-
Something wrong with this record ?
Design, analysis and verification of a knee joint oncological prosthesis finite element model
L. Zach, L. Kunčická, P. Růžička, R. Kocich,
Language English Country United States
Document type Journal Article, Research Support, Non-U.S. Gov't, Validation Study
NLK
ProQuest Central
from 2003-01-01 to 2023-12-31
Medline Complete (EBSCOhost)
from 2012-09-01 to 2015-07-31
Nursing & Allied Health Database (ProQuest)
from 2003-01-01 to 2023-12-31
Health & Medicine (ProQuest)
from 2003-01-01 to 2023-12-31
- MeSH
- Algorithms MeSH
- Finite Element Analysis MeSH
- Equipment Failure Analysis MeSH
- Models, Biological * MeSH
- Computer-Aided Design MeSH
- Knee Joint physiopathology MeSH
- Muscle, Skeletal physiopathology MeSH
- Humans MeSH
- Stress, Mechanical MeSH
- Elastic Modulus MeSH
- Bone Neoplasms physiopathology surgery MeSH
- Tensile Strength MeSH
- Compressive Strength MeSH
- Computer Simulation MeSH
- Prosthesis Fitting methods MeSH
- Prosthesis Design MeSH
- Knee Prosthesis * MeSH
- Tendons physiopathology MeSH
- Software MeSH
- Muscle Contraction MeSH
- Check Tag
- Humans MeSH
- Publication type
- Journal Article MeSH
- Research Support, Non-U.S. Gov't MeSH
- Validation Study MeSH
BACKGROUND: The aim of this paper was to design a finite element model for a hinged PROSPON oncological knee endoprosthesis and to verify the model by comparison with ankle flexion angle using knee-bending experimental data obtained previously. METHOD: Visible Human Project CT scans were used to create a general lower extremity bones model and to compose a 3D CAD knee joint model to which muscles and ligaments were added. Into the assembly the designed finite element PROSPON prosthesis model was integrated and an analysis focused on the PEEK-OPTIMA hinge pin bushing stress state was carried out. To confirm the stress state analysis results, contact pressure was investigated. The analysis was performed in the knee-bending position within 15.4-69.4° hip joint flexion range. RESULTS: The results showed that the maximum stress achieved during the analysis (46.6 MPa) did not exceed the yield strength of the material (90 MPa); the condition of plastic stability was therefore met. The stress state analysis results were confirmed by the distribution of contact pressure during knee-bending. CONCLUSION: The applicability of our designed finite element model for the real implant behaviour prediction was proven on the basis of good correlation of the analytical and experimental ankle flexion angle data.
References provided by Crossref.org
- 000
- 00000naa a2200000 a 4500
- 001
- bmc15031866
- 003
- CZ-PrNML
- 005
- 20151009102305.0
- 007
- ta
- 008
- 151005s2014 xxu f 000 0|eng||
- 009
- AR
- 024 7_
- $a 10.1016/j.compbiomed.2014.08.021 $2 doi
- 035 __
- $a (PubMed)25212118
- 040 __
- $a ABA008 $b cze $d ABA008 $e AACR2
- 041 0_
- $a eng
- 044 __
- $a xxu
- 100 1_
- $a Zach, Lukáš $u Department of Mechanics, Biomechanics and Mechatronics, Faculty of Mechanical Engineering, Czech Technical University in Prague, Technická 4, 166 07 Praha 6, Czech Republic.
- 245 10
- $a Design, analysis and verification of a knee joint oncological prosthesis finite element model / $c L. Zach, L. Kunčická, P. Růžička, R. Kocich,
- 520 9_
- $a BACKGROUND: The aim of this paper was to design a finite element model for a hinged PROSPON oncological knee endoprosthesis and to verify the model by comparison with ankle flexion angle using knee-bending experimental data obtained previously. METHOD: Visible Human Project CT scans were used to create a general lower extremity bones model and to compose a 3D CAD knee joint model to which muscles and ligaments were added. Into the assembly the designed finite element PROSPON prosthesis model was integrated and an analysis focused on the PEEK-OPTIMA hinge pin bushing stress state was carried out. To confirm the stress state analysis results, contact pressure was investigated. The analysis was performed in the knee-bending position within 15.4-69.4° hip joint flexion range. RESULTS: The results showed that the maximum stress achieved during the analysis (46.6 MPa) did not exceed the yield strength of the material (90 MPa); the condition of plastic stability was therefore met. The stress state analysis results were confirmed by the distribution of contact pressure during knee-bending. CONCLUSION: The applicability of our designed finite element model for the real implant behaviour prediction was proven on the basis of good correlation of the analytical and experimental ankle flexion angle data.
- 650 _2
- $a algoritmy $7 D000465
- 650 _2
- $a nádory kostí $x patofyziologie $x chirurgie $7 D001859
- 650 _2
- $a pevnost v tlaku $7 D019245
- 650 _2
- $a počítačová simulace $7 D003198
- 650 _2
- $a design s pomocí počítače $7 D017076
- 650 _2
- $a modul pružnosti $7 D055119
- 650 _2
- $a analýza selhání vybavení $7 D019544
- 650 _2
- $a analýza metodou konečných prvků $7 D020342
- 650 _2
- $a lidé $7 D006801
- 650 _2
- $a kolenní kloub $x patofyziologie $7 D007719
- 650 12
- $a protézy kolene $7 D007720
- 650 12
- $a biologické modely $7 D008954
- 650 _2
- $a svalová kontrakce $7 D009119
- 650 _2
- $a kosterní svaly $x patofyziologie $7 D018482
- 650 _2
- $a protézy - design $7 D011474
- 650 _2
- $a protetické vybavení $x metody $7 D017755
- 650 _2
- $a software $7 D012984
- 650 _2
- $a mechanický stres $7 D013314
- 650 _2
- $a šlachy $x patofyziologie $7 D013710
- 650 _2
- $a pevnost v tahu $7 D013718
- 655 _2
- $a časopisecké články $7 D016428
- 655 _2
- $a práce podpořená grantem $7 D013485
- 655 _2
- $a validační studie $7 D023361
- 700 1_
- $a Kunčická, Lenka $u Department of Materials Forming, Faculty of Metallurgy and Materials Engineering, VŠB-TU Ostrava, 17. listopadu 15, Ostrava-Poruba 70833, Czech Republic; Regional Materials Science and Technology Centre, VŠB-TU Ostrava, 17. listopadu 15, Ostrava-Poruba 70833, Czech Republic. Electronic address: lenka.kuncicka@vsb.cz.
- 700 1_
- $a Růžička, Pavel $u Department of Mechanics, Biomechanics and Mechatronics, Faculty of Mechanical Engineering, Czech Technical University in Prague, Technická 4, 166 07 Praha 6, Czech Republic.
- 700 1_
- $a Kocich, Radim $u Department of Materials Forming, Faculty of Metallurgy and Materials Engineering, VŠB-TU Ostrava, 17. listopadu 15, Ostrava-Poruba 70833, Czech Republic; Regional Materials Science and Technology Centre, VŠB-TU Ostrava, 17. listopadu 15, Ostrava-Poruba 70833, Czech Republic.
- 773 0_
- $w MED00001218 $t Computers in biology and medicine $x 1879-0534 $g Roč. 54, č. - (2014), s. 53-60
- 856 41
- $u https://pubmed.ncbi.nlm.nih.gov/25212118 $y Pubmed
- 910 __
- $a ABA008 $b sig $c sign $y a $z 0
- 990 __
- $a 20151005 $b ABA008
- 991 __
- $a 20151009102452 $b ABA008
- 999 __
- $a ok $b bmc $g 1092742 $s 914992
- BAS __
- $a 3
- BAS __
- $a PreBMC
- BMC __
- $a 2014 $b 54 $c - $d 53-60 $e 20140826 $i 1879-0534 $m Computers in biology and medicine $n Comput Biol Med $x MED00001218
- LZP __
- $a Pubmed-20151005