Mechanical response in elastic fluid flow networks

被引:3
|
作者
Fancher, Sean [1 ]
Katifori, Eleni [1 ]
机构
[1] Univ Penn, Dept Phys & Astron, Philadelphia, PA 19104 USA
基金
美国国家科学基金会;
关键词
BLOOD-FLOW; ARTERIAL STIFFNESS; WAVE REFLECTIONS; MODEL; PRESSURE; PROPAGATION; VELOCITY; TIME;
D O I
10.1103/PhysRevFluids.7.013101
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
The dynamics of flow within a material transport network is dependent upon the dynamics of its power source. Responding to a change of these dynamics is critical for the fitness of living flow networks, e.g., the animal vasculature, which are subject to frequent and sudden shifts when the pump (the heart) transitions between different steady states. The combination of flow resistance, fluid inertia, and elasticity of the vessel walls causes the flow and pressure of the fluid throughout the network to respond to these transitions and adapt to the new power source operating profiles over a nonzero timescale. We find that this response time can exist in one of two possible regimes; one dominated by the decay rate of traveling wavefronts and independent of system size, and one dominated by the diffusive nature of the fluid mechanical energy over large length scales. These regimes are shown to exist for both single vessels and hierarchically structured networks with systems smaller than a critical size in the former and larger systems in the latter. Applying biologically relevant parameters to the model suggests that animal vascular networks may have evolved to occupy a state within the minimal response time regime but close to this critical system size.
引用
收藏
页数:23
相关论文
共 50 条
  • [1] Mechanical properties of primary cilia regulate the response to fluid flow
    Rydholm, Susanna
    Zwartz, Gordon
    Kowalewski, Jacob M.
    Kamali-Zare, Padideh
    Frisk, Thomas
    Brismar, Hjalmar
    AMERICAN JOURNAL OF PHYSIOLOGY-RENAL PHYSIOLOGY, 2010, 298 (05) : F1096 - F1102
  • [2] Calcium response in osteocytic networks under steady and oscillatory fluid flow
    Lu, X. Lucas
    Huo, Bo
    Park, Miri
    Guo, X. Edward
    BONE, 2012, 51 (03) : 466 - 473
  • [3] Rimming flow of a weakly elastic fluid
    Fomin, S.
    Shankar, R.
    Danes, N.
    Yasuda, A.
    Chugunov, V.
    THEORETICAL AND COMPUTATIONAL FLUID DYNAMICS, 2014, 28 (05) : 485 - 498
  • [4] Rimming flow of a weakly elastic fluid
    S. Fomin
    R. Shankar
    N. Danes
    A. Yasuda
    V. Chugunov
    Theoretical and Computational Fluid Dynamics, 2014, 28 : 485 - 498
  • [5] Viscous fluid flow in an elastic pipeline
    Volobuev A.N.
    Tolstonogov A.P.
    Russ. Aeronaut., 2008, 4 (369-376): : 369 - 376
  • [6] FLOW OF FLUID THROUGH AN ELASTIC SOLID
    GREEN, AE
    NAGHDI, PM
    ACTA MECHANICA, 1970, 9 (3-4) : 329 - &
  • [7] FLUID LOADING WITH MEAN FLOW .1. RESPONSE OF AN ELASTIC PLATE TO LOCALIZED EXCITATION
    CRIGHTON, DG
    OSWELL, JE
    PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY OF LONDON SERIES A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 1991, 335 (1639): : 557 - 592
  • [8] Vibration Response and Stress Analysis of Planar Elastic Tube Bundle Induced by Fluid Flow
    De-Rong Duan
    Pei-Qi Ge
    Wen-Bo Bi
    Yan-Ying Dong
    Chinese Journal of Mechanical Engineering, 2018, 31
  • [9] Vibration Response and Stress Analysis of Planar Elastic Tube Bundle Induced by Fluid Flow
    De-Rong Duan
    Pei-Qi Ge
    Wen-Bo Bi
    Yan-Ying Dong
    Chinese Journal of Mechanical Engineering, 2018, 31 (02) : 89 - 96
  • [10] Vibration Response and Stress Analysis of Planar Elastic Tube Bundle Induced by Fluid Flow
    Duan, De-Rong
    Ge, Pei-Qi
    Bi, Wen-Bo
    Dong, Yan-Ying
    CHINESE JOURNAL OF MECHANICAL ENGINEERING, 2018, 31 (01)