TY - JOUR
T1 - Preparation and primary investigation of the tribological properties of ion-plated Cr-Ni-N composite films on stainless steel
AU - Hu, Ming
AU - Sun, Jia Yi
AU - Weng, Li Jun
AU - Liu, Wei Min
PY - 2005/3
Y1 - 2005/3
N2 - Cr-Ni-N composite films were deposited on 9Cr18 steel using multi-arc ion plating technology. The effect of N2 flux on the structure of the films was investigated. The phase compositions of the composite films were examined by means of X-ray diffraction. The tribological properties of the Cr-Ni-N composite films sliding against 9Cr18 steel in vacuum were investigated on a ball-on-disc test rig, using ion-plated Ni, Cr, and CrN films as the comparison. And the cross-section and worn surface morphologies of the composite films were observed using a scanning electron microscope. It was found that the composite films had much higher microhardness and much better wear resistance than the reference films deposited under the same conditions. The compositions and microstructures of the composite films were highly dependent on the N2 flux. Namely, mono ceramic phase CrN was generated in the composite film at a N2 flux of 7 sccm, while binary ceramic phases Ni3N and Cr2N were produced in the composite films at N2 flux of 15 sccm and 30 sccm. This accounted for the higher hardness and better wear resistance of the composite films prepared at larger N2 flux than the one prepared at a small N2 flux of 7 sccm. Moreover, the better mechanical and tribological properties of the Cr-Ni-N composite films than the ion-plated Ni, Cr, and CrN films were closely related to the nanocrystalline structures.
AB - Cr-Ni-N composite films were deposited on 9Cr18 steel using multi-arc ion plating technology. The effect of N2 flux on the structure of the films was investigated. The phase compositions of the composite films were examined by means of X-ray diffraction. The tribological properties of the Cr-Ni-N composite films sliding against 9Cr18 steel in vacuum were investigated on a ball-on-disc test rig, using ion-plated Ni, Cr, and CrN films as the comparison. And the cross-section and worn surface morphologies of the composite films were observed using a scanning electron microscope. It was found that the composite films had much higher microhardness and much better wear resistance than the reference films deposited under the same conditions. The compositions and microstructures of the composite films were highly dependent on the N2 flux. Namely, mono ceramic phase CrN was generated in the composite film at a N2 flux of 7 sccm, while binary ceramic phases Ni3N and Cr2N were produced in the composite films at N2 flux of 15 sccm and 30 sccm. This accounted for the higher hardness and better wear resistance of the composite films prepared at larger N2 flux than the one prepared at a small N2 flux of 7 sccm. Moreover, the better mechanical and tribological properties of the Cr-Ni-N composite films than the ion-plated Ni, Cr, and CrN films were closely related to the nanocrystalline structures.
KW - Cr-Ni-N composite films
KW - Friction and wear behavior
KW - Multi-arc ion-plating
UR - http://www.scopus.com/inward/record.url?scp=18744393740&partnerID=8YFLogxK
M3 - 文章
AN - SCOPUS:18744393740
SN - 1004-0595
VL - 25
SP - 131
EP - 134
JO - Mocaxue Xuebao/Tribology
JF - Mocaxue Xuebao/Tribology
IS - 2
ER -