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Mechanical formula for the plastic limit pressure of stent during expansion 被引量:2

Mechanical formula for the plastic limit pressure of stent during expansion
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摘要 The mechanics of cardiovascular stents during the process of expansion are very important for stent function and safety. In general, finite element method (FEM) or experi- ments are major methods used to ascertain mechanical prop- erties of the stent. In this paper, we develop a theoretical model of the tubular stent, derive formulas for the axial forces and moments on the stent end, and propose formu- las for the plastic limit pressure vs. the stent's radius during expansion. Examples covering different geometrical param- eters and material parameters are provided, and the plastic limit pressures calculated by FEM and the present method are compared, proving that the present formulas are acceptable and meaningful for the design and innovation of the stent. The mechanics of cardiovascular stents during the process of expansion are very important for stent function and safety. In general, finite element method (FEM) or experi- ments are major methods used to ascertain mechanical prop- erties of the stent. In this paper, we develop a theoretical model of the tubular stent, derive formulas for the axial forces and moments on the stent end, and propose formu- las for the plastic limit pressure vs. the stent's radius during expansion. Examples covering different geometrical param- eters and material parameters are provided, and the plastic limit pressures calculated by FEM and the present method are compared, proving that the present formulas are acceptable and meaningful for the design and innovation of the stent.
出处 《Acta Mechanica Sinica》 SCIE EI CAS CSCD 2009年第6期795-801,共7页 力学学报(英文版)
基金 supported by the National Basic Research Program of China (2005CB623904) the National Natural Science Foundation of China (10872176).
关键词 Stent. Expansion . Inter forcePlastic limit pressure . FEM Stent. Expansion . Inter forcePlastic limit pressure . FEM
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参考文献13

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同被引文献20

  • 1ETAVE F, FINET G, BOIVIN M, et al. Mechanical property of coronary stents determined by using finite element analysis[J]. J. Biomechanics, 2001, 34: 1065-1075.
  • 2CHUA S N D, MACDONALD B J, HASHMI M S J. Effects of varying slotted tube (stent) geometry on its expansion behaviour using finite element method [ J ]. J. Materials Processing Technology, 2004, 155-156: 1764-1771.
  • 3MIGLIAVACCA F, PETRINI L, MONTANARI V, et al. A predictive study of the mechanical behaviour of coronary stents by computer modeling[J]. Med. Eng. Phys., 2005, 27: 13-18.
  • 4WALKE W, PASZENDA Z, FILIPIAK J. Experimental and numerical biomechanical analysis of vascular stent[J]. J. Materials Processing Technology, 2005, 164-165 : 1263-1268.
  • 5GERVASO F, CAPELLI C, PETRINI L, et al. On the effects of different strategies in modeling balloon- expandable stenting by means of finite element method[ J]. J. Biomechanics, 2008, 41: 1206-1212.
  • 6GARC A A, PEA E, MART NEZ M A. Influence of geometrical parameters on radial force during self- expanding stent deployment, application for a variable radial stiffness stent[J]. Journal of the Mechanical Behavior of Biomedical Materials, 2012, 10 : 156-175.
  • 7WANG R, CHANDAR K R. Mechanical response of a metallic aortic stent-part I : pressure-diameter relationshiop[J]. Journal of Applied Mechanics, 2004, 71 : 697-705.
  • 8YANG J, HUANG N. Formula for elastic radial stiffness of the tubular vascular stent[ C ]//6th WoAd Congress on Biomechanics. Singapore: [ s. n. ] , 2010: 1435-1438.
  • 9DOMOULIN C, COCHELIN B. Mechanical behaviour modelling of balloon-expandable stents[J]. Journal of Biomechanics, 2000, 33: 1461-1470.
  • 10PARK W P, CHO S K, KO J Y, et al. Evaluation of stent performances using FEA considering a realistic balloon expansion[ J]. Proceedings of World Academy of Science: Engineering & Technolog, 2008, 37:117- 122.

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