단기적 자율조절기능을 포함하는 심혈관계 혈류역학 모델링에 관한 수치적 연구

Computational Study on the Hemodynamics of Cardiovascular System Including Short-term Auto-regulation Functions

  • 심은보 (금오공과대학교 기계공학부) ;
  • 정찬일 ((주)디지털바이오테크놀러지) ;
  • 최한고 (금오공과대학교 전자공학과)
  • 발행 : 2001.10.01

초록

전체 심혈관계의 혈류역학적 특성을 분석할 수 있는 수치해석 방법을 개발하였다. 이는 12개의 요소들로 구성된 lumped parameter모델에 기초하고 있으며 인체의 신경계에 의한 자율조절기능을 모사하기 위해 주로 혈압의 단기적 조절을 위한.baroreflex system뿐 아니라 cardiopulmonary reflex 메커니즘가지도 구현하여 모델에 포함시켰다. 또한 교감 및 부교감 신경에 의한 자극-반응 전달을 구현함에 있어 생리학적 데이터에 기초한 방법을 사용하였다. 본 연구의 수치해석 코드를 검증하기 위하여 우선 보통 상태의 심혈관계에 대하여 혈류역학적 계산 결과를 기존의 참고문헌들에서의 값들과 비교 검토하였다. 심혈관계 모델의 혈류역학적 자극에 대한 반응 결과를 조사하기 위하여. 20% 출혈이 발생하는 경우와 LBNP(Lower Body Negative Pressure) 모사를 수행하였다. 두 경우 모두. 비교적 실험치와 잘 일cl하고 있음을 확인할 수 있었다. 특히 LBNP 수행 시, 외부압력의 크기가 커질수록 baroreflex만을 포함하고 있는 방법은 baroreflex와 cardiopulmonary reflex 모두를 포함하고 있는 방법에 비하여 다소 부정확한 결과를 보여주고 있는데. 이는 cardiopulmonary reflex 메커니즘의 중요성을 보여주고 있다.

A computational model representative of cardiovascular circulation was built using 12 standard lumped compartments. Especially, both the baroreceptor reflex and the cardiopulmonary reflex control model were implemented to explain the auto-regulation of cardiovascular system. Another important aspect of this model is to utilize the impulse-response curve of the nerve system in transferring the impulse error signals to autonomous nerve system. For the verification of this model, we have computed the normal hemodynamic conditions and compared those with the clinical data. Then. hemodynamic shock of 20% hemorrhage to cardiovascular system was simulated to test the effects of the control system model. The results of these two simulations were well matched with the experimental ones. The steady state LBNP simulation was also performed. The transient changes of hemodynamic variables due to ramp increase of bias pressure of LBNP showed good agreement with the physiological experiments. Numerical solution using only the baroreflex model showed relatively a larger deviation from the experimental data. compared with the one using the control model haying both the baroreflex and the cardiopulmonary reflex systems, which shows an important role of the cardiopulmonary reflex system for the simulation of the hemodynamic behavior of the cardiovascular system .

키워드

참고문헌

  1. Regulation and Exchange A Physical Approach to Hemodynamic Aspects of the HumanCardiovascular System, in Physical Bases of Circulatory Transport J.E.W. Beneken;B. DeWitt
  2. Handbook of Physiology, Section 2;The Cardiovascular System v.Ⅲ Baroreflex control of the systemic arterial pressure and vascular bed K. Sagawa
  3. J. Gravit. Physiol. v.1 Mechanisms of Post-Flight Orthostatic Intolerance C.G. Blomqvist
  4. Med. Biol. Eng. Comput. v.35 Computer simulation in patient with total cavo-pulmonary connection;inter-relationship of cardiac and vascular pressure, flow, resistence and capacitance A. Rydberg;D.E. Teien;P. Krus
  5. J. Clin. Monit. v.8 no.1 Cardiovascular simulation using a multiple modeling method on a digital computer--simulation of interaction between the cardiovascular system and angiotensin Ⅱ T. Masuzawa;Y. Fukui;N.T. Smith
  6. The Quarterly Review of Biology v.34 no.2 Integrative cardiovascular physiology;A methematical synthesis of cardiac and blood vessel hemodynamics F.S. Grodins
  7. Med. Biol. Eng. Comput. v.20 Pulsatile mechanical and mathematical model of the cardiovascular system J. Dagen
  8. Crit. Reviews in Biomedical Engineering v.7 no.3 Models of ventricular contraction based on time varying elastance K. Sunagawa
  9. Am. J. Phys. v.25 Low frequency oscillations in arterial pressure and heart rate;a simple computer model J.B. Madwed
  10. Am J Physiol v.275 Interaction between carotid baroregulation and the pulsating heart;a mathematical model M. Ursino
  11. Artificial Organs v.21 Modeling arterial hypertension during hemodialysis Ursino, M.
  12. Med Sci Sport Exerc v.28 no.Sup. 10 Orthostatic hypotension and the role of changes in venous capacitance J.V. Tyberg;D.R. Hamilton
  13. Teaching Physiology Through Interactive Simulation of Hemodynamics T.L. Davis
  14. Math. Biosci. v.72 Some problems and solutions for modeling overall cardiovascular regulation A.C. Guyton
  15. Proceedings of Fifth Annual Pittsburgh Conference on Modeling and Simulation Cardiovascular Model for the Simulation of Exercise, Lower Body Negative Pressure, and Tilt Experiments R.C. Croston;D.G. Fitzjerrell
  16. Angiology v.6 A medical massage suit for continuous wear J.P. Henry;O.L. Slaughter;T. Greiner
  17. Cardiovascular Fluid Dynamics Pulmonary hemodynamics W.R. Milnor
  18. Acta Physiol. Pharm. Neerl. v.12 Theoretical Synthesis of the Cardiovascular System. Study Ⅰ;The Controlled System J.G. Defares;J.J. Osborne;H.H. Hara
  19. Crit. Reviews in Biomedical Engineering v.7 no.3 Models of ventricular contraction based on time varying elactance K. Sunagawa;K. Sagawa
  20. Textbook of Medical Physiology(Seventh ed.) A.C. Guyton
  21. American Journal of Physiology v.253 no.22 Hemodynamic fluctuations and baroreflex sensitivity in humans;A beat-to-beat model R.W. DeBoer
  22. Am J Physiol v.256 Transfer function analysis of autonomic regulation. Ⅰ. Canine artial rate response R.D. Berger;J.P. Saul;R.J. Cohen
  23. Am J Physiol v.262 Mathematical modeling of human cardiovascular system for simulation of orthostatic response F.M. Melchior;R.S. Srinivasan;J.B. Charles
  24. Circ Res v.47 Epinephrine and the carotid sinus reflex;influence on capacitive and resistive properties of the total systemic vascular bed of the dog A.A. Shoukas;M.C. Brunner
  25. Am J Physiol v.257 no.5 Reductions in central venous pressure imporve carotid baroreflex responses in conscious men J.A. Pawelczyk;P.B. Raven
  26. Circ. Res. v.18 Hemodynamic and metabolic effects of hemorrhage in man, with particular reference to the splanchnic circulation H.L. Price
  27. Normal Physiology of the Cardiovascular System R.C. Schlant;E.H. Sonnenblick;A.M. Katz
  28. Circulatory Response to the Upright Posture General Response to Orthostatic Stress J.J. Smith;T.J. Ebert;J.J. Smith(ed.)
  29. J. Clin. Invest v.16 Clinical Studies of the Blood Volume. Ⅱ The Relation of Plasma and Total Blood Volume to Venous Pressure, Blood Velocity Rate Physical Measurements, Age and Sex in Ninety Normal Humans J.G. Gibson;W.A. Evans
  30. Amer. J. Physiol. v.243 Carotid sinus reflex in reflex in response to hemorrhage M. Kumada;K. Schmidt;K. Sagawa;K.S. Tan
  31. IEEE Trans Biomed Eng v.46 no.4 A mathematical model of the carotid baroregluation in pulsating conditions M. Ursino
  32. Avit. Space Envir. Med. v.48 Cardiovascular responses of men and women to lower body negative pressure L.D. Montgomery;P.J. Kirk;P.A. Payne;R.L. Gerber;S.D. Newton;B.A. Williams
  33. Handbook of physiology;Section 1 Cardiovascular system v.3 no.2 Cardiovascular adjustments to gravitational stress G. Bolmqvist
  34. Aviat Space Environ Med v.46 no.5 Response of local vascular volumes to lower body negative pressure stress R.A. Wolthuis;A. LeBlanc;W.A. Carpentier;S.A. Jr. Bergman
  35. Acta Physiol Scand v.147 no.2 Dynamics of transcapillary fluid transfer and plasma volume during lower body negative pressure J. Lundvall;P. Bjerkhoel;H. Edfeldt;C. Ivarsson;T. Lanne
  36. Circ Res v.34 no.4 Human splanchnic and forearm vasoconstrictor responses to reductions of right atrial and aortic pressures J.M. Johnson;L.B. Rowell;M. Niederberger;M.M. Eisman