000 02595nam a2200277 a 4500
001 vtls000052276
003 KUKTEM
005 20251114204445.0
008 110324t2010 my a f m 000 0 eng d
020 _aTHE0005644(Local)
039 9 _a201905171501
_bhanafiah
_c201107140040
_dVLOAD
_c201103241558
_dida
_y201103241553
_zida
040 _aUMP
090 _aTA357 .A44 2010 rs Bc.
100 0 _aAlexson Abit
245 1 0 _aFinite element modeling of cerebral aneurysm /
_cAlexson Abit
246 3 _aFinite element modeling of cerebral aneurysm
_h[electronic resource]
260 _aKuantan, Pahang :
_bUMP,
_c2010
300 _axiv, 57 p. :
_bill. (some col.) ;
_c30 cm.+
_e2 computer disc
502 _aProject paper (Bachelor of Mechanical Engineering) -- Universiti Malaysia Pahang - 2010
504 _aBibliography : p. 37-40
520 3 _aAn aneurysm is an abnormal bulging or widening of a portion of an artery due to weakness in the wall of the aortic wall. It happens when the mechanical stress exceeds the tensile strength of the tissue. Nowadays, an accurate decision to predict the rupture of the aneurysm is not is founded yet. This study is focusing on cerebral aneurysm that is occurring at the circle of Willis area. By using the simulation tools, the stress behaviour on cerebral aneurysm (CA) area will be analyzed. As the size of an aneurysm increases, there is a potential of rupture of aneurysm. Studying the mechanical properties in real CA’s can better the research of aneurysm behaviour. This study consists of three cases with the different size of aneurysms which are 2.5 mm and 3.5 mm in radius. The simulation of the model was studied under incompressible, non-Newtonian, viscous, non pulsatile condition in which we investigated computationally in a three-dimensional configuration using a Computational Fluid Dynamics (CFD) program. Currently, the decision to treat a diagnosed, unruptured aneurysm is based primarily on the maximum dimension of the lesion even though there is controversy over the critical size. Our results from finite element analysis reveal important roles of lesion shape, material properties, and loading conditions in governing the distributions of stress within the saccular aneurysms. This research finds that maximum stresses increase markedly with increases in lesion size, the ratio of neck diameter to lesion height, and the pressure.
650 0 _aFluid dynamics
650 0 _aHemodynamics
650 0 _aAneurysms
999 _aVIRTUA40
_c2355
_d2361
999 _aVTLSSORT0080*0200*0400*0900*1000*2450*2460*2600*3000*5020*5040*5200*6500*6501*6502*9992