Cooling rates of plasma-sprayed metallic particles in liquid and gaseous nitrogen

Citation
P. Kotalik et K. Volenik, Cooling rates of plasma-sprayed metallic particles in liquid and gaseous nitrogen, J PHYS D, 34(4), 2001, pp. 567-573
Citations number
20
Categorie Soggetti
Apllied Physucs/Condensed Matter/Materiales Science
Journal title
JOURNAL OF PHYSICS D-APPLIED PHYSICS
ISSN journal
00223727 → ACNP
Volume
34
Issue
4
Year of publication
2001
Pages
567 - 573
Database
ISI
SICI code
0022-3727(20010221)34:4<567:CROPMP>2.0.ZU;2-9
Abstract
Plasma spraying of metallic particles in the ambient atmosphere is accompan ied by their oxidation. The oxides formed on the particle surfaces are ofte n unstable at room temperature. Fast cooling of the particles may conserve these oxides, leaving thus the particles heterogeneous and consisting of at least two materials-the oxide layer on the surface and the metal in the ce ntre. The times required to cool the particles below the melting points of the two materials are estimated for slow and fast cooling in gas and liquid nitrogen, respectively. The estimates are carried out numerically by solvi ng a one-dimensional heat transfer equation for solidifying spherical iron and Fe-Cr alloy particles having either a thin (1 mum) or a thick (10 mum) oxide layer on their surface. It has been found that for the typical partic le size of 120 mum in diameter, the cooling rates, under the assumed condit ions, are 10(5)-10(6) K s(-1) and it takes 10-1 ms to completely solidify t he initially liquid particles. The temperature histories of the particles w ithout any oxide layer and with a thin oxide layer are almost identical.