Fabrication of low elastic modulus Ti50Nb30HA20 alloy by rapid microwave sintering technique for biomedical applications
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M. Mittal | H. Kumar | Sunpreet Singh | C. Prakash | Shubham Sharma | Gursharan Singh | Jujhar Singh | Munish Mehta
[1] B. S. Pabla,et al. Synthesis, characterization, corrosion and bioactivity investigation of nano-HA coating deposited on biodegradable Mg-Zn-Mn alloy , 2018, Surface and Coatings Technology.
[2] C. Torres-Sánchez,et al. Porosity and pore size effect on the properties of sintered Ti35Nb4Sn alloy scaffolds and their suitability for tissue engineering applications , 2018 .
[3] Y. Q. Zhang,et al. Rapidly sintering of interconnected porous Ti-HA biocomposite with high strength and enhanced bioactivity. , 2016, Materials science & engineering. C, Materials for biological applications.
[4] B. S. Pabla,et al. Electric discharge machining – A potential choice for surface modification of metallic implants for orthopedic applications: A review , 2016 .
[5] Chak Yin Tang,et al. Microwave assisted-in situ synthesis of porous titanium/calcium phosphate composites and their in vitro apatite-forming capability , 2015 .
[6] N. Muhamad,et al. Effects of binder system and processing parameters on formability of porous Ti/HA composite through powder injection molding , 2015 .
[7] Yufeng Zheng,et al. Effect of pore sizes on the microstructure and properties of the biomedical porous NiTi alloys prepared by microwave sintering , 2015 .
[8] A. Tamayol,et al. Characterization of Ti-HA composite fabricated by mechanical alloying , 2015 .
[9] Chi Tak Wong,et al. In vitro and in vivo performance of bioactive Ti6Al4V/TiC/HA implants fabricated by a rapid microwave sintering technique. , 2014, Materials science & engineering. C, Materials for biological applications.
[10] C. Tang,et al. Effect of Porosity on Compressive Yield Strength of Microwave Sintered Titanium Components , 2014 .
[11] T. M. Yue,et al. In situ formation of Ti alloy/TiC porous composites by rapid microwave sintering of Ti6Al4V/MWCNTs powder , 2013 .
[12] D. Agrawal,et al. Effect of sintering temperature and heating mode on consolidation of Al–7Zn–2·5Mg–1Cu aluminum alloy , 2012, Bulletin of Materials Science.
[13] Morteza Oghbaei,et al. Microwave versus Conventional Sintering: A Review of Fundamentals, Advantages and Applications , 2010 .
[14] D. Agrawal,et al. Microwave Sintering of Refractory Metals/alloys: W, Mo, Re, W-Cu, W-Ni-Cu and W-Ni-Fe Alloys , 2010, The Journal of microwave power and electromagnetic energy : a publication of the International Microwave Power Institute.
[15] D. Agrawal,et al. Microwave Sintering of W-18Cu and W-7Ni-3Cu Alloys , 2008, The Journal of microwave power and electromagnetic energy : a publication of the International Microwave Power Institute.
[16] Abhay Pandit,et al. Fabrication methods of porous metals for use in orthopaedic applications. , 2006, Biomaterials.
[17] B. C. Wang,et al. In vitro and in vivo mechanical evaluations of plasma-sprayed hydroxyapatite coatings on titanium implants: the effect of coating characteristics. , 1997, Journal of biomedical materials research.
[18] D. Wilkinson,et al. Microstructural characterization of a microwave-sintered silicon nitride based ceramic , 1995 .