Open Access
期号 |
Int. J. Simul. Multidisci. Des. Optim.
卷号 12, 2021
Computation Challenges for engineering problems
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文献编号 | 12 | |
页数 | 9 | |
DOI | https://doi.org/10.1051/smdo/2021014 | |
网上发表时间 | 2021年8月13日 |
- H.J. Rack, J.I. Qazi, Titanium alloys for biomedical applications, Mater. Sci. Eng. C 26, 1269–1277 (2006) [CrossRef] [Google Scholar]
- W. Ziaja, Finite element modeling of the fracture behavior of surface treated Ti6Al4V alloy, Arch. Comput. Mater. Sci. Surf. Eng. 1, 53–60 (2009) [Google Scholar]
- D.R. Sumner, Long-term implant fixation and stress-shielding in total hip replacement, J. Biomech. 48, 797–800 (2015) [CrossRef] [Google Scholar]
- M. Alaña, A. López de Arancibia, A. Pradera-Mallabiabarrena, S. Ruiz de Galarreta, Analytical model of the elastic behavior of a modified face-centered cubic lattice structure, J. Mech. Behav. Biomed. Mater. 98, 357–368 (2019) [CrossRef] [Google Scholar]
- S. Wang, L. Liu, L. Kai, L. Zhua, J. Chen, Y. Hao, Pore functionally graded Ti6Al4V scaffolds for bone tissue engineering application, Mater. Des. 168, 107643 (2019) [CrossRef] [Google Scholar]
- J. Parthasarathy, B. Starly, S. Raman, A. Christensen, Mechanical evaluation of porous titanium (Ti6Al4V) structures with electron beam melting, J. Mech. Behav. Biomed. Mater. 3, 249–259 (2010) [CrossRef] [Google Scholar]
- K. Hazlehurst, C.J. Wang, M. Stanford, Evaluation of the stiffness characteristics of square pore CoCrMo cellular structures manufactured using laser melting technology for potential orthopedic applications, Mater. Des. 51, 949–955 (2013) [CrossRef] [Google Scholar]
- L. Wang, J. Kang, C. Sun, D. Li, Y. Caoa, Z. Jin, Mapping porous microstructures to yield desired mechanical properties for application in 3D printed bone scaffolds and orthopedic implants, Mater. Des. 133, 62–68 (2017) [CrossRef] [Google Scholar]
- H. Mehboob, F. Tarlochan, A. Mehboob, S.H. Chang, Finite element modeling and characterization of 3D cellular microstructures for the design of cement less biomimetic porous hip stem, Mater. Des. 149, 101–112 (2018) [CrossRef] [Google Scholar]
- J.-H. Zhu, K.-K. Yang, W.-H. Zhang, Backbone cup − a structure design competition based on topology optimization and 3D printing, Int. J. Simul. Multisci. Des. Optim. 7, A1 (2016) [CrossRef] [Google Scholar]
- R. Paz, M.D. Monzón, B. González, E. Pei, G. Winter, F. Ortega, Lightweight parametric optimisation method for cellular structures in additive manufactured parts, Int. J. Simul. Multisci. Des. Optim. 7, A6 (2016) [CrossRef] [Google Scholar]
- L. Mullen, R.C. Stamp, W.K. Brooks, E. Jones, C.J. Sutcliffe, Selective laser melting: a regular unit cell approach for the manufacture of porous, titanium, bone in‐growth constructs, suitable for orthopedic applications, J. Biomed. Mater. Res. B 89, 325–334 (2009) [CrossRef] [Google Scholar]
- S. Kujala, J. Ryhänen, A. Danilov, J. Tuukkanen, Effect of porosity on the osteointegration and bone ingrowth of a weight-bearing nickel-titanium bone graft substitute, Biomaterials 24, 4691–4697 (2003) [CrossRef] [Google Scholar]
- S. Arabnejad, R.B. Johnston, J.A. Pura, B. Singh, M. Tanzer, D. Pasini, High-strength porous biomaterials for bone replacement: a strategy to assess the interplay between cell morphology, mechanical properties, bone ingrowth and manufacturing constraints, Acta Biomater. 30, 345–356 (2016) [CrossRef] [Google Scholar]
- N. Taniguchi, S. Fujibayashi, M. Takemoto, K. Sasaki, B. Otsuki, T. Nakamura, T. Matsushita, T. Kokubo, S. Matsuda, Effect of pore size on bone ingrowth into porous titanium implants fabricated by additive manufacturing: an in vivo experiment, Mater. Sci. Eng. C 59, 690‒701 (2016) [Google Scholar]
- L.J. Gibson, M.F. Ashby, Cellular Solids: Structure and Properties Textbook, Cambridge University Press (1997) [Google Scholar]
- X.P. Tan, Y.J. Tan, C.S.L. Chow, S.B. Tor, W.Y. Yeong, Metallic powder-bed based 3D printing of cellular scaffolds for orthopedic implants: a state-of-the-art review on manufacturing, topological design, mechanical properties and biocompatibility, Mater. Sci. Eng. C 76, 1328–1343 (2017) [Google Scholar]
- S. Sogutlu, B. Koc, Stochastic modeling of tissue engineering scaffolds with varying porosity levels, Comput. Aided Des. Appl. 4, 661–670 (2007) [Google Scholar]
- O. Cansizoglu, D. Harrysson, O. Cormier, H. West, T. Mahale, Properties of Ti6Al4V non-stochastic lattice structures fabricated via electron beam melting, Mater. Sci. Eng. A 492, 468–474 (2008) [Google Scholar]
- S.M. Ahmadi, G. Campoli, S. Amin Yavari, B. Sajadi, R. Wauthle, J. Schrooten, H. Weinans, A.A. Zadpoor, Mechanical behavior of regular open-cell porous biomaterials made of diamond lattice unit cells, J. Mech. Behav. Biomed. Mater. 34, 106–115 (2014) [Google Scholar]
- G. Bergmann, A. Graichena, A. Rohlmann, B. Bender, G.N. Heinleina, M.O. Duda, M.M. Helle Morlock, Realistic loads for testing hip implants, Bio-Med. Mater. Eng. 20, 65–75 (2010) [Google Scholar]
- S. Mohamed, B. Halima Shamaz, Bone tissue engineering and bony scaffolds, Int. J. Dent. Oral Health 1, 15–20 (2015) [Google Scholar]
- A.S. Al-Aboodi, A.A. Al-Nasser, Bone porosity modeling and FE simulation, Int. J. Adv. Mech. Aeron. Eng. 2, (2015) [Google Scholar]
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