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Stress shielding at the bone‐implant interface: Influence of surface roughness and of the bone‐implant contact ratio
- Source :
- Journal of Orthopaedic Research, Journal of Orthopaedic Research, Wiley, 2020, ⟨10.1002/jor.24840⟩, Journal of Orthopaedic Research, 2020, ⟨10.1002/jor.24840⟩
- Publication Year :
- 2020
- Publisher :
- Wiley, 2020.
-
Abstract
- Short and long-term stabilities of cementless implants are strongly determined by the interfacial load transfer between implants and bone tissue. Stress-shielding effects arise from shear stresses due to the difference of material properties between bone and the implant. It remains difficult to measure the stress field in periprosthetic bone tissue. This study proposes to investigate the dependence of the stress field in periprosthetic bone tissue on i) the implant surface roughness, ii) material properties of bone and of the implant, iii) the bone-implant contact ratio. To do so, a microscale 2-D finite element model of an osseointegrated boneimplant interface was developed where the surface roughness was modeled by a sinusoidal surface. The results show that the isostatic pressure is not affected by the presence of the bone-implant interface while shear stresses arise due to the combined effects of a geometrical singularity (for low surface roughness) and of shear stresses at the bone-implant interface (for high surface roughness). Stress-shielding effects are likely to be more important when the bone-implant contact ratio value is low, which corresponds to a case of relatively low implant stability. Shear stress reach a maximum value at a distance from the interface comprised between 0 and 0.1 time roughness wavelength $\lambda$ and tend to 0 at a distance from the implant surface higher than $\lambda$, independently from bone-implant contact ratio and waviness ratio. A comparison with an analytical model allows validating the numerical results. Future work should use the present approach to model osseointegration phenomena.<br />Comment: Journal of Orthopaedic Research, Wiley, In press
- Subjects :
- Materials science
Bone-Implant Interface
Finite Element Analysis
[SPI.GCIV.STRUCT] Engineering Sciences [physics]/Civil Engineering/Structures
FOS: Physical sciences
Physics - Classical Physics
02 engineering and technology
Surface finish
[SPI.MECA.SOLID]Engineering Sciences [physics]/Mechanics [physics.med-ph]/Solid mechanics [physics.class-ph]
Bone tissue
Osseointegration
03 medical and health sciences
0302 clinical medicine
[SPI.MECA.BIOM] Engineering Sciences [physics]/Mechanics [physics.med-ph]/Biomechanics [physics.med-ph]
Shear stress
medicine
Surface roughness
Humans
[SPI.MECA.SOLID] Engineering Sciences [physics]/Mechanics [physics.med-ph]/Solid mechanics [physics.class-ph]
stress-shielding
Orthopedics and Sports Medicine
Composite material
Waviness
Classical Physics (physics.class-ph)
osseointegration
[SPI.MECA.BIOM]Engineering Sciences [physics]/Mechanics [physics.med-ph]/Biomechanics [physics.med-ph]
finite element modeling
030206 dentistry
Stress shielding
021001 nanoscience & nanotechnology
Physics - Medical Physics
medicine.anatomical_structure
[SPI.MECA.STRU]Engineering Sciences [physics]/Mechanics [physics.med-ph]/Structural mechanics [physics.class-ph]
surface roughness
bone-implant interface
Stress, Mechanical
[SPI.MECA.STRU] Engineering Sciences [physics]/Mechanics [physics.med-ph]/Structural mechanics [physics.class-ph]
Medical Physics (physics.med-ph)
[SPI.GCIV.STRUCT]Engineering Sciences [physics]/Civil Engineering/Structures
0210 nano-technology
Subjects
Details
- ISSN :
- 1554527X and 07360266
- Volume :
- 39
- Database :
- OpenAIRE
- Journal :
- Journal of Orthopaedic Research
- Accession number :
- edsair.doi.dedup.....527a58a25ce3fd12a9cc301966f50cc6
- Full Text :
- https://doi.org/10.1002/jor.24840