Enhanced biomechanical performance of additively manufactured Ti-6Al-4V bone plates.
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P. Yarlagadda | S. Bahl | K. Chatterjee | S. Suwas | S. Gupta | S. Singamneni | Dhaval Kedaria | N. Shahidsha
[1] W. Lu,et al. Effect of material anisotropy on ultra-precision machining of Ti-6Al-4V alloy fabricated by selective laser melting , 2020 .
[2] S. Ringer,et al. Five-parameter characterization of intervariant boundaries in additively manufactured Ti-6Al-4V , 2020 .
[3] E. Adolfsson,et al. Controlling osteoblast morphology and proliferation via surface micro-topographies of implant biomaterials , 2020, Scientific Reports.
[4] Xiebin Wang,et al. Achieving Ti6Al4V alloys with both high strength and ductility via selective laser melting , 2019, Materials Science and Engineering: A.
[5] Congyuan Zeng,et al. Corrosion behavior of additively manufactured Ti-6Al-4V parts and the effect of post annealing , 2019, Additive Manufacturing.
[6] F. Toptan,et al. Corrosion and tribocorrosion behaviour of Ti6Al4V produced by selective laser melting and hot pressing in comparison with the commercial alloy , 2019, Journal of Materials Processing Technology.
[7] Y. Shin,et al. Additive manufacturing of Ti6Al4V alloy: A review , 2019, Materials & Design.
[8] Kaushik Chatterjee,et al. Globularization using heat treatment in additively manufactured Ti-6Al-4V for high strength and toughness , 2019, Acta Materialia.
[9] K. Chandran,et al. Powder metallurgy of titanium – past, present, and future , 2018 .
[10] Hongwei Feng,et al. Study on selective laser melting and heat treatment of Ti-6Al-4V alloy , 2018, Results in Physics.
[11] O. Prakash,et al. Micro-and meso-structures and their influence on mechanical properties of selectively laser melted Ti-6Al-4V , 2018, Acta Materialia.
[12] K. Mumtaz,et al. Processing Parameter Effects on Residual Stress and Mechanical Properties of Selective Laser Melted Ti6Al4V , 2018, Journal of Materials Engineering and Performance.
[13] Qingyan Xu,et al. Tensile behavior of Ti-6Al-4V alloy fabricated by selective laser melting: effects of microstructures and as-built surface quality , 2018, China Foundry.
[14] A. Kashani,et al. Additive manufacturing (3D printing): A review of materials, methods, applications and challenges , 2018, Composites Part B: Engineering.
[15] Xigen Zhou,et al. Role of martensite decomposition in tensile properties of selective laser melted Ti-6Al-4V , 2018 .
[16] S. Bahl,et al. Surface nanostructuring of titanium imparts multifunctional properties for orthopedic and cardiovascular applications , 2018 .
[17] Han Liu,et al. Biocompatibility of Bespoke 3D-Printed Titanium Alloy Plates for Treating Acetabular Fractures , 2018, BioMed research international.
[18] T. Becker,et al. Selective Laser Melting Produced Ti-6Al-4V: Post-Process Heat Treatments to Achieve Superior Tensile Properties , 2018, Materials.
[19] S. Bahl,et al. Controlled nanoscale precipitation to enhance the mechanical and biological performances of a metastable β Ti-Nb-Sn alloy for orthopedic applications , 2017 .
[20] Lai‐Chang Zhang,et al. Improved corrosion behaviour of electron beam melted Ti-6Al-4V alloy in phosphate buffered saline , 2017 .
[21] B. Piotrowski,et al. Mechanical stability of custom-made implants: Numerical study of anatomical device and low elastic Young's modulus alloy. , 2017, Materials science & engineering. C, Materials for biological applications.
[22] R. Dehoff,et al. Effects of heat treatments on microstructure and properties of Ti-6Al-4V ELI alloy fabricated by electron beam melting (EBM) , 2017 .
[23] Zemin Wang,et al. Formation and control of martensite in Ti-6Al-4V alloy produced by selective laser melting , 2016 .
[24] Galina Kasperovich,et al. Correlation between porosity and processing parameters in TiAl6V4 produced by selective laser melting , 2016 .
[25] Changkui Liu,et al. A Comparison of Biocompatibility of a Titanium Alloy Fabricated by Electron Beam Melting and Selective Laser Melting , 2016, PloS one.
[26] Yanjin Lu,et al. Microstructural evolution and microhardness of a selective-laser-melted Ti–6Al–4V alloy after post heat treatments , 2016 .
[27] Hazreen Harith,et al. A method for optimal fit of patient-specific fracture fixation plates , 2016 .
[28] Aleksandar Matic,et al. 3D printed Ti6Al4V implant surface promotes bone maturation and retains a higher density of less aged osteocytes at the bone-implant interface. , 2016, Acta biomaterialia.
[29] I. Yadroitsava,et al. Deformation Behavior and Microstructure of Ti6Al4V Manufactured by SLM , 2016 .
[30] Qimeng Chen,et al. Corrosion behavior of selective laser melted Ti-6Al-4 V alloy in NaCl solution , 2016 .
[31] S. Bahl,et al. Enhancing the mechanical and biological performance of a metallic biomaterial for orthopedic applications through changes in the surface oxide layer by nanocrystalline surface modification. , 2015, Nanoscale.
[32] Todd Palmer,et al. Anisotropic tensile behavior of Ti-6Al-4V components fabricated with directed energy deposition additive manufacturing , 2015 .
[33] Q. Chao,et al. Variant selection and intervariant crystallographic planes distribution in martensite in a Ti-6Al-4V alloy , 2014 .
[34] C. Tuck,et al. Effect of the build orientation on the mechanical properties and fracture modes of SLM Ti–6Al–4V , 2014 .
[35] William E. Frazier,et al. Metal Additive Manufacturing: A Review , 2014, Journal of Materials Engineering and Performance.
[36] Christopher Tuck,et al. On the Texture Formation of Selective Laser Melted Ti-6Al-4V , 2014, Metallurgical and Materials Transactions A.
[37] Moataz M. Attallah,et al. Microstructure and tensile properties of selectively laser-melted and of HIPed laser-melted Ti–6Al–4V , 2013 .
[38] J. Kruth,et al. Heat treatment of Ti6Al4V produced by Selective Laser Melting: Microstructure and mechanical properties , 2012 .
[39] R. G. Richards,et al. In search of an osteoblast cell model for in vitro research. , 2012, European cells & materials.
[40] M. Preuss,et al. Effect of β grain growth on variant selection and texture memory effect during α → β → α phase transformation in Ti-6 Al-4 v , 2012 .
[41] A. Singh,et al. Ti based biomaterials, the ultimate choice for orthopaedic implants – A review , 2009 .
[42] Anders Snis,et al. Electron beam-melted, free-form-fabricated titanium alloy implants: Material surface characterization and early bone response in rabbits. , 2008, Journal of biomedical materials research. Part B, Applied biomaterials.
[43] T. Srivatsan,et al. An investigation of microstructure, hardness, tensile behaviour of a titanium alloy: Role of orientation , 2008 .
[44] S. Kurtz,et al. Projections of primary and revision hip and knee arthroplasty in the United States from 2005 to 2030. , 2007, The Journal of bone and joint surgery. American volume.
[45] M. Starink,et al. Effect of self-accommodation on α/α boundary populations in pure titanium , 2003 .
[46] W. Sha,et al. Finite element modeling of the morphology of β to α phase transformation in Ti-6Al-4V alloy , 2002 .