Compressive mechanical compatibility of anisotropic porous Ti6Al4V alloys in the range of physiological strain rate for cortical bone implant applications
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Summary
Porous Ti6Al4V alloys with 60–70 % porosity show superior compressive mechanical compatibility in the range of physiological strain rate for cortical bone implant applications and enhanced strain rate sensitivity is originated from that of base materials and micro-inertia effect.
- Type
- dissertation
- Published
- 2015-09-18
- Cited by
- 30
- References
- 38
- OpenAlex
- https://openalex.org/W26384823
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:40780465
Keywords
Humanities, Art, Political science, Cartography, Geography
References
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- Fabrication and characterization of porous Ti–7.5Mo alloy scaffolds for biomedical applications
- A study of the dynamic compressive behavior of Elk antler
- Ti based biomaterials, the ultimate choice for orthopaedic implants – A review
- Fabrication methods of porous metals for use in orthopaedic applications.
- Strain-rate and inertia effects in the collapse of two types of energy-absorbing structure
- β-Type Zr-Nb-Ti biomedical materials with high plasticity and low modulus for hard tissue replacements.
- Mechanical behavior of regular open-cell porous biomaterials made of diamond lattice unit cells.
- Biocompatibility of Ti-alloys for long-term implantation.
Cited by
- Influence of pore size of porous titanium fabricated by vacuum diffusion bonding of titanium meshes on cell penetration and bone ingrowth.
- Strain rate sensitivity of open-cell titanium foam at elevated temperature
- Compression fatigue behavior and failure mechanism of porous titanium for biomedical applications.
- In vivo study of osteogenerating properties of calcium-phosphate coating on titanium alloy Ti–6Al–4V
- Chemical composition and osteogenerating properties of the bioactive coating on titanium alloy
- Mechanical and in vitro study of an isotropic Ti6Al4V lattice structure fabricated using selective laser melting
- Rate-dependent deformation and Poisson’s effect in porous titanium
- Characterizing Strain Rate-Dependent Mechanical Properties for Bovine Cortical Bones.
- Mechanical properties of zirconia ceramics biomimetically coated with calcium deficient hydroxyapatite.
- Effective compressive elastic behavior of rhombic dodecahedron structure with and without border constraints
- Strain rate effects on the mechanical behavior of porous titanium with different pore sizes
- Impact of Porosity on Interbody Cage Implants: PEEK and Titanium
- A novel device for treatment of osteonecrosis of femoral head: Feasibility and preliminary efficacy of animal study
- Enhanced mechanical properties of porous titanium implants via in-situ synthesized titanium carbide in lamellar pore walls
- An Analytical Method to Calculate Effective Elastic Properties of Mapped Rhombic Dodecahedron Structures Fabricated With Electron Beam Melting
- Cell Viability Assay and Surface Morphology Analysis of Carbonated Hydroxyapatite/Honeycomb/Titanium Alloy Coatings for Bone Implant Applications
- Finite element analysis on effect of aspect ratio and specimen geometry of biodegradable Zn 0.2 Ti 1 Mg / HA-WA composite for biomedical applications
- Impact of surface roughness and bulk porosity on spinal interbody implants.
- Green laser powder bed fusion based fabrication and rate-dependent mechanical properties of copper lattices
- Strain-rate-dependent plasticity of Ta-Cu nanocomposites for therapeutic implants
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