DocumentCode :
2557707
Title :
Construction parametric model and stress analysis of the biopresthetic heart valve
Author :
Yuan, Quan ; Zhu, Haiyan ; Cong, Hua ; Zhang, Chengrui ; Zhu, Yanqiu
Author_Institution :
Key Lab. of High Efficiency & Clean, Mech. Manuf., Shandong Univ., Jinan, China
fYear :
2010
fDate :
16-18 April 2010
Firstpage :
141
Lastpage :
145
Abstract :
In order to improve long-term durability of bioprosthetic heart valve, stress distribution of bioprosthetic heart valve leaflets with different shapes under the same load is analyzed and compared based on finite element method. Combining traditional design theories and modern design methods, we create the cylindrical, spherical, paraboloidal and ellipsoidal curved surfaces in accordance with the geometrical equations in the appropriate frame ordinal. Based on the stress analysis of two kinds of curved surfaces, we take turns to create relative inverse conic curved surfaces which satisfy the actual condition. Meanwhile, the space positions of boundary curves and important points are determined by the intersected curves and axis of revolution. Geometrical design and the finite element analysis could provide direct and useful information for the bioprosthetic heart valve designer. The experimental results of the finite element analysis reveal that stress distribution of different bioprosthetic heart valve leaflets is quite different in diastole time. Ellipsoidal valve leaflets have the following advantages over spherical, paraboloidal and cylindrical valves leaflets: one is that the peak stress area of ellipsoidal valve leaflets is comparatively far from seam position, the other is that the maximal primary stress of ellipsoidal valve leaflets is lower than that of spherical, paraboloidal and cylindrical valves leaflets. Therefore, mechanical properties of ellipsoidal valves leaflets are superior to those of spherical, paraboloidal and cylindrical valves leaflets.
Keywords :
biomechanics; cardiology; finite element analysis; internal stresses; physiological models; prosthetics; biopresthetic heart valve leaflets; construction parametric model; cylindrical curved surface; cylindrical valves leaflets; diastole time; ellipsoidal curved surface; finite element method; geometrical design; geometrical equations; inverse conic curved surfaces; long-term durability; mechanical properties; paraboloidal curved surface; spherical curved surface; stress analysis; stress distribution; Design methodology; Equations; Finite element methods; Heart valves; Information analysis; Laboratories; Parametric statistics; Shape; Stress; Virtual manufacturing; bioprosthetic heart valve; finite element method; stress distribution;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Information Management and Engineering (ICIME), 2010 The 2nd IEEE International Conference on
Conference_Location :
Chengdu
Print_ISBN :
978-1-4244-5263-7
Electronic_ISBN :
978-1-4244-5265-1
Type :
conf
DOI :
10.1109/ICIME.2010.5478239
Filename :
5478239
Link To Document :
بازگشت