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G Elssner

Publications and source records attributed to G Elssner.

4 recordsLinked to original sources

Investigation of Ti/Al2O3 joints with intermediate tantalum and niobium layers.

The microstructure of TiTa30 alloys diffusion bonded to a 99.7 wt% Al2O3 ceramic was subdivided into a reaction double layer containing the intermetallic phases TiAl and Ti3Al and the (alpha + beta) Ti microstructure. Excellent fracture toughness data of the TiTa30/Al2O3 joints of about 37 J/m2 were obtained after welding at 1200 degrees C for 1 h. The fracture energies of the joints were strongly dependent on the welding temperature which also influenced the thickness of the reaction double layer. The uptake of aluminium and oxygen into the reaction layer and the metal caused an embrittlement and decreased the yield stress and ductility of the metal. Introducing an Nb or Ta layer between pure Ti and Al2O3 before welding resulted in high fracture energies of 40 J/m2 for the Ti/Al2O3 joints. The thermal-induced stresses at the metal-ceramic interface were reduced by the occurrence of an Nb- or Ta-enriched region. The intermediate metal foils also decreased the O and Al uptake of the metal and therefore reduced the brittleness of the reaction zone and the adjacent metal. The thermal-induced stresses at the metal-ceramic interface caused a deflection of the crack into the ceramic during fracture mechanical testing in four-point bending.

Alloys

Microstructure and mechanical properties of Ti-Ta/alumina and Ti-Nb/alumina joints for dental implants.

The microstructure of Ti-Ta and Ti-Nb alloys diffusion bonded to a 99.7 wt% Al2O3 ceremic for dental implants is subdivided into a reaction double layer containing the phases TiAl and Ti3Al, a transition region of coarse alpha-Ti plates in beta-Ti, and the unaffected bulk metal, the alpha-Ti/beta-Ti structure of which can be refined by annealing at 800 degrees C for 1 hour after bonding. Optimized joints fabricated by diffusion bonding in a high vacuum at 1,200 degrees C from a 99.7 wt% Al2O3 ceramic and Ti-Ta alloys fitted in their thermal contraction behavior to that of the ceramic by the addition of 30 to 40 wt% Ta showed a fracture resistance of 2.3 MN/m3/2. Approximately 80% of the bend test specimens notched at the Ti-Ta/alumina interface failed by crack extension parallel to the interface within the ceramic, which is typical for a metal-ceramic bond of high to medium interfacial strength.

Aluminum Oxide