[1]
N. Kurgan, R. Varol, Mechanical properties of P/M 316L stainless steel materials, Powder Technology, 201 (2010) 242–247.
DOI: 10.1016/j.powtec.2010.03.041
Google Scholar
[2]
M.M. Dewidar, K.A. Khalil, J.K. Lim, Processing and mechanical properties of porous 316L stainless steel for biomedical applications, Transactions of Nonferrous Metals Society of China, I7 (2007) 468-473.
DOI: 10.1016/s1003-6326(07)60117-4
Google Scholar
[3]
S. Li, B. Huang B, Y. Li, Effects of sintering atmosphere on the microstructure and mechanical property of sintered 316L stainless steel, J. Cent. South Univ. Technol. 10 (2003) 1-6.
DOI: 10.1007/s11771-003-0061-3
Google Scholar
[4]
P. Beiss, M. Dalgic, Structure property relationships in porous sintered steel, Materials Chemistry and Physics, 67 (2001) 37–42.
DOI: 10.1016/s0254-0584(00)00417-x
Google Scholar
[5]
N. Chawla, X. Deng, Microstructure and mechanical behavior of porous sintered steel, Mat. Sci. Eng., A 390 (2005) 98–112.
Google Scholar
[6]
M. Grądzka-Dahlke, J.R. Dąbrowski, B. Dąbrowski, Characteristic of the porous 316 stainless steel for the friction element of prosthetic joint, Wear, 263 (2007) 1023–1029.
DOI: 10.1016/j.wear.2007.01.119
Google Scholar
[7]
M.M. Dewidar, H. Yoon, J.K. Lim, Mechanical Properties of Metals for Biomedical Applications Using Powder Metallurgy Process: A Review, Metals and Materials, 12 (2006) 193-206.
DOI: 10.1007/bf03027531
Google Scholar
[8]
K.V. Sudhakar, Fatigue behavior of a high density powder metallurgy steel, Int. J. Fatigue, 22 (2000) 729–734.
DOI: 10.1016/s0142-1123(00)00067-0
Google Scholar
[9]
W. Lee, C. Chiu, Deformation and fracture behavior of 316L sintered stainless steel under various strain rate and relative sintered density conditions, Metallurgical and Materials Transactions, 37 A (2006) 3685-3696.
DOI: 10.1007/s11661-006-1062-2
Google Scholar