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Statements

Subject Item
n2:RIV%2F00216305%3A26210%2F09%3APU81420%21RIV10-MSM-26210___
rdf:type
n10:Vysledek skos:Concept
dcterms:description
Today is the surface hip replacement very often surgery because of new studies and improvements. For young and active people it's the best way to delay implantation of a conventional total hip replacement. The objective of this study was to perform finite-element analyses of computational model of the total surface replacement and physiological hip joint. We obtained strain-stress states from these analyses. All results were compared one another and then were confronted with results of the physiological hip joint. The three-dimensional computational model consists of these components: pelvic and femoral bone, muscles, artificial socket, and surface hip replacement. We were using FEM system ANSYS. The geometrical models of bones were generated by means of computed tomography (CT) images. The FE model of bone reflects two types of the bone tissues (trabecular and cortical bone) and muscles which are important when standing on one leg. The model of the muscle corresponds to isometric contraction. The imp Today is the surface hip replacement very often surgery because of new studies and improvements. For young and active people it's the best way to delay implantation of a conventional total hip replacement. The objective of this study was to perform finite-element analyses of computational model of the total surface replacement and physiological hip joint. We obtained strain-stress states from these analyses. All results were compared one another and then were confronted with results of the physiological hip joint. The three-dimensional computational model consists of these components: pelvic and femoral bone, muscles, artificial socket, and surface hip replacement. We were using FEM system ANSYS. The geometrical models of bones were generated by means of computed tomography (CT) images. The FE model of bone reflects two types of the bone tissues (trabecular and cortical bone) and muscles which are important when standing on one leg. The model of the muscle corresponds to isometric contraction. The imp
dcterms:title
Strain-Stress Analysis of the Surface Replacement of the Hip Joint Strain-Stress Analysis of the Surface Replacement of the Hip Joint
skos:prefLabel
Strain-Stress Analysis of the Surface Replacement of the Hip Joint Strain-Stress Analysis of the Surface Replacement of the Hip Joint
skos:notation
RIV/00216305:26210/09:PU81420!RIV10-MSM-26210___
n4:aktivita
n9:S
n4:aktivity
S
n4:dodaniDat
n5:2010
n4:domaciTvurceVysledku
n15:2948400 n15:2917653
n4:druhVysledku
n16:D
n4:duvernostUdaju
n20:S
n4:entitaPredkladatele
n19:predkladatel
n4:idSjednocenehoVysledku
343935
n4:idVysledku
RIV/00216305:26210/09:PU81420
n4:jazykVysledku
n14:eng
n4:klicovaSlova
biomechanika, povrchová náhrada, kyčelní kloub
n4:klicoveSlovo
n6:povrchov%C3%A1%20n%C3%A1hrada n6:ky%C4%8Deln%C3%AD%20kloub n6:biomechanika
n4:kontrolniKodProRIV
[89341DB67837]
n4:mistoKonaniAkce
Wisla
n4:mistoVydani
Gliwice
n4:nazevZdroje
Modelling and optimization of physical systems
n4:obor
n17:BO
n4:pocetDomacichTvurcuVysledku
2
n4:pocetTvurcuVysledku
2
n4:rokUplatneniVysledku
n5:2009
n4:tvurceVysledku
Vosynek, Petr Návrat, Tomáš
n4:typAkce
n8:EUR
n4:zahajeniAkce
2009-05-29+02:00
s:numberOfPages
6
n13:hasPublisher
Katedra Mechaniki Stosowanej
n12:isbn
978-83-60102-52-7
n7:organizacniJednotka
26210