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Particle Injection in Direct Current Air Plasma Spray: Salient Observations and Optimization Strategies

机译:直流空气等离子喷涂中的粒子注入:显着观察和优化策略

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摘要

External injection of high-melting point low thermal conductivity ceramics orthogonal to a typical direct current thermal plasma jet plays a vital role in determining the in-flight state of the particles and the process downstream. The interactions between low density ceramic particles and high temperature plasma jet is quite complex, which influences the spray process and associated deposition. Detailed in-flight particle diagnostics as well as spray stream visualization have significantly enhanced our capability to diagnose and control the process. In this paper we present some salient observations on the role of key variables on particle injection. A number of experiments were conducted using a 7MB torch (Sulzer Metco, Westbury, NY) with both Ar–H2 and N2–H2 plasma gases, where the carrier gas flow to inject Yttria Stabilized Zirconia (YSZ) was varied systematically and the resulting in-flight particle state was captured using an array of particle and spray stream sensors arranged in a 3D set-up. A notable observation is the existence of a “sweet-spot” in the plasma jet where the particle temperatures and velocities achieved a maximum. This sweet-spot can be characterized by the plume position (location of centroid of the spray stream) rather than carrier gas flow rate and is independent of primary gas flows and other process/material conditions. This result suggests a possible approach to optimize particle injection independent of plasma-forming-torch-parameters. Controlling particle injection at this sweet-spot has shown to benefit the overall process efficiency (in terms of melting) and process reliability (both in-flight measurement and coating build-up) with concomitant application benefits.
机译:与典型的直流热等离子射流正交的高熔点低导热率陶瓷的外部注入在确定粒子的飞行状态和下游过程中起着至关重要的作用。低密度陶瓷颗粒和高温等离子体射流之间的相互作用非常复杂,这会影响喷涂过程和相关的沉积。详细的飞行中粒子诊断以及喷雾流可视化显着增强了我们诊断和控制过程的能力。在本文中,我们对关键变量在粒子注入中的作用提出了一些重要的观察。使用7MB割炬(Sulzer Metco,Westbury,NY)对Ar–H2 和N2 –H2 等离子气体进行了许多实验,其中载气流注入Yttria系统地改变了稳定的氧化锆(YSZ),并使用以3D设置排列的一系列粒子和喷雾流传感器捕获了飞行中的粒子状态。值得注意的观察是等离子流中存在“最佳点”,其中颗粒温度和速度达到最大。该最佳点的特征在于羽流的位置(喷雾流质心的位置),而不是载气的流速,并且与主要气流和其他工艺/材料条件无关。该结果表明了一种可能的方法,可以独立于等离子体形成炬参数来优化粒子注入。在最佳位置控制颗粒注入已显示出可提高整体工艺效率(就熔化而言)和工艺可靠性(飞行中的测量和涂层堆积),并具有相应的应用优势。

著录项

  • 来源
    《Plasma Chemistry and Plasma Processing》 |2007年第5期|609-623|共15页
  • 作者单位

    Center for Thermal Spray Research Stony Brook University 130 Heavy Engineering Building Stony Brook NY 11794-2275 USA;

    Center for Thermal Spray Research Stony Brook University 130 Heavy Engineering Building Stony Brook NY 11794-2275 USA;

    Center for Thermal Spray Research Stony Brook University 130 Heavy Engineering Building Stony Brook NY 11794-2275 USA;

    Center for Thermal Spray Research Stony Brook University 130 Heavy Engineering Building Stony Brook NY 11794-2275 USA;

    Center for Thermal Spray Research Stony Brook University 130 Heavy Engineering Building Stony Brook NY 11794-2275 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Particle injection; Optimum injection; Radial external injection; Particle diagnostics; Air plasma spray;

    机译:粒子注入;最佳注入;径向外部注入;颗粒诊断;空气等离子喷涂;
  • 入库时间 2022-08-18 02:20:09

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