Investigation of the Effects of Dynamic Change in Curvature and Torsion on Pulsatile Flow in a Helical Tube

被引:3
|
作者
Selvarasu, N. K. C. [1 ]
Tafti, Danesh K. [1 ]
机构
[1] Virginia Polytech Inst & State Univ, Dept Mech Engn, Blacksburg, VA 24061 USA
关键词
Coronary artery motion; curvature; torsion; wall shear stress; oscillatory shear index; vorticity flux density; secondary flow patterns; RIGHT CORONARY-ARTERY; WALL SHEAR-STRESS; BLOOD-FLOW; ADAPTIVE REGULATION; CARDIAC MOTION; MODEL; GEOMETRY; FLUID;
D O I
10.1115/1.4006984
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Cardiovascular diseases are the number one cause of death in the world, making the understanding of hemodynamics and the development of treatment options imperative. The effect of motion of the coronary artery due to the motion of the myocardium is not extensively studied. In this work, we focus our investigation on the localized hemodynamic effects of dynamic changes in curvature and torsion. It is our objective to understand and reveal the mechanism by which changes in curvature and torsion contribute towards the observed wall shear stress distribution. Such adverse hemodynamic conditions could have an effect on circumferential intimal thickening. Three-dimensional spatiotemporally resolved computational fluid dynamics (CFD) simulations of pulsatile flow with moving wall boundaries were carried out for a simplified coronary artery with physiologically relevant flow parameters. A model with stationary walls is used as the baseline control case. In order to study the effect of curvature and torsion variation on local hemodynamics, this baseline model is compared to models where the curvature, torsion, and both curvature and torsion change. The simulations provided detailed information regarding the secondary flow dynamics. The results suggest that changes in curvature and torsion cause critical changes in local hemodynamics, namely, altering the local pressure and velocity gradients and secondary flow patterns. The wall shear stress (WSS) varies by a maximum of 22% when the curvature changes, by 3% when the torsion changes, and by 26% when both the curvature and torsion change. The oscillatory shear stress (OSI) varies by a maximum of 24% when the curvature changes, by 4% when the torsion changes, and by 28% when both the curvature and torsion change. We demonstrate that these changes are attributed to the physical mechanism associating the secondary flow patterns to the production of vorticity (vorticity flux) due to the wall movement. The secondary flow patterns and augmented vorticity flux affect the wall shear stresses. As a result, this work reveals how changes in curvature and torsion act to modify the near wall hemodynamics of arteries. [DOI: 10.1115/1.4006984]
引用
收藏
页数:17
相关论文
共 50 条
  • [21] Turbulent flow and heat transfer in a new type of internally torsion-ribbed helical tube
    Wu, Jiayong
    Xu, Fang
    Zhang, Lin
    Xi, Ying
    Liu, Yi
    Zhang, Xi
    Zhou, Chengman
    Zhao, Youchang
    CHEMICAL ENGINEERING AND PROCESSING-PROCESS INTENSIFICATION, 2024, 200
  • [22] A simple computational model of the right coronary artery on the beating heart - effects of the temporal change of curvature and torsion on the blood flow
    Hayashi, H
    Yamaguchi, T
    BIORHEOLOGY, 2002, 39 (3-4) : 395 - 399
  • [23] Flow instabilities and transient convective heat transfer in a helical coiled tube with pulsatile steam-water two phase flow
    Chen, XJ
    Guo, LJ
    MULTIPHASE FLOW AND HEAT TRANSFER, 1999, : 14 - 36
  • [24] ROLE OF NON-NEWTONIAN EFFECTS IN PULSATILE FLOW OF FLUID IN VISCOELASTIC TUBE
    FLAUD, P
    QUEMADA, D
    REVUE DE PHYSIQUE APPLIQUEE, 1980, 15 (03): : 749 - 759
  • [25] Transverse flow under oscillating stimulation in helical square ducts with cochlea-like geometrical curvature and torsion
    Harte, N. C.
    Obrist, D.
    Caversaccio, M.
    Lajoinie, G. P. R.
    Wimmer, W.
    EUROPEAN JOURNAL OF MECHANICS B-FLUIDS, 2024, 107 : 165 - 174
  • [26] Numerical Investigation on the Effects of the Pulsatile Blood Flow in a Stenosed Coronary Bypass
    Tehrani, Pedram
    Rostami, Majid
    Karimi, Alireza
    JOURNAL OF ADVANCED PHYSICS, 2018, 7 (01) : 43 - 48
  • [27] Experimental investigation and numerical simulation of choked refrigerant flow through helical adiabatic capillary tube
    Shokouhmand, Hossien
    Zareh, Masoud
    APPLIED THERMAL ENGINEERING, 2014, 63 (01) : 119 - 128
  • [28] Frequency dependence of dynamic curvature effects on flow through coronary arteries
    Moore, JE
    Weydahl, ES
    Santamarina, A
    JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 2001, 123 (02): : 129 - 133
  • [29] Numerical investigation on effects of using segmented and helical tube fins on thermal performance and efficiency of a shell and tube heat exchanger
    Amini, Reza
    Amini, Mohsen
    Jafarinia, Alireza
    Kashfi, Mehdi
    APPLIED THERMAL ENGINEERING, 2018, 138 : 750 - 760
  • [30] Numerical investigation of heat transfer in annulus laminar flow of multi tubes-in-tube helical coil
    S. A. Nada
    H. F. Elattar
    A. Fouda
    H. A. Refaey
    Heat and Mass Transfer, 2018, 54 : 715 - 726