Implicit Partitioned Cardiovascular Fluid-Structure Interaction of the Heart Cycle Using Non-newtonian Fluid Properties and Orthotropic Material Behavior

被引:4
|
作者
Muehlhausen, M. -P. [1 ]
Janoske, U. [2 ]
Oertel, H., Jr. [1 ]
机构
[1] Karlsruhe Inst Technol, Inst Fluid Mech, Kaiserstr 10,Bldg 10-23, D-76131 Karlsruhe, Germany
[2] Berg Univ Wuppertal, Chair Fluid Mech, Wuppertal, Germany
关键词
Blood flow; Orthotropic; Active contraction; KaHMo; LEFT-VENTRICLE; FIBER ORIENTATION; LAMINAR STRUCTURE; BLOOD-FLOW; MYOCARDIUM; DIASTOLE; SYSTOLE; MODEL; LAW;
D O I
10.1007/s13239-014-0205-7
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Although image-based methods like MRI are well-developed, numerical simulation can help to understand human heart function. This function results from a complex interplay of biochemistry, structural mechanics, and blood flow. The complexity of the entire system often causes one of the three parts to be neglected, which limits the truth to reality of the reduced model. This paper focuses on the interaction of myocardial stress distribution and ventricular blood flow during diastole and systole in comparison to a simulation of the same patient-specific geometry with a given wall movement (Spiegel, Stromungsmechanischer Beitrag zur Planung von Herzoperationen, 2009). The orthotropic constitutive law proposed by Holzapfel et al. (Philos. Trans. R. Soc. Lond. Ser. A, 367: 3445-3475, 2009) was implemented in a finite element package to model the passive behavior of the myocardium. Then, this law was modified for contraction. Via the ALE method, the structural model was coupled to a flow model which incorporates blood rheology and the circulatory system (Oertel, Prandtl-Essentials of Fluid Mechanics, 3rd edn, Springer Science + Business Media, 2010; Oertel et al., Modelling the Human Cardiac Fluid Mechanics, 3rd edn, Universitatsverlag Karlsruhe, 2009). Comparison reveals a good quantitative and qualitative agreement with respect to fluid flow. The motion of the myocardium is consistent with physiological observations. The calculated stresses and the distribution are within the physiological range and appear to be reasonable. The coupled model presented contains many features essential to cardiac function. It is possible to calculate wall stresses as well as the characteristic ventricular fluid flow. Based on the simulations we derive two characteristics to assess the health state quantitatively including solid and fluid mechanical aspects.
引用
收藏
页码:8 / 18
页数:11
相关论文
共 50 条
  • [1] Implicit Partitioned Cardiovascular Fluid–Structure Interaction of the Heart Cycle Using Non-newtonian Fluid Properties and Orthotropic Material Behavior
    M.-P. Muehlhausen
    U. Janoske
    H. Oertel
    [J]. Cardiovascular Engineering and Technology, 2015, 6 : 8 - 18
  • [2] Fluid-Structure Interaction of a thin cylindrical shell filled with a non-Newtonian fluid
    Zippo, Antonio
    Iarriccio, Giovanni
    Bergamini, Luca
    Colombini, Elena
    Veronesi, Paolo
    Pellicano, Francesco
    [J]. JOURNAL OF FLUIDS AND STRUCTURES, 2023, 117
  • [3] Efficiency and accuracy of fluid-structure interaction simulations using an implicit partitioned approach
    D. C. Sternel
    M. Schäfer
    M. Heck
    S. Yigit
    [J]. Computational Mechanics, 2008, 43 : 103 - 113
  • [4] Efficiency and accuracy of fluid-structure interaction simulations using an implicit partitioned approach
    Sternel, D. C.
    Schaefer, M.
    Heck, M.
    Yigit, S.
    [J]. COMPUTATIONAL MECHANICS, 2008, 43 (01) : 103 - 113
  • [5] Fluid-structure interaction modeling of lactating breast: Newtonian vs. non-Newtonian milk
    Azarnoosh, Jamasp
    Hassanipour, Fatemeh
    [J]. JOURNAL OF BIOMECHANICS, 2021, 124
  • [6] Non-Newtonian fluid-structure interaction: Flow of a viscoelastic Oldroyd-B fluid in a deformable channel
    Boyko, Evgeniy
    Christov, Ivan C.
    [J]. JOURNAL OF NON-NEWTONIAN FLUID MECHANICS, 2023, 313
  • [7] On the existence of weak solution to the coupled fluid-structure interaction problem for non-Newtonian shear-dependent fluid
    Hundertmark-Zauskova, Anna
    Lukacova-Medvidova, Maria
    Necasova, Sarka
    [J]. JOURNAL OF THE MATHEMATICAL SOCIETY OF JAPAN, 2016, 68 (01) : 193 - 243
  • [8] Implicit coupling of partitioned fluid-structure interaction problems with reduced order models
    Vierendeels, Jan
    Lanoye, Lieve
    Degroote, Joris
    Verdonck, Pascal
    [J]. COMPUTERS & STRUCTURES, 2007, 85 (11-14) : 970 - 976
  • [9] Topology optimization of structures subject to non-Newtonian fluid-structure interaction loads using integer linear programming
    Ranjbarzadeh, S.
    Picelli, R.
    Gioria, R.
    Silva, E. C. N.
    [J]. FINITE ELEMENTS IN ANALYSIS AND DESIGN, 2022, 202
  • [10] A 3D non-Newtonian fluid-structure interaction model for blood flow in arteries
    Janela, Joao
    Moura, Alexandra
    Sequeira, Adelia
    [J]. JOURNAL OF COMPUTATIONAL AND APPLIED MATHEMATICS, 2010, 234 (09) : 2783 - 2791