1J.B. Park: in The Biomedical Engineering Handbook Volume 1, J. D.Bronzino, ed, CRC Press LLC, Boca Raton, FL, 2000, pp. IV-1- IV-8.
2Xiao S J, Kenausis G, Textor M. Biochemical modification of tit- anium surfaces. In: Brunette DM, Tengvall P, Textor M, Thomsen P, eds. Titanium in medicine. Berlin Heidelberg New York: Springer, 2001 : 417-455.
3McGovern TE, Black J, Jacobs J J, et al. In vivo wear of Ti-6A1-4V femoral heads: a retrieval study[J]. J Biomed Mater Res, 1996, 32: 447-457.
4Ganesh VK, Ramakrishna K, Ghista DN. Biomechanics of bone- fracture fixation by stiffness-graded plates in comparison with sta- inless-steel plates[J]. Biomed Eng Online, 2005, 4: 46.
5Atkinson JR, Jobbins B. Properties of engineering materials for use in the body. In: Dowson D, Wright V, eds. Introduction to the bio- mechanics of joints and joint replacement. London: Mechanical Engineering Publication. 1981.
6Jarcho J J, Gilbert JL, Urban RM. Corrosion of metal orthopaedic implants[J]. J Bone Joint Surg, 1998, 8OA: 268-282.
8Ganesh VK, Ramakrishna K, Ghista DN. Biomechanics of bone- fracture fixation by stiffness-graded plates in comparison with sta- inless-steel plates. Biomed Eng Online, 2005, 4: 46.
9Marti A. Cobalt-base alloys used in bone surgery[J]. Injury Int J Care Injured, 2000, 31: 18-21.
10Peterson CD, Hillberry BM, Heck DA. Component wear of total knee prostheses using Ti-6Al-4V, titanium nitride coated Ti-6Al-4V, and cobalt-chromium-molybdenum femoral compon- ents[J]. J Biomed Mater Res, 1988, 22: 887-903.