Systems. Methods. Technologies 4(36) 2017

Системы Методы Технологии . В . Ю . Скиба и др . Анализ напряженно - деформированного … 2017 № 4 (36) с . 93-102 101 34. Saurabh Samadhiya, Amit Yadav, Dr. B.R Rawal. Biome- chanical analysis of different knee prosthesis biomaterials using fem // IOSR Journal of Mechanical and Civil Engineering. 2014. Vol. 11. P. 120-128. 35. Sidambe A.T. Biocompatibility of Advanced Manufac- tured Titanium Implants—A Review // Materials. 2014. Vol. 7. P. 8168-8188. 36. BomBa č D., Brojan M., Fajfar P., Kosel F., Turk R. Re- view of materials in medical applications // RMZ – Materials and Geoenvironment. 2007. Vol. 54, № 4. P. 471–499. 37. Elias C.N., Lima J.H.C., Valiev R., Meyers M.A. Biomed- ical applications of titanium and its alloys // The Journal of The Minerals, Metals & Materials Society (TMS). 2008. Vol. 60. P. 46–49. 38. Mueller E., Kammula R., Marlowe D. Regulation of “Biomaterials” and Medical Devices // MRS Bull. 1991. Vol. 16. P. 39–41. 39. Oldani C., Dominguez A. Titanium as a Biomaterial for Implants. Recent Advances in Arthroplasty, Dr. Samo Fokter (Ed.), InTech. 2012. P. 149-163. 40. Saini M., Singh Y., Arora P., Arora V., Jain K. Implant biomaterials: A comprehensive review // World Journal of Clini- cal Cases. 2015. Vol. 3. P. 52–57. References 1. Andriacchi T.P., Kramer C.M., Landon G.C. Three- dimensional coordinate data processing in human motion analysis // Journal of Biomechanical Engineering. 1979. Vol. 101. P. 279-283. 2. Grood E.S., Suntay W.J. A coordinate system for clinical de- scription of three dimensional motion: Application to the knee // Journal of Biomechanical Engineering. 1983. Vol. 105. P. 136-144. 3. Kroemer K.H., Marras W.S., McGlothin J.D. On the mea- surements of human strength // International Journal of Industrial Ergonomics. 1990. V0l. 6. P. 199-210. 4. Özkaya N., Nordin M., Goldsheyder D., Leger D. Funda- mentals of Biomechanics: Equilibrium, Motion, and Deformation. 3rd ed. Springer-Verlag New York, 2012. 275 p. 5. Özkaya N., Leger D., Goldsheyder D., Nordin M. Funda- mentals of Biomechanics: Equilibrium, Motion, and Deformation. 4th ed. Springer International Publishing. 2016. 454 p. 6. Lamareaux L. Kinematic measurements in the study of hu- man walking // Biomechanics Lab. University of California. San Francisco. Bull Prosthetic Res, Sp. 1971. P. 10-15. 7. Murray M.P., Drought A.B., Kory R.C. Walking patterns of normal men // The Journal of Bone and Joint Surgery. 1964. Vol. 46A. P. 335. 8. Levens A.S., Inman V.T., Blosser J.A. Transverse rotation of she segments of the lower extremity in locomotion // The Journal of Bone and Joint Surgery. 1948. Vol. 30A. P. 859. 9. Kettelkamp D.B., Johnson R.J., Smidt G.L., Chao E.Y., Walker M. An electrogoniometric study of knee motion in normal gait // The Journal of Bone and Joint Surgery. 1970. 52 A. P. 775. 10. Holden J.P., Chou G., Stanhope S.J. Changes in knee joint function over a wide range of walking speeds // Clinical Biome- chanics. 1997. Vol. 12. P. 375-382. 11. Holden J.P., Chou G., Stanhope S.J. Interpreting joint ki- netic data: effects of walking speed and measurement variation // Gait & Posture. 1996. Vol. 4. P. 168-169. 12. Matsumoto H., Seedhom B.B., Suda Y., Otani T., Fujika- wa K. Axis location of tibial rotation and its change with flexion angle // Clinical Orthopaedics and Related Research. 2000. Vol. 371. P. 178-182. 13. Hehne H.J. Biomechanics of the patellofemoral joint and its clinical relevance // Clinical Orthopaedics and Related Re- search. 1990. Vol. 258. P. 73-85. 14. Fukuda Y., Takai S., Yoshino N. Impact load transmission of the knee joint - influence of leg alignment and the role of me- niscus and articular cartilage // Clinical Biomechanics. 2000. Vol. 15. P. 516-521. 15. GOST R ISO 14243-1-2012. Implants for surgery. Wear of total knee-joint prostheses. Part 1. Loading and displacement parameters for wear-testing machines with load control and cor- responding environmental conditions for test. Vved. 2013-06-01. M.: Standartinform, 2013. 20 p. 16. GOST R ISO 14243-2-2012. Implants for surgery. Wear of total knee-joint prostheses. Part 2. Methods of measurement. Vved. 2013-06-01. M.: Standartinform, 2013. 8 p. 17. GOST R ISO 14243-3-2012. Implants for surgery. Wear of total knee-joint prostheses. Part 3. Loading and displacement parameters for wear-testing machines with displacement control and corresponding environmental conditions for test. Vved. 2013- 06-01. M.: Standartinform, 2013. 18 p. 18. GOST R ISO 7207-1-2005. Implants for surgery. Femoral and tibial components for partial and total knee joint prostheses. Part 1. Classification, definitions and designation of dimensions. Vved. 2006-07-01. M.: Standartinform, 2005. 11 p. 19. GOST R ISO 7207-2-2005. Implants for surgery. Compo- nents for partial and total knee joint prostheses. Part 2. Articulat- ing surfaces made of metal, ceramic and plastics materials. Vved. 2006-07-01. M.: Standartinform, 2005. 4 p. 20. GOST R ISO 21536-2013. Non-active surgical implants. Joint replacement implants. Specific requirements for knee-joint replacement implants. Vved. 2014-11-01. M.: Standartinform, 2014. 12 p. 21. GOST R ISO 14879-1-2013. Implants for surgery. Total knee-joint prostheses. Part 1. Determination of endurance proper- ties of knee-tibial trays. Vved. 2015-01-01. M.: Standartinform, 2014. 12 p. 22. Makinejad Majid Davoodi, Abu Osman Noor Azuan, Wan Abas Wan Abu Bakar, Bayat Mehdi. Preliminary analysis of knee stress in Full Extension Landing // Clinics. 2013. Vol. 68, № 9. P. 1180-1188. 23. Zishun Liu. Biomechanical Behavior of the Knee Joint Using ANSYS // Journal of medicine and life. 2014. Vol. 2. P. 85-94. 24. Martin Kub´ıˇcek, Zdenˇek Florian. Stress strain analysis of knee joint // Engineering mechanics. 2009. Vol. 16, № 5. P. 315-322. 25. Kumbhalkar M.A., Nawghare U., Ghode R., Deshmukh Y. Armarkar B. Modeling and Finite Element Analysis of Knee Prosthesis with and without Implant // Universal Journal of Com- putational Mathematics. 2013. Vol. 1. P. 56-66. 26. Carter C.B., Grant M.N. Ceramic Materials. 2nd ed. Springer-Verlag New York. 2013. 766 p. 27. Hsu-Wei Fang, Stephen M. Hsu, Jan V. Sengers Ultra- High Molecular Weight Polyethylene. Wear Particle Effects on Bioactivity. Natl. Inst. Stand. Technol. Spec. Publ. 1002. U.S. government printing office: Washington. 2003. 277 p. 28. Lyle D. Zardiackas, Matthew J. Kraay, Howard L. Freese Titanium, niobium, zirconium, and tantalum for medical and sur- gical applications. ASTM Stock Number: STP1471. 2005. 266 p. 29. Teoh S.H. Fatigue of biomaterials: a review // Internation- al Journal of Fatigue. 2000. Vol. 22. P. 825-837. 30. Yuan Bao-guo, Li Chun-feng, Yu Hai-ping, Sun Dong-li Effect of hydrogen content and stress state on room-temperature mechanical properties of Ti-6Al-4V alloy // Transactions of Non- ferrous Metals Society of China. 2009. Vol. 19. P. 423-428. 31. Glazunov S.G., Moiseev V.N. Titanium alloys. Structural titanium alloys. M.: Metallurgiya, 1974. 368 p. 32. Il'in A.A., Kolachev B.A., Pol'kin I.S. Titanium alloys. Composition, structure, properties: monogr. M.: VILS-MATI, 2009. 520 p. 33. Mohamed N. Rahaman, Aihua Yao, B. Sonny Bal, Jona- than P. Garino, Michael D. Ries. Ceramics for Prosthetic Hip and Knee Joint Replacement // Journal of the American Ceramic So- ciety. 2007. Vol. 90. P. 1965-1988.

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