Powder metallurgy method was used to prepare copper alloy nanocomposites (CuZr/AlN) with high strength and conductivity. Optical microscopy, high-resolution transmission electron microscopy and other methods were ad...Powder metallurgy method was used to prepare copper alloy nanocomposites (CuZr/AlN) with high strength and conductivity. Optical microscopy, high-resolution transmission electron microscopy and other methods were adopted to study the impact of different sintering technologies on the structural and mechanical properties as well as the impact of solution and aging treatments on the mechanical properties of CuZr/AlN. The result shows that the specimen has a dense structure, and the size of the crystal grain is around 0.2 μm. The Brinell hardness of the specimen increases with the increase in re-pressing pressure and sintering temperature. The Brinell hardness of specimen also increases with the increase in zirconium content. However, above 0.5%(mass fraction) of zirconium content, the Brinell hardness of the nanocomposites is reduced. The buckling strength of the specimens increases with the increase in re-pressing pressure and sintering temperature. The buckling strength is the highest when the zirconium content is 0.5%. The Brinell hardness is lower after solution and aging treatments at 900 ℃. The Brinell hardness of the CuZr/AlN series specimen after the aging treatment at 500 ℃ or 600 ℃ increases. The specimen was also over aged at 700 ℃.展开更多
Porous Ti for the application in clinic orthopaedics field was manufactured by powder metallurgy technique using polymethyl methacrylate as the space holder under different sintering conditions.The final morphological...Porous Ti for the application in clinic orthopaedics field was manufactured by powder metallurgy technique using polymethyl methacrylate as the space holder under different sintering conditions.The final morphological features and mechanical properties were described.The results show that the increase of sintering temperature and time leads to improved grain size of porous Ti ligament and decreased pore size,with a concomitant increase of tensile strength and elastic modulus.The microstructure and mechanical properties of solid Ti depend more on the sintering temperature and time than those of porous Ti.The relative contributions of these mechanisms of porous Ti vary with the initial microstructure and oxygen content.展开更多
基金Project(KJ2013A227)supported by the Natural Science Research Key Projects of Anhui Provincial Universities,ChinaProject(51104051)supported by the National Natural Science Foundation of ChinaProject(11C26213401903)supported by Innovation Fund for Small and Medium Technology Based Firms,China
文摘Powder metallurgy method was used to prepare copper alloy nanocomposites (CuZr/AlN) with high strength and conductivity. Optical microscopy, high-resolution transmission electron microscopy and other methods were adopted to study the impact of different sintering technologies on the structural and mechanical properties as well as the impact of solution and aging treatments on the mechanical properties of CuZr/AlN. The result shows that the specimen has a dense structure, and the size of the crystal grain is around 0.2 μm. The Brinell hardness of the specimen increases with the increase in re-pressing pressure and sintering temperature. The Brinell hardness of specimen also increases with the increase in zirconium content. However, above 0.5%(mass fraction) of zirconium content, the Brinell hardness of the nanocomposites is reduced. The buckling strength of the specimens increases with the increase in re-pressing pressure and sintering temperature. The buckling strength is the highest when the zirconium content is 0.5%. The Brinell hardness is lower after solution and aging treatments at 900 ℃. The Brinell hardness of the CuZr/AlN series specimen after the aging treatment at 500 ℃ or 600 ℃ increases. The specimen was also over aged at 700 ℃.
基金Project(L2014176)supported by the Education Office of Liaoning Province,China
文摘Porous Ti for the application in clinic orthopaedics field was manufactured by powder metallurgy technique using polymethyl methacrylate as the space holder under different sintering conditions.The final morphological features and mechanical properties were described.The results show that the increase of sintering temperature and time leads to improved grain size of porous Ti ligament and decreased pore size,with a concomitant increase of tensile strength and elastic modulus.The microstructure and mechanical properties of solid Ti depend more on the sintering temperature and time than those of porous Ti.The relative contributions of these mechanisms of porous Ti vary with the initial microstructure and oxygen content.