4.4 Article Proceedings Paper

Evaporation of Droplets in Plasma Spray-Physical Vapor Deposition Based on Energy Compensation Between Self-Cooling and Plasma Heat Transfer

Journal

JOURNAL OF THERMAL SPRAY TECHNOLOGY
Volume 26, Issue 7, Pages 1641-1650

Publisher

SPRINGER
DOI: 10.1007/s11666-017-0610-1

Keywords

evaporation; heat flux; heat transfer; PS-PVD; self-cooling

Funding

  1. National Basic Research Program of China [2013CB035701]
  2. Fundamental Research Funds for the Central Universities
  3. National Program for Support of Top-notch Young Professionals

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In the plasma spray-physical vapor deposition process (PS-PVD), there is no obvious heating to the feedstock powders due to the free molecular flow condition of the open plasma jet. However, this is in contrast to recent experiments in which the molten droplets are transformed into vapor atoms in the open plasma jet. In this work, to better understand the heating process of feedstock powders in the open plasma jet of PS-PVD, an evaporation model of molten ZrO2 is established by examining the heat and mass transfer process of molten ZrO2. The results reveal that the heat flux in PS-PVD open plasma jet (about 10 6 W/m(2)) is smaller than that in the plasma torch nozzle (about 10 8 W/m(2)). However, the flying distance of molten ZrO2 in the open plasma jet is much longer than that in the plasma torch nozzle, so the heating in the open plasma jet cannot be ignored. The results of the evaporation model show that the molten ZrO2 can be partly evaporated by self-cooling, whereas the molten ZrO2 with a diameter <0.28 mu m and an initial temperature of 3247 K can be completely evaporated within the axial distance of 450 mm by heat transfer.

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