CC BY-NC-ND 4.0 · Journal of Health and Allied Sciences NU 2013; 03(02): 058-062
DOI: 10.1055/s-0040-1703655
Original Article

THERMOREGULATION IN THE HEART AND THE BIOPHYSICS OF CORONARY ARTERIAL FLOW

Arunachalam Kumar
1   Professor of Anatomy, K. S. Hegde Medical Academy, NITTE University Mangalore - 575 018 India
› Author Affiliations

Abstract

The right and left coronary arteries are the principal sources of supply of oxygenated blood to the heart. Arising from the proximal rim of the ascending aorta, these arteries course along and over the surface of the organ, sending out branches that penetrate axial blood flow through arteries is governed or maintained by multifarious physical laws.

The heart, an electrically stimulated muscular pump, squirts and receives circulating blood through its systolic and diastolic exertions. The non-stop life-long rapid action of the organ not just expends enormous energy but also generates considerable heat. While there are a number of factors that help the heart dissipate and reduce heat, a few other biophysical factors contribute hugely to maintain a thermostatic milieu.

Circulation through vessels is maintained with a high degree of efficiency through combined actions of ejection systolic pressure, elasticity of the conducting arterial channels, and the proximo-distal decrease in diameters of arteries.

This brief write-up discusses some of physics regulatng fluid flow dynamics and attempts to exemplify the significant role of 'centrifugal force' as a hitherto overlooked physical force in coronary haemodynamics. The application of biophysical postulates to cardiac cycle may help in furthering our understanding of coronary blood circulation and the multi-factorial influences on its functional integrity. It is inferenced that, the finding may have a number of applications and result in a better understanding of cardiac circulatory dynamics.



Publication History

Article published online:
27 April 2020

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  • References

  • 1 Hutchins GM, Miner MM, Boitnott JK.; Vessel caliber and branchangle of human coronary artery branch-points. Circ Res. 1976; 38(6):572-6.
  • 2 Pflederer T, Ludwig J, Ropers D, Daniel WG, Achenbach S.; Measurement of coronary artery bifurcation angles by multidetector computed tomography Invest Radiol. 2006; 41(11):793-8.
  • 3 Duncker DJ, Bache RJ.; Regulation of coronary blood flow during exercise. Physiol Rev.2008; 88(3):1009-86.
  • 4 Kumar JC & Arunachalam Kumar.; The biophysics and hemodynamics nd of coronary arterial flow. Proceedings of the 5 2nd Annual Conference, A. S. I., 2004
  • 5 Kumar JC & Arunachalam Kumar.; Coronary arterial array and hemodynamics, Karnataka State Conference of the Cardiological Society of India, 2005
  • 6 Kumar JC & Arunachalam Kumar; Coronary arterial geometry and cardiac circulation, Proceedings of the Indo-Australian Conference, Manipal, 2005
  • 7 Kumar JC & Arunachalam Kumar; The physiodynamics and biomechanics of cardiac apex. BMJ (S. Asian Ed) 20; 3; 19-20, 2004
  • 8 Arunachalam Kumar & Hegde BM.; Chaos Theory: Impact on and Applications in Medicine. Nitte University Journal of Health Science 2012, 2(4)93-99