A Structural Analysis on the Leaflet Motion Induced by the Blood Flow for Design of a Bileaflet Mechanical Heart Valve Prosthesis

  • Kwon, Young-Joo (Department of Mechano-Informatics & Design Engineering, Hongik University) ;
  • Kim, Chang-Nyung (College of Mechanical & Industrial System Engineering, Kyunghee University) ;
  • Lee, Jae-Won (Department of Cardiac Surgery, University of Ulsan)
  • Published : 2003.09.01

Abstract

This paper presents a structural analysis on the rigid and deformed motion of the leaflet induced by the blood flow required in the design of a bileaflet mechanical heart valve (MHV) prosthesis. In the study on the design and the mechanical characteristics of a bileaflet mechanical heart valve, the fluid mechanics analysis on the blood flow passing through leaflets, the kinetodynamics analysis on the rigid body motion of the leaflet induced by the pulsatile blood flow, and the structural mechanics analysis on the deformed motion of the leaflet are required sequentially and simultaneously. Fluid forces computed in the previous hemodynamics analysis on the blood flow are used in the kinetodynamics analysis on the rigid body motion of the leaflet. Thereafter, the structural mechanics analysis on the deformed motion of the leaflet follows to predict the structural strength variation of the leaflet as the leaflet thickness changes. Analysis results show that structural deformations and stresses increase as the fluid pressure increases and the leaflet thickness decreases. Analysis results also show that the leaflet becomes structurally weaker and weaker as the leaflet thickness becomes smaller than 0.6 mm.

Keywords

References

  1. Alexandrov, N. and Hussaini, Y., (eds), 1997, 'Multidisciplinary Design Optimization: State of the Art,' SIAM Publications, Philadelphia, PA
  2. Charmis, C. C., 1999, 'Coupled Multidisciplinary Optimization of Engine Structural Performance,' Journal of Aircraft, Vol. 36, No.1, pp. 190-199 https://doi.org/10.2514/2.2425
  3. Choi, C. R., Kim, C. N. and Kwon, Y. J., 2000, 'Interaction of Blood Flow and Leaflet Behavior in a Bileaflet Mechanical Heart Valve,' J. of Biomed. Engr. Res. (in korea), Vol. 21, No.5, pp. 505-512
  4. Giesing, J. P., Agrawal, S. and Bharadvaj, B. K., 1995, 'The Role of Computational Fluid Dynamics in Multidisciplinary Design Optimization of Transport Aircraft,' Proceedings of the 6th International Symposium on Computational Fluid Dynamics, Technology and Operations Congress (Lake Tahoe, CA)
  5. King, M. J., Corden, J., David, T. and Fisher, J., 1996, 'A Three-Dimensional, Time-Dependent Analysis of flow Through a Bileaflet Mechanical Heart Valve: Comparison of Experimental and Numerical Results,' J. Biomechanics, Vol. 29, No.5, pp. 609-619 https://doi.org/10.1016/0021-9290(95)00107-7
  6. KSME International Journal v.15 no.3 Structural Analysis for the Determination of Design Variables of Spent Nuclear Fuel Disposal Canister Kwon,Y.J.;Kang,S.U.;Choi,J.W.;Kang,C.H.
  7. Kwon, Y. J., Kang, S. U., Choi, J. W. and Kang, C. H., 2001, 'Structural Analysis for the Determination of Design Variables of Spent Nuclear Fuel Disposal Canister,' KSME International Journal, Vol. 15, No.3, pp. 327-338
  8. Pantalos, G. M., Everrett, S. D., Mohammad, S. F., Burns, G. L., Solen, K. A., Reynolds, L. O. and Olsen, D. B., 1990, 'Quantification of Perivalvular Thrombus Formation in Blood Pumps by Coordinate Mapping,' Artificial Organs, Vol. 14, No.5, pp. 348-354 https://doi.org/10.1111/j.1525-1594.1990.tb02979.x
  9. Prager, W. and Taylor, J. E., 1968, 'Problems in Optimal Structural Design,' Journal of Applied Mechanics, Vol. 35, No.1, pp. 102-106 https://doi.org/10.1115/1.3601120
  10. Rowell, L. F., Braun, R. D., Olds, J. R. and Unal, R., 1999, 'Multidisciplinary Conceptual Design Optimization of Space Transportation Systems,' Journal of Aircraft, Vol. 36, No.1, pp.218-226 https://doi.org/10.2514/2.2428
  11. Rozvany, G. J. N., Zou, M. and Birker, T., 1994, 'Generalized Shape Optimization Without Homogenization,' Structural Optimization, Vol. 4, pp. 250-252 https://doi.org/10.1007/BF01742754
  12. Sobieszczanski-Sobieski, J., 1995, 'Multidisciplinary Design Optimization: An Emerging New Engineering Discipline,' Advances in Structural Optimization, edited by J. Herskovitz, Kluwer, Dordrecht, The Netherlands, pp.483-496
  13. Sobieszczanski-Sobieski, J. and Hafta, R., 1996, 'Multidisciplinary Aerospace Design Optimization: Survey of Recent Developments,' AlAA Papers 96-0711
  14. Stubbe, J., 1992, 'PAYCOS: A Multidisciplinary Design Optimization Tool for Hypersonic Vehicle Design,' Proceedings of the AIAA/USAF/NASA/OAI 4th Symposium on Multidisciplinary Analysis and Optimization (Cleveland OH), AIAA, Washington DC, pp.263-271
  15. Tappeta, R., Nagaendra, S. and Renaud, J. E., 1998, 'A Multidisciplinary Design Optimization Approach for High Temperature Aircraft Engine Components,' Proceedings of the AIAA/ASME/ASCE/AHS/ASC, 39th Structures, Structural Dynamics, and Materials Conference (Long Beach, CA), AIAA, Reston, VA, pp. 1055-1065
  16. Tolson, R. H. and Sobieszczanski-Sobieski, J., 1985, 'Multidisciplinary Analysis and Synthesis: Needs and Opportunities,' AIAA Paper No. 850584
  17. Vanderplaats, G. N., 1982, 'Structural Optimization-Past, Present and Future,' AIAA Journal, Vol. 20, No.7, pp. 992-1000 https://doi.org/10.2514/3.51158
  18. Yang, H. Q. and Makhijani, V. B., 1994, 'A Strongly Coupled Pressure-Based CFD Algorithms for Fluid-Structure Interaction,' Proceeding of 32nd Aerospace Sciences Meeting and Exhibit, Reno, NV, AIAA-94-0719
  19. Yoganathan, A. P., Corcoran, W. H., Harrison, E. C. and Cari, J. R., 1978, 'The Bjork-Shiley Aortic Prosthesis: Flow Characteristics, Thrombus Formation and Tissue Overgrowth,' Circulation, Vol. 58, pp. 70-76 https://doi.org/10.1161/01.CIR.58.1.70