Medical Engineering & Physics
Volume 30, Issue 1 , Pages 9-19, January 2008

Non-Newtonian models for molecular viscosity and wall shear stress in a 3D reconstructed human left coronary artery

  • Johannes V. Soulis

      Affiliations

    • Fluid Mechanics, Demokrition University of Thrace, Xanthi, Greece
  • ,
  • George D. Giannoglou

      Affiliations

    • Cardiovascular Engineering and Atherosclerosis Laboratory, 1st Cardiology Department, AHEPA University Hospital, Aristotle University of Thessaloniki, 1 St. Kyriakidi Street, 54636 Thessaloniki, Greece
    • Corresponding Author InformationCorresponding author at: AHEPA University Hospital, Aristotle University of Thessaloniki, 1 St. Kyriakidi Street, 54636 Thessaloniki, Greece. Tel.: +30 2310994837; fax: +30 2310994837.
  • ,
  • Yiannis S. Chatzizisis

      Affiliations

    • Cardiovascular Engineering and Atherosclerosis Laboratory, 1st Cardiology Department, AHEPA University Hospital, Aristotle University of Thessaloniki, 1 St. Kyriakidi Street, 54636 Thessaloniki, Greece
  • ,
  • Kypriani V. Seralidou

      Affiliations

    • Fluid Mechanics, Demokrition University of Thrace, Xanthi, Greece
  • ,
  • George E. Parcharidis

      Affiliations

    • Cardiovascular Engineering and Atherosclerosis Laboratory, 1st Cardiology Department, AHEPA University Hospital, Aristotle University of Thessaloniki, 1 St. Kyriakidi Street, 54636 Thessaloniki, Greece
  • ,
  • George E. Louridas

      Affiliations

    • Cardiovascular Engineering and Atherosclerosis Laboratory, 1st Cardiology Department, AHEPA University Hospital, Aristotle University of Thessaloniki, 1 St. Kyriakidi Street, 54636 Thessaloniki, Greece

Received 10 July 2006; received in revised form 26 January 2007; accepted 4 February 2007. published online 05 April 2007.

Abstract 

The capabilities and limitations of various molecular viscosity models, in the left coronary arterial tree, were analyzed via: molecular viscosity, local and global non-Newtonian importance factors, wall shear stress (WSS) and wall shear stress gradient (WSSG). The vessel geometry was acquired using geometrically correct 3D intravascular ultrasound (3D IVUS). Seven non-Newtonian molecular viscosity models, plus the Newtonian one, were compared. The WSS distribution yielded a consistent LCA pattern for nearly all non-Newtonian models. High molecular viscosity, low WSS and low WSSG values occured at the outer walls of the major bifurcation in proximal LCA regions. The Newtonian blood flow was found to be a good approximation at mid- and high-strain rates. The non-Newtonian Power Law, Generalized Power Law, Carreau and Casson and Modified Cross blood viscosity models gave comparable molecular viscosity, WSS and WSSG values. The Power Law and Walburn–Schneck models over-estimated the non-Newtonian global importance factor IG and under-estimated the area averaged WSS and WSSG values. The non-Newtonian Power Law and the Generalized Power Law blood viscosity models were found to approximate the molecular viscosity and WSS calculations in a more satisfactory way.

Keywords: Non-Newtonian blood flow, Wall shear stress, Coronary artery, Intravascular ultrasound

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PII: S1350-4533(07)00033-1

doi:10.1016/j.medengphy.2007.02.001

Medical Engineering & Physics
Volume 30, Issue 1 , Pages 9-19, January 2008