluctuations which correspond to the movement of the anode arc root attachment. Understanding the arc movement within the torch and how it affects the flow and temperature fields of the plasma jet exiting the torch is of great importance. Understanding the flow, temperature and electromagnetic fields within the DC plasma torch is extremely challenging and there is a limited number of investigations in the literature.In order to provide unique sets of surface characteristics, e.g., thermal barriers, wear and corrosion resistance, a high quality coating with appropriate combination of powder and base materials must be produced. To produce a high quality coating, powder particles should be uniformly heated and accelerated, and then deposited onto the substrate.In this paper, an unsteady 3-dimensional model of the arc movement within the plasma torch is reported. The proposed model is employed to solve electric potential and magnetic vector potential equations in addition to continuity, momentum and energy equations. The k-s turbulence model was used to model the turbulence of the flow field inside a non-transferred DC argon plasma torch. The geometry of the torch was that of SG-100 torch (Praxair).TO study the effect of the arc length on the voltage, first a steady-state model was considered for a range of arc lengths and arc-root radii. The results of this model provided the relation between arc length and arc voltage for a set of arc root radii and given argon flow rate. Then, given voltage fluctuation profile, the unsteady, arc root attachment movement was simulated from the estimation which found from steady models. Results show that the effects of velocity and temperature fluctuations at the outlet of the torch (where the particles are injected) are not negligible and such fluctuations exceed 15% of their average values. These will in turn affect the particle heating history and will negatively impact the microstructure of the coating.
机译:等离子喷涂技术广受业界采用适用于不同组件的涂层,以保护它们免受腐蚀,磨损和高温的环境。引入到DC等离子体焰炬的气体被电弧加热和等离子流离开炬。粉末注入等离子体射流在那里它们被加速,然后,加热,并熔化冲击基板,其被放置在一定的距离从等离子体喷涂喷枪的出口之前。等离子弧呈现强的电压波动,其对应于阳极电弧根部附着的移动。了解火炬内的弧运动以及它如何影响等离子体射流离开火炬的流场和温度场是非常重要的。理解流量,温度和电磁场的DC等离子炬内极具挑战性和有在literature.In以便提供对表面特性,例如,热障,耐磨,耐腐蚀,高的独特组研究的有限数量的品质涂层的粉末和基体材料适当组合必须产生。为了产生高质量的涂层,粉末颗粒应均匀地加热和加速,然后沉积到substrate.In本文中,等离子炬内电弧运动的不稳定的三维模型被报告。采用所提出的模型来解决电位,并且除了连续性,动量和能量方程磁矢量势方程。第k-S湍流模型用于流场的紊流模型非转移DC氩等离子体炬内。焊炬的几何形状是,SG-100炬(普莱克斯)的.TO研究电弧长度的影响的电压,第一稳态模型被认为是一系列的电弧长度和弧根半径的。该模型的结果的一组弧根半径的所提供的电弧长度和电弧电压之间的关系和氩气流量给出。然后,给定的电压波动曲线,非稳态,弧根附着运动是从从稳定模型中发现估计模拟。结果表明,在焊炬(其中粒子被注入)的出口速度和温度波动的影响是不能忽略的,这样的波动超过它们的平均值的15%。这些将反过来影响颗粒加热历史和涂层的显微组织会产生负面影响。

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