Dynamic compressive behavior of a modified additively manufactured rhombic dodecahedron 316L stainless steel lattice structure
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D. Fang | Weibin Wen | Xiaofei Cao | D. Xiao | Ying Li | Tian Zhao | Zihao Chen | Yongbo Jiang
[1] D. Fang,et al. Compression behavior of the graded metallic auxetic reentrant honeycomb: Experiment and finite element analysis , 2019, Materials Science and Engineering: A.
[2] F. Tarlochan,et al. Experimental analysis of additively manufactured thin-walled heat-treated circular tubes with slits using AlSi10Mg alloy by quasi-static axial crushing test , 2019, Thin-Walled Structures.
[3] K. Hokamoto,et al. Mechanical behaviour of auxetic cellular structures built from inverted tetrapods at high strain rates , 2018, International Journal of Impact Engineering.
[4] M. Zhou,et al. Dynamic crushing response of auxetic honeycombs under large deformation: Theoretical analysis and numerical simulation , 2018, Thin-Walled Structures.
[5] Wen Feng Lu,et al. Energy absorption characteristics of metallic triply periodic minimal surface sheet structures under compressive loading , 2018, Additive Manufacturing.
[6] 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.
[7] T. Tancogne-Dejean,et al. Stiffness and specific energy absorption of additively-manufactured metallic BCC metamaterials composed of tapered beams , 2018, International Journal of Mechanical Sciences.
[8] J. Weibel,et al. Design of Multifunctional Lattice‐Frame Materials for Compact Heat Exchangers , 2017 .
[9] Rashid K. Abu Al-Rub,et al. Stiffness and yield strength of architectured foams based on the Schwarz Primitive triply periodic minimal surface , 2017 .
[10] Hui-ping Tang,et al. Mechanical properties of open-cell rhombic dodecahedron titanium alloy lattice structure manufactured using electron beam melting under dynamic loading , 2017 .
[11] T. Tancogne-Dejean,et al. Additively-manufactured metallic micro-lattice materials for high specific energy absorption under static and dynamic loading , 2016 .
[12] Amir Abbas Zadpoor,et al. Analytical relationships for prediction of the mechanical properties of additively manufactured porous biomaterials , 2016, Journal of biomedical materials research. Part A.
[13] R. Hague,et al. A mechanical property evaluation of graded density Al-Si10-Mg lattice structures manufactured by selective laser melting , 2016 .
[14] Rashid K. Abu Al-Rub,et al. Effective conductivities and elastic moduli of novel foams with triply periodic minimal surfaces , 2016 .
[15] A. Tyas,et al. Energy absorption in lattice structures in dynamics: Experiments , 2016 .
[16] Amir A. Zadpoor,et al. Computational prediction of the fatigue behavior of additively manufactured porous metallic biomaterials , 2016 .
[17] Amir A. Zadpoor,et al. Effect of mass multiple counting on the elastic properties of open-cell regular porous biomaterials , 2016 .
[18] J. Ding,et al. Numerical study of the deformation and fracture behavior of porous Ti6Al4V alloy under static and dynamic loading , 2015 .
[19] N. Gupta,et al. The characterization and ballistic evaluation of mild steel , 2015 .
[20] Ola L. A. Harrysson,et al. Flexural properties of Ti6Al4V rhombic dodecahedron open cellular structures fabricated with electron beam melting , 2014 .
[21] S. Kyriakides,et al. Dynamic crushing of aluminum foams: Part I – Experiments , 2014 .
[22] Recep Gümrük,et al. Static mechanical behaviours of stainless steel micro-lattice structures under different loading conditions , 2013 .
[23] H. Maier,et al. On the mechanical behaviour of titanium alloy TiAl6V4 manufactured by selective laser melting: Fatigue resistance and crack growth performance , 2013 .
[24] M. Smith,et al. Finite element modelling of the compressive response of lattice structures manufactured using the selective laser melting technique , 2013 .
[25] B. Bednarcyk,et al. Effects of Subscale Size and Shape on Global Energy Dissipation in a Multiscale Model of a Fiber- reinforced Composite Exhibiting Post-peak Strain Softening using Abaqus and FEAMAC , 2012 .
[26] Hamid Nayeb-Hashemi,et al. Mechanical properties of open-cell rhombic dodecahedron cellular structures , 2012 .
[27] Wesley J. Cantwell,et al. An investigation into the compressive properties of stainless steel micro-lattice structures , 2011 .
[28] John W. Gillespie,et al. Hopkinson bar experimental technique: A critical review , 2004 .
[29] Tongxi Yu,et al. In-plane dynamic crushing of honeycombs : a finite element study , 2003 .
[30] Heung-Soo Kim,et al. New extruded multi-cell aluminum profile for maximum crash energy absorption and weight efficiency , 2002 .
[31] N. Fleck,et al. High strain rate compressive behaviour of aluminium alloy foams , 2000 .
[32] A. Hillerborg,et al. Analysis of crack formation and crack growth in concrete by means of fracture mechanics and finite elements , 1976 .
[33] D. Fang,et al. Mechanical analysis and modeling of metallic lattice sandwich additively fabricated by selective laser melting , 2020 .
[34] Rashid K. Abu Al-Rub,et al. Topology-mechanical property relationship of 3D printed strut, skeletal, and sheet based periodic metallic cellular materials , 2018 .
[35] Weidong Song,et al. Additively-manufactured functionally graded Ti-6Al-4V lattice structures with high strength under static and dynamic loading: Experiments , 2018 .
[36] M. Sadighi,et al. Comparison of elastic properties of open-cell metallic biomaterials with different unit cell types. , 2018, Journal of biomedical materials research. Part B, Applied biomaterials.
[37] Martin Leary,et al. Mechanical properties of Ti6Al4V and AlSi12Mg lattice structures manufactured by Selective Laser Melting (SLM) , 2017 .
[38] M. Ashby,et al. Cellular solids: Structure & properties , 1988 .
[39] G. R. Johnson,et al. Fracture characteristics of three metals subjected to various strains, strain rates, temperatures and pressures , 1985 .
[40] C. Calladine,et al. Strain-rate and inertia effects in the collapse of two types of energy-absorbing structure , 1984 .