FLUID MECHANICS OF ARTIFICIAL HEART VALVES

被引:197
|
作者
Dasi, Lakshmi P. [1 ]
Simon, Helene A. [2 ]
Sucosky, Philippe [1 ]
Yoganathan, Ajit P. [1 ]
机构
[1] Georgia Inst Technol, Wallace H Coulter Sch Biomed Engn, Atlanta, GA 30332 USA
[2] Georgia Inst Technol, Sch Chem & Mol Biol, Atlanta, GA 30332 USA
关键词
aortic; bileaflet; circulation; haemodynamics; heart valve; mechanical; mitral; prosthesis; trileaflet; SHEAR-INDUCED ACTIVATION; HINGE FLOW-FIELDS; GROWN IN-VITRO; AORTIC-VALVE; MODEL; PROSTHESES; BLOOD; IMPLANTATION; HETEROGRAFTS; REPLACEMENT;
D O I
10.1111/j.1440-1681.2008.05099.x
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Artificial heart valves have been in use for over five decades to replace diseased heart valves. Since the first heart valve replacement performed with a caged-ball valve, more than 50 valve designs have been developed, differing principally in valve geometry, number of leaflets and material. To date, all artificial heart valves are plagued with complications associated with haemolysis, coagulation for mechanical heart valves and leaflet tearing for tissue-based valve prosthesis. For mechanical heart valves, these complications are believed to be associated with non-physiological blood flow patterns. In the present review, we provide a bird's-eye view of fluid mechanics for the major artificial heart valve types and highlight how the engineering approach has shaped this rapidly diversifying area of research. Mechanical heart valve designs have evolved significantly, with the most recent designs providing relatively superior haemodynamics with very low aerodynamic resistance. However, high shearing of blood cells and platelets still pose significant design challenges and patients must undergo life-long anticoagulation therapy. Bioprosthetic or tissue valves do not require anticoagulants due to their distinct similarity to the native valve geometry and haemodynamics, but many of these valves fail structurally within the first 10-15 years of implantation. These shortcomings have directed present and future research in three main directions in attempts to design superior artificial valves: (i) engineering living tissue heart valves; (ii) development of advanced computational tools; and (iii) blood experiments to establish the link between flow and blood damage.
引用
收藏
页码:225 / 237
页数:13
相关论文
共 50 条
  • [31] FLOW DYNAMICS IN ARTIFICIAL HEART VALVES
    EFFERT, S
    ZEITSCHRIFT FUR KREISLAUFFORSCHUNG, 1970, 59 (07): : 648 - &
  • [32] Hydrodynamics of Modern Artificial Heart Valves
    Korchagin, S. I.
    Kuznetsova, E. I.
    Omelyanchuk, A. M.
    Yurechko, V. N.
    FLUID DYNAMICS, 2002, 37 (01) : 101 - 108
  • [33] CALCIFICATION OF ARTIFICIAL HEART-VALVES AND ARTIFICIAL HEARTS
    HENNIG, E
    KEILBACH, H
    HODER, D
    BUCHERL, ES
    ARTIFICIAL ORGANS, 1981, 5 (02) : 186 - 186
  • [34] Assessment of hydrodynamic properties of heart valves for artificial heart
    不详
    INTERNATIONAL JOURNAL OF ARTIFICIAL ORGANS, 2005, 28 (09): : 922 - 922
  • [35] FLUID MECHANICS OF MODEL NORMAL AND STENOSED AORTIC VALVES
    BELLHOUS.B
    BELLHOUS.F
    CIRCULATION RESEARCH, 1969, 25 (06) : 693 - &
  • [36] FLUID MECHANICS OF MODEL AORTIC AND MITRAL VALVES SUMMARY!
    BELLHOUSE, BJ
    PROCEEDINGS OF THE ROYAL SOCIETY OF MEDICINE-LONDON, 1970, 63 (10): : 996 - +
  • [37] ANEMIA IN PATIENTS WITH ARTIFICIAL HEART-VALVES
    HEILMANN, E
    BENDER, F
    THORAXCHIRURGIE VASKULARE CHIRURGIE, 1977, 25 (03): : 152 - 154
  • [38] EVALUATION OF MATERIALS FOR ARTIFICIAL-HEART VALVES
    BHUVANESHWAR, GS
    MURALEEDHARAN, CV
    RAMANI, AV
    VALIATHAN, MS
    BULLETIN OF MATERIALS SCIENCE, 1991, 14 (06) : 1363 - 1374
  • [39] TESTING OF MATERIALS FOR ARTIFICIAL HEART-VALVES
    HAWORTH, WS
    BRITISH POLYMER JOURNAL, 1978, 10 (04): : 297 - 301
  • [40] ACOUSTIC MONITORING OF ARTIFICIAL-HEART VALVES
    REYNOLDS, KJ
    STEPHEN, RO
    BLAKELEY, AGH
    JOURNAL OF PHYSIOLOGY-LONDON, 1993, 467 : P245 - P245