Cellular lattices of biomedical Co-Cr-Mo-alloy fabricated by electron beam melting with the aid of shape optimization
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Akihiro Takezawa | Takahiko Kato | Yuichiro Koizumi | Akihiko Chiba | A. Takezawa | A. Chiba | Takahiko Kato | Arata Okazaki | Yuichiro Koizumi | Arata Okazaki
[1] W. Harris,et al. Biologic fixation of total hip implants. Insights gained from a series of canine studies. , 2004, The Journal of bone and joint surgery. American volume.
[2] Robert F. Singer,et al. Cellular Titanium by Selective Electron Beam Melting , 2007 .
[3] Mitsuo Niinomi,et al. Mechanical biocompatibilities of titanium alloys for biomedical applications. , 2008, Journal of the mechanical behavior of biomedical materials.
[4] Takashi Nakamura,et al. Bioactive Ti metal analogous to human cancellous bone: Fabrication by selective laser melting and chemical treatments. , 2011, Acta biomaterialia.
[5] M. Ashby,et al. Cellular solids: Structure & properties , 1988 .
[6] J. Banhart. Manufacture, characterisation and application of cellular metals and metal foams , 2001 .
[7] Yunping Li,et al. Role of strain-induced martensitic transformation on extrusion and intrusion formation during fatigue deformation of biomedical Co-Cr-Mo-N alloys , 2014 .
[8] Shigeru Aomura,et al. Topology Optimization for the Extruded Three Dimensional Structure with Constant Cross Section , 2004 .
[9] L. Murr,et al. Next-generation biomedical implants using additive manufacturing of complex, cellular and functional mesh arrays , 2010, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[10] L. Murr,et al. Open-Cellular Co-Base and Ni-Base Superalloys Fabricated by Electron Beam Melting , 2011, Materials.
[11] 小泉 雄一郎,et al. 電子ビーム積層造形によるCo–Cr–Mo 合金製ゼンマイばねの試作 , 2014 .
[12] Ole Sigmund,et al. Topology optimization: a tool for the tailoring of structures and materials , 2000, Philosophical Transactions of the Royal Society of London. Series A: Mathematical, Physical and Engineering Sciences.
[13] J. Zolésio,et al. Introduction to shape optimization : shape sensitivity analysis , 1992 .
[14] Di Wang,et al. An integrated approach of topology optimized design and selective laser melting process for titanium implants materials. , 2013, Bio-medical materials and engineering.
[15] L. Murr,et al. Metal Fabrication by Additive Manufacturing Using Laser and Electron Beam Melting Technologies , 2012 .
[16] Hideyuki Azegami,et al. Domain Optimization Analysis in Linear Elastic Problems : Approach Using Traction Method , 1996 .
[17] Yuichiro Koizumi,et al. Build direction dependence of microstructure and high-temperature tensile property of Co–Cr–Mo alloy fabricated by electron beam melting , 2014 .
[18] Robert F. Singer,et al. Selective Electron Beam Melting of Cellular Titanium: Mechanical Properties , 2008 .
[19] A. Chiba,et al. Enhanced Mechanical Properties of As-Forged Co-Cr-Mo-N Alloys with Ultrafine-Grained Structures , 2012, Metallurgical and Materials Transactions A.
[20] Shingo Kurosu,et al. Grain refinement of biomedical Co-27Cr-5Mo-0.16N alloy by reverse transformation , 2010 .
[21] Yuichiro Koizumi,et al. Phase and grain size inhomogeneity and their influences on creep behavior of Co–Cr–Mo alloy additive manufactured by electron beam melting , 2015 .
[22] 大洋 髙島,et al. 電子ビーム溶融(EBM)積層造形により作製されたCo-Cr-Mo 合金の造形位置が及ぼす組織への影響 , 2016 .
[23] H. Nakajima,et al. Biocompatibility of Lotus‐type Stainless Steel and Titanium in Alveolar Bone , 2006 .
[24] A Yánez,et al. Computational study and experimental validation of porous structures fabricated by electron beam melting: a challenge to avoid stress shielding. , 2014, Materials science & engineering. C, Materials for biological applications.
[25] Mitsuru Kitamura,et al. Structural topology optimization with strength and heat conduction constraints , 2014 .
[26] M. Bendsøe,et al. Generating optimal topologies in structural design using a homogenization method , 1988 .
[27] M. Bendsøe,et al. Topology Optimization: "Theory, Methods, And Applications" , 2011 .
[28] Atsushi Takaichi,et al. Microstructures and mechanical properties of Co-29Cr-6Mo alloy fabricated by selective laser melting process for dental applications. , 2013, Journal of the mechanical behavior of biomedical materials.
[29] M. Ashby,et al. The mechanics of three-dimensional cellular materials , 1982, Proceedings of the Royal Society of London. A. Mathematical and Physical Sciences.
[30] Albert C. To,et al. Efficient Design-Optimization of Variable-Density Hexagonal Cellular Structure by Additive Manufacturing: Theory and Validation , 2015 .
[31] Yadir Torres,et al. Processing and characterization of porous titanium for implants by using NaCl as space holder , 2012 .
[32] Chia-Ying Lin,et al. Structural and mechanical evaluations of a topology optimized titanium interbody fusion cage fabricated by selective laser melting process. , 2007, Journal of biomedical materials research. Part A.
[33] Ryan B. Wicker,et al. Next Generation Orthopaedic Implants by Additive Manufacturing Using Electron Beam Melting , 2012, International journal of biomaterials.
[34] H. Nakajima,et al. Fabrication of Porous Copper with Directional Pores through Thermal Decomposition of Compounds , 2008 .
[35] A. Chiba,et al. Asymmetric slip trace formation in tension/compression cyclic deformation of biomedical Co–Cr–Mo–N alloy with negative stacking fault energy , 2014 .
[36] Yunping Li,et al. Effect of Phase Transformation on Tensile Behavior of Co–Cr–Mo Alloy Fabricated by Electron-beam Melting , 2014 .
[37] R. Singer,et al. Cellular Ti-6Al-4V structures with interconnected macro porosity for bone implants fabricated by selective electron beam melting. , 2008, Acta biomaterialia.
[38] K. Hagihara,et al. Anomalous strengthening behavior of Co–Cr–Mo alloy single crystals for biomedical applications , 2016 .