Hemodynamic energy dissipation in the cardiovascular system: generalized theoretical analysis on disease states

Lakshmi P Dasi1, Kerem Pekkan, Diane de Zelicourt

  • 1Wallace H. Coulter School of Biomedical Engineering, Georgia Institute of Technology and Emory University, Room 2119, U. A. Whitaker Building, 313 Ferst Drive, Atlanta, GA 30332-0535, USA.

Insights

A new theoretical framework quantifies energy dissipation in circulation. New indices like CEDI, AV-EDI, and TCPC-EDI allow precise hemodynamic evaluation of vascular diseases and surgical connections.

Area of Science:

  • Cardiovascular Physiology
  • Biomedical Engineering
  • Theoretical Physics

Background:

  • A fundamental theoretical framework for analyzing energy dissipation in the circulatory system is presented.
  • The full energy budget for venous and arterial circulations is formulated.
  • New indices enable disease-specific comparisons and hemodynamic evaluation of vascular diseases.

Purpose of the Study:

  • To develop a theoretical framework for energy dissipation analysis in the human circulation.
  • To formulate a comprehensive energy budget for both venous and arterial circulations.
  • To introduce new indices for quantifying hemodynamic severity and comparing disease states.

Main Methods:

  • Dimensional analysis of energy dissipation rate in human circulation.
  • Formulation of a complete energy budget for the circulatory system.
  • Development and application of novel indices: Circulation Energy Dissipation Index (CEDI), Aortic Valve Energy Dissipation Index (AV-EDI), and Total Cavopulmonary Connection Energy Dissipation Index (TCPC-EDI).

Main Results:

  • Energy dissipation rate is inversely proportional to body surface area squared and directly proportional to cardiac output cubed.
  • CEDI values are 4.01±0.16 in healthy individuals and >7.0 in severe aortic stenosis.
  • Fontan circulation shows progressive hemodynamic degradation with growth, equivalent to severe aortic stenosis.
  • AV-EDI is ~0.28±0.12 in healthy valves, increasing significantly with stenosis severity.
  • TCPC-EDI correlates negatively with pulmonary artery size in the TCPC pathway.

Conclusions:

  • Energy dissipation in human circulation has been theoretically analyzed to derive proper scaling factors.
  • CEDI, AV-EDI, and TCPC-EDI are validated as accurate measures of circulatory, aortic valve, and Fontan connection dissipative characteristics, respectively.
Abstract

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