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Eingeladener Vortrag
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Thermally sprayed TiO2-x coatings under mixed lubrication and unlubricated sliding conditions
(2004)
Two new substoichiometric titania (TiOx) coatings designated for cylinder liner application were deposited on specimen of grey cast iron GG20HCN with high carbon content by plasma spraying. First, a TinO2n-1 coating was prepared by atmospheric plasma spraying (APS) using a sintered and agglomerated Magnéli-type spray powder. Second a TiO1.95-x coating was deposited with a vacuum plasma spray (VPS) process using a commercial, fused and crushed TiO1.95 powder. The tribological behaviour of these coatings under lubricated conditions was compared with uncoated specimen of this grey cast iron. As counter bodies a widespread used APS-sprayed Mo-NiCrBSi piston ring coating (MKP81A®), an advanced HVOF-sprayed WC/Cr3C2-based (MKJet502®) ring coating as well as non-commercial prototype APS-sprayed TinO2n-1 and APS-sprayed (Ti,Mo)(C,N) + 23NiMo (TM23-1) coatings were tribotested.
The interaction of the pairs with prototype engine oils based on esters and polyglycols were studied under mixed/boundary lubrication using the BAM test method. Lubricants were factory fill engine oils, ester-containing lubricants with low-SAP (sulphurashphosphor) and/or bio-no-tox properties as well as polyglycole-based lubricants. The ester and polyglycole-based engine oils respond both to bio-no-tox criteria and are polymer-free. They follow different strategies to reduce zinc, phosphorus and sulphur to assure a low ash content.
Both TiOx coatings designated for cylinder liners meet or exceed the wear resistance of the grey cast iron with high carbon content when paired with APS-sprayed TinO2n-1 or Mo-NiCrBSi piston ring coatings. Overall, in nearly all pairs the wear rates of the APS TinO2n-1 coating were lower than those of the VPS TiO1.95-x coating.
In order to characterize the tribological behaviour under oil-off, dry-running conditions, additional tests were performed under unlubricated unidirectional sliding conditions at 22 and 400 °C for a sliding speed of 1 m/s against sintered polycrystalline Al2O3 as stationary specimen.
In the current study, the tribological properties of TiC-based coatings paired with polycrystalline alumina under unlubricated sliding conditions were investigated in order to demonstrate the technological and engineering potential of such coatings. (Ti,Mo)(C,N)-Co coatings were prepared from an agglomerated and sintered spray powder by HVOF spraying using JP-5000 equipment. Cr3C2-NiCr coatings were studied for comparison. Sliding wear tests were performed over the temperature range from 23°C to 800°C with sliding speeds in the range 0.3-3 m/s, a wear distance of 5000 m and a normal force of 10 N. Wear rates of coatings and sintered alumina counterparts were measured separately. Compared with Cr3C2-NiCr coatings, (Ti,Mo)(C,N)-Co coatings showed significantly lower total wear rates, corresponding to those found in the region of mixed/boundary lubrication. With few exceptions, the coefficients of friction were found to be lower for (Ti,Mo)(C,N)-Co coatings than for Cr3C2-NiCr coatings. After tests were performed, the coating microstructures were studied by optical microscopy and SEM. The oxide scales formed on the coating surfaces were investigated by SEM and X-ray diffraction. Comparison of the total wear rates of the couples consisting of sintered alumina and a (Ti,Mo)(C,N)-Co coating with those of other alumina-ceramic and hardmetal-hard metal tribological systems demonstrates the immense potential of TiC-based coatings for sliding wear applications.
Die Zusammensetzung WC-(W,Cr)2C-7%Ni gehört zu den kommerziell verfügbaren Standardzusammensetzungen für Hartmetallspritzpulver und -schichten. Abweichend davon wird sie mit unterschiedlichen Bezeichnungen wie WC-CrC-Ni, WC-Cr3C2-Ni oder WC-NiCr gehandelt. In diesem Beitrag werden die spezifischen Mikrostrukturen und Phasenzusammensetzungen der Beschichtungspulver und der HVOF-gespritzten Schichten vorgestellt. Das besondere Anliegen ist es, dass noch unbekannte Potenzial dieser Zusammensetzung, ihre außerordentliche Oxidationsstabilität und das günstige Verhalten im ungeschmierten Reib-/Gleitverschleiß aufzuzeigen. Diese Eigenschaften werden mit denen von WC-10%Co-4%Cr-Schichten verglichen. Da seit dem Zeitpunkt der Entwicklung der Zusammensetzung 50 Jahre verstrichen sind, kann davon ausgegangen werden, dass sie bei weitem nicht optimal auf die uns heute zur Verfügung stehende Anlagentechnik abgestimmt ist. Somit ist der Impuls für weitere Verbesserungen und neue Anwendungen gegeben.
The composition WC-(W,Cr)2C-7%Ni is a standard commercially available composition for hardmetal feedstock powders and coatings, but it is sold under a variety of designations including WC-'CrC'-Ni, WC-Cr3C2-Ni and WC-NiCr. In this paper the specific microstructures and phase compositions of the feedstock powder and the HVOF-sprayed coatings are presented with a view to shedding light on the still-unknown application potential of this composition as well as its extraordinary oxidation resistance and advantageous behaviour in dry sliding conditions. These properties are compared with those of WC-10%Co-4%Cr coatings. As 50 years have passed since it was developed, this composition can well be said to be far from optimal for todays HVOF equipment. There is hence room for improvement as well as for new applications.
WC-(W,Cr)2C-Ni - die unbekannte Hartmetallschicht / WC-(W,Cr)2C-Ni - the unknown hardmetal coating
(2008)
Die Zusammensetzung WC-(W,Cr)2C-7%Ni gehört zu den kommerziell verfügbaren Standardzusammensetzungen für Hartmetallspritzpulver und -schichten. Abweichend davon wird sie mit unterschiedlichen Bezeichnungen wie WC-'CrC'-Ni, WC-Cr3C2-Ni oder WC-NiCr gehandelt. In diesem Beitrag werden die spezifischen Mikrostrukturen und Phasenzusammensetzungen der Beschichtungspulver und der HVOF-gespritzten Schichten vorgestellt. Das besondere Anliegen ist es, dass noch unbekannte Potenzial dieser Zusammensetzung, ihre außerordentliche Oxidationsstabilität und das günstige Verhalten im ungeschmierten Reib-/Gleitverschleiß aufzuzeigen. Diese Eigenschaften werden mit denen von WC-10%Co-4%Cr-Schichten verglichen. Da seit dem Zeitpunkt der Entwicklung der Zusammensetzung 50 Jahre verstrichen sind, kann davon ausgegangen werden, dass sie bei weitem nicht optimal auf die uns heute zur Verfügung stehende Anlagentechnik abgestimmt ist. Somit ist der Impuls für weitere Verbesserungen und neue Anwendungen gegeben. --------------------------------------------------------------------------------------------------------------------------------------------------------------------------------
The composition WC-(W,Cr)2C-7%Ni is a standard commercially available composition for hardmetal feedstock powders and coatings, but it is sold under a variety of designations including WC-'CrC'-Ni, WC-Cr3C2-Ni and WC-NiCr. In this paper the specific microstructures and phase compositions of the feedstock powder and the HVOF-sprayed coatings are presented with a view to shedding light on the still-unknown application potential of this composition as well as its extraordinary oxidation resistance and advantageous behaviour in dry sliding conditions. These properties are compared with those of WC-10%Co-4%Cr coatings. As 50 years have passed since it was developed, this composition can well be said to be far from optimal for todays HVOF equipment. There is hence room for improvement as well as for new applications.