Excellent Compression Strength and Energy Absorption of Additively Manufactured Porous Titanium with Trapezo-Rhombic Dodecahedron Cell
暂无分享,去创建一个
[1] A. Karmakar,et al. Biomedical Porous Scaffold Fabrication Using Additive Manufacturing Technique: Porosity, Surface Roughness and Process Parameters Optimization , 2022, International Journal of Lightweight Materials and Manufacture.
[2] C. Bellini,et al. Titanium lattice structures manufactured by EBM process: effect of skin material on bending characteristics , 2021, Engineering Fracture Mechanics.
[3] Shiyue Guo,et al. Anisotropic Compression Behavior of Additively Manufactured Porous Titanium with Ordered Open-Cell Structures at Different Temperatures , 2021, MATERIALS TRANSACTIONS.
[4] Tatsuya Matsumi,et al. Fabrication of Ti-Alloy Powder/Solid Composite with Uniaxial Anisotropy by Introducing Unidirectional Honeycomb Structure via Electron Beam Powder Bed Fusion , 2021, Crystals.
[5] J. Pagkalos,et al. Additive manufacturing of porous titanium metaphyseal components: Early osseointegration and implant stability in revision knee arthroplasty. , 2020, Journal of clinical orthopaedics and trauma.
[6] N. Takata,et al. Compressive Properties of Al-Si Alloy Lattice Structures with Three Different Unit Cells Fabricated via Laser Powder Bed Fusion , 2020, Materials.
[7] Yanpeng Wei,et al. Damping behaviors of steel-based Kelvin lattice structures fabricated by indirect additive manufacture combining investment casting , 2020, Smart Materials and Structures.
[8] Ajeet Kumar,et al. A state-of-the-art review on types, design, optimization, and additive manufacturing of cellular structures , 2019, The International Journal of Advanced Manufacturing Technology.
[9] H. Fukazawa,et al. Effect of Post Heat Treatment on the Mechanical Properties of Porous Ti–6Al–4V Alloys Manufactured through Powder Bed Fusion Process , 2019, MATERIALS TRANSACTIONS.
[10] Jun Liang,et al. Mechanical properties of an improved 3D-printed rhombic dodecahedron stainless steel lattice structure of variable cross section , 2018, International Journal of Mechanical Sciences.
[11] Lai‐Chang Zhang,et al. Early plastic deformation behaviour and energy absorption in porous β-type biomedical titanium produced by selective laser melting , 2018, Scripta Materialia.
[12] Weidong Song,et al. Additively-manufactured functionally graded Ti-6Al-4V lattice structures with high strength under static and dynamic loading: Experiments , 2018 .
[13] A. Yánez,et al. Influence of load orientation and of types of loads on the mechanical properties of porous Ti6Al4V biomaterials , 2017 .
[14] K. Kitazono,et al. Compressive Behavior of Open-Cell Titanium Foams with Different Unit Cell Geometries , 2017 .
[15] Wei Wang,et al. Compressive and fatigue behavior of beta-type titanium porous structures fabricated by electron beam melting , 2017 .
[16] Xin-hua Liu,et al. Energy Absorption and Deformation Mechanism of Lotus-type Porous Coppers in Perpendicular Direction , 2017 .
[17] R. Bader,et al. Specific Yielding of Selective Laser-Melted Ti6Al4V Open-Porous Scaffolds as a Function of Unit Cell Design and Dimensions , 2016 .
[18] Feng Xiao,et al. Geometry models of porous media based on Voronoi tessellations and their porosity-permeability relations , 2016, Comput. Math. Appl..
[19] R. Misra,et al. The influence of cell morphology on the compressive fatigue behavior of Ti-6Al-4V meshes fabricated by electron beam melting. , 2016, Journal of the mechanical behavior of biomedical materials.
[20] J Kadkhodapour,et al. Numerical simulation of the fatigue behavior of additive manufactured titanium porous lattice structures. , 2016, Materials science & engineering. C, Materials for biological applications.
[21] A. Chiba,et al. Preparation of weak-textured commercially pure titanium by electron beam melting , 2015 .
[22] Hui-ping Tang,et al. Mechanical behavior of open-cell rhombic dodecahedron Ti–6Al–4V lattice structure , 2015 .
[23] Suchao Xie,et al. Analysis and optimisation of parameters influencing the out-of-plane energy absorption of an aluminium honeycomb , 2015 .
[24] L. Murr,et al. Influence of cell shape on mechanical properties of Ti-6Al-4V meshes fabricated by electron beam melting method. , 2014, Acta biomaterialia.
[25] Radovan Kovacevic,et al. The bio-compatible dental implant designed by using non-stochastic porosity produced by Electron Beam Melting® (EBM) , 2014 .
[26] Hui Zhang,et al. Experimental and numerical studies on the crush resistance of aluminum honeycombs with various cell configurations , 2014 .
[27] Ming-Chuan Leu,et al. Additive manufacturing: technology, applications and research needs , 2013, Frontiers of Mechanical Engineering.
[28] Ruben Gatt,et al. Three-dimensional cellular structures with negative Poisson's ratio and negative compressibility properties , 2012, Proceedings of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[29] R. V. Galiulin. To the 150th anniversary of the birth of Evgraf Stepanovich Fedorov (1853–1919) Irregularities in the fate of the theory of regularity , 2003 .
[30] J. Banhart. Manufacture, characterisation and application of cellular metals and metal foams , 2001 .
[31] Jeom Kee Paik,et al. The strength characteristics of aluminum honeycomb sandwich panels , 1999 .
[32] Michael F. Ashby,et al. Multifunctionality of cellular metal systems , 1998 .
[33] John Banhart,et al. Aluminium foams for transport industry , 1997 .
[34] Michael F. Ashby,et al. The mechanical properties of cellular solids , 1983 .
[35] M. Ashby,et al. The mechanics of two-dimensional cellular materials , 1982, Proceedings of the Royal Society of London. A. Mathematical and Physical Sciences.
[36] S. Andersson,et al. The elongated rhombic dodecahedron in alloy structures , 1979 .