Wear Characteristics of Metallic Biomaterials: A Review
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Abdul Samad Mohammed | A. Mohammed | N. Al-Aqeeli | M. Hussein | Mohamed A. Hussein | Naser Al-Aqeeli
[1] G. V. Rao,et al. Development of titanium based biocomposite by powder metallurgy processing with in situ forming of Ca-P phases , 2007 .
[2] S. Gialanella,et al. Phase composition and wear behavior of NiTi alloys , 2008 .
[3] L. Mohan,et al. Wear and corrosion behavior of oxygen implanted biomedical titanium alloy Ti-13Nb-13Zr , 2013 .
[4] R. Maldonado,et al. Biomechanics of Hip and Knee Prostheses 1 , 2006 .
[5] A. Barfeie,et al. Implant surface characteristics and their effect on osseointegration , 2015, BDJ.
[6] Bikramjit Basu,et al. Tribological Behaviour of Ti-Based Alloys in Simulated Body Fluid Solution at Fretting Contacts , 2004 .
[7] W. Evans,et al. Titanium Alloys for Biomedical Applications , 1989 .
[8] W. Bonfield,et al. Anisotropy of the Young's modulus of bone , 1977, Nature.
[9] N. Jennett,et al. Application of a modified slip-distance theory to the indentation of single-crystal and polycrystalline copper to model the interactions between indentation size and structure size effects , 2012 .
[10] Yuyong Chen,et al. Microstructure, mechanical properties and dry wear resistance of β-type Ti–15Mo–xNb alloys for biomedical applications , 2013 .
[11] G. Krállics,et al. Application of bulk nanostructured materials in medicine , 2006 .
[12] B. Bhushan. Nanotribology, nanomechanics and nanomaterials characterization , 2008, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[13] M. Wimmer,et al. The tribological difference between biomedical steels and CoCrMo-alloys. , 2012, Journal of the mechanical behavior of biomedical materials.
[14] R. Cohen,et al. Tooth wear: attrition, erosion, and abrasion. , 2003, Quintessence international.
[15] S. Suwas,et al. Effect of equal channel angular extrusion on wear and corrosion behavior of the orthopedic Ti–13Nb–13Zr alloy in simulated body fluid , 2012 .
[16] A. Haseeb,et al. Response of Ti–6Al–4V and Ti–24Al–11Nb alloys to dry sliding wear against hardened steel , 2002 .
[17] J. Katz. Anisotropy of Young's modulus of bone , 1980, Nature.
[18] W A Smith,et al. The Analysis, Design, and Testing of a Blood Lubricated Hydrodynamic Journal Bearing , 1997, ASAIO journal.
[19] B. Beake,et al. Comparison of nano-f`retting and nano-scratch tests on biomedical materials , 2013 .
[20] T. Glant,et al. Lymphocyte responses in patients with total hip arthroplasty , 2005, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[21] Swee Hin Teoh,et al. Fatigue of biomaterials: a review , 2000 .
[22] Buddy D. Ratner,et al. Biomaterials Science: An Introduction to Materials in Medicine , 1996 .
[23] N. Nomura,et al. Pin-on-disk wear behavior in a like-on-like configuration in a biological environment of high carbon cast and low carbon forged Co–29Cr–6Mo alloys , 2007 .
[24] M. Babić,et al. Tribological Behaviour of Orthopaedic Ti-13Nb-13Zr and Ti-6Al-4V Alloys , 2010 .
[25] T. Albrektsson,et al. Implant Surfaces and their Biological and Clinical Impact , 2015 .
[26] D. Watts,et al. Concise encyclopedia of medical and dental materials , 1993 .
[27] N. Patel,et al. A Review on Biomaterials : Scope , Applications & Human Anatomy Significance , 2012 .
[28] Yoshimitsu Okazaki,et al. Comparison of metal release from various metallic biomaterials in vitro. , 2005, Biomaterials.
[29] A. Bushby,et al. Study of the interaction between the indentation size effect and Hall–Petch effect with spherical indenters on annealed polycrystalline copper , 2008 .
[30] Soumya Nag,et al. Microstructural evolution and strengthening mechanisms in Ti–Nb–Zr–Ta, Ti–Mo–Zr–Fe and Ti–15Mo biocompatible alloys , 2005 .
[31] G. Goch,et al. The Design and Manufacture of Biomedical Surfaces , 2007 .
[32] B. Shahgaldi,et al. Wear and corrosion of sliding counterparts of stainless-steel hip screw-plates. , 2000, Injury.
[33] S. Qu,et al. New Developments of Ti-Based Alloys for Biomedical Applications , 2014, Materials.
[34] Yong Sun,et al. Tribocorrosion behavior of S-phase surface engineered medical grade Co–Cr alloy , 2013 .
[35] James A. Norris,et al. An introduction to tribology. , 2008, Journal of surgical orthopaedic advances.
[36] R. Baan,et al. Evaluation of the carcinogenic risks to humans associated with surgical implants and other foreign bodies - a report of an IARC Monographs Programme Meeting. International Agency for Research on Cancer. , 2000, European journal of cancer.
[37] C. Turssi,et al. Wear of dental resin composites: insights into underlying processes and assessment methods--a review. , 2003, Journal of biomedical materials research. Part B, Applied biomaterials.
[38] Mitsuo Niinomi,et al. Recent metallic materials for biomedical applications , 2002 .
[39] Iduvirges Lourdes Muller,et al. Tribological, electrochemical and tribo-electrochemical characterization of bare and nitrided Ti6Al4V in simulated body fluid solution. , 2011 .
[40] Konda Gokuldoss Prashanth,et al. Comparison of wear properties of commercially pure titanium prepared by selective laser melting and casting processes , 2015 .
[41] F. F. Cardoso,et al. Mechanical, physical, and chemical characterization of Ti–35Nb–5Zr and Ti–35Nb–10Zr casting alloys , 2009, Journal of materials science. Materials in medicine.
[42] M. B. Bever,et al. Concise encyclopedia of medical & dental materials , 1990 .
[43] S. Mischler,et al. Effect of the environment on wear ranking and corrosion of biomedical CoCrMo alloys , 2011, Journal of materials science. Materials in medicine.
[44] L Cristofolini,et al. Large-sliding contact elements accurately predict levels of bone-implant micromotion relevant to osseointegration. , 2000, Journal of biomechanics.
[45] Andrew J. Bushby,et al. On the indentation size effect in spherical indentation , 2006 .
[46] P. Branemark. Osseointegration and its experimental background. , 1983, The Journal of prosthetic dentistry.
[47] Zhengxiao Guo,et al. Wear characteristics of Ti–Nb–Ta–Zr and Ti–6Al–4V alloys for biomedical applications , 2004 .
[48] N. D. Pandey,et al. Studies on the corrosion and wear behavior of the laser nitrided biomedical titanium and its alloys , 2010 .
[49] C. Díaz,et al. Improved bio-tribology of biomedical alloys by ion implantation techniques , 2009 .
[50] M. Hernandez-Rodriguez,et al. A study of the wear performance in a hip simulator of a metal–metal Co–Cr alloy with different boron additions , 2013 .
[51] V. Stolyarov,et al. Reduction of friction coefficient of ultrafine-grained CP titanium , 2004 .
[52] A. Singh,et al. Ti based biomaterials, the ultimate choice for orthopaedic implants – A review , 2009 .
[53] M. Niinomi. Metallic biomaterials , 2008, Journal of Artificial Organs.
[54] K. Jurczyk,et al. THE SYNTHESIS OF TITANIUM ALLOYS FOR BIOMEDICAL APPLICATIONS , 2008 .
[55] K. Komvopoulos,et al. Friction and Wear of Hemiarthroplasty Biomaterials in Reciprocating Sliding Contact With Articular Cartilage , 2011 .
[56] A. Ferguson,et al. Tissue reaction in rabbit muscle exposed to metallic implants. , 1967, Journal of biomedical materials research.
[57] S. Petroni,et al. Production of Ti–13Nb–13Zr alloy for surgical implants by powder metallurgy , 2010 .
[58] Akira Iwabuchi,et al. Synergistic effect of fretting wear and sliding wear of Co-alloy and Ti-alloy in Hanks’ solution , 2007 .
[59] R. Sivamani,et al. Coefficient of friction: tribological studies in man – an overview , 2003, Skin research and technology : official journal of International Society for Bioengineering and the Skin (ISBS) [and] International Society for Digital Imaging of Skin (ISDIS) [and] International Society for Skin Imaging.
[60] M. Lavine,et al. Biomaterials. Introduction. , 2012, Science.
[61] L. Napolitano. Materials , 1984, Science.
[62] Micro-abrasion mechanisms of cast CoCrMo in simulated body fluids , 2009 .