Simulation of Left Ventricular Dynamics Using a Low-Order Mathematical Model

被引:0
作者
Michael J. Moulton
Brian D. Hong
Timothy W. Secomb
机构
[1] University of Nebraska Medical Center,Department of Surgery, Cardiothoracic Surgery
[2] University of Arizona,Program in Applied Mathematics
[3] University of Arizona,Department of Physiology
来源
Cardiovascular Engineering and Technology | 2017年 / 8卷
关键词
Cardiac mechanics; Diastolic heart failure; Mathematical model; Myocardial strain; Pressure–volume curve; Ventricular wall stress;
D O I
暂无
中图分类号
学科分类号
摘要
The eventual goal of this study is to develop methods for estimating dynamic stresses in the left ventricle (LV) that could be used on-line in clinical settings, based on routinely available measurements. Toward this goal, a low-order theoretical model is presented, in which LV shape is represented using a small number of parameters, allowing rapid computational simulations of LV dynamics. The LV is represented as a thick-walled prolate spheroid containing helical muscle fibers with nonlinear passive and time-dependent active contractile properties. The displacement field during the cardiac cycle is described by three time-dependent parameters, using a family of volume-preserving mappings based on prolate spheroidal coordinates. Stress equilibrium is imposed in weak form and the resulting force balance equations are coupled to a lumped-parameter model of the circulation, leading to a system of differential–algebraic equations, whose numerical solution yields predictions of LV pressure and volume, together with spatial distributions of stresses and strains throughout the cardiac cycle. When static loading of the passive LV is assumed, this approach yields displacement and stress fields that closely match results from a standard finite-element approach. When dynamic motion with active contraction is simulated, substantial variations of fiber stress and strain through the myocardium are predicted. This approach allows simulations of LV dynamics that run faster than real time, and could be used to determine patient-specific parameters of LV performance on-line from clinically available measurements, with the eventual goal of real-time, patient-specific analysis of cardiac parameters.
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页码:480 / 494
页数:14
相关论文
共 38 条
[21]   A mathematical model of biological resource dynamics, using Caspian/Ural sturgeon as a case study [J].
Gabbasov, Mars B. ;
Jaichibekov, Nurbolat Zh. ;
Lebedev, Daniel V. .
ICES JOURNAL OF MARINE SCIENCE, 2008, 65 (01) :103-110
[22]   A Fractional-Order Mathematical Model of Banana Xanthomonas Wilt Disease Using Caputo Derivatives [J].
Manickam, A. ;
Kavitha, M. ;
Jaison, A. Benevatho ;
Singh, Arvind Kumar .
CONTEMPORARY MATHEMATICS, 2024, 5 (01) :136-156
[23]   Analysis of temozolomide resistance in low-grade gliomas using a mechanistic mathematical model [J].
Ollier, Edouard ;
Mazzocco, Pauline ;
Ricard, Damien ;
Kaloshi, Gentian ;
Idbaih, Ahmed ;
Alentorn, Agusti ;
Psimaras, Dimitri ;
Honnorat, Jerome ;
Delattre, Jean-Yves ;
Grenier, Emmanuel ;
Ducray, Francois ;
Samson, Adeline .
FUNDAMENTAL & CLINICAL PHARMACOLOGY, 2017, 31 (03) :347-358
[24]   Evaluation of Left Ventricular Relaxation in Rotary Blood Pump Recipients Using the Pump Flow Waveform: A Simulation Study [J].
Moscato, Francesco ;
Granegger, Marcus ;
Naiyanetr, Phornphop ;
Wieselthaler, Georg ;
Schima, Heinrich .
ARTIFICIAL ORGANS, 2012, 36 (05) :470-478
[25]   THEORETICAL-STUDY ON AN OXYGEN BLAST-FURNACE USING MATHEMATICAL SIMULATION-MODEL [J].
YAMAOKA, H ;
KAMEI, Y .
ISIJ INTERNATIONAL, 1992, 32 (06) :701-708
[26]   Mathematical model of the lower extremity joint reaction forces using Kane's method of dynamics [J].
Komistek, RD ;
Stiehl, JB ;
Dennis, DA ;
Paxson, RD ;
Soutas-Little, RW .
JOURNAL OF BIOMECHANICS, 1998, 31 (02) :185-189
[27]   A Simulation Model for the Dynamics of a Population of Diabetics with and without Complications Using Optimal Control [J].
Boutayeb, Wiam ;
Lamlili, Mohamed E. N. ;
Boutayeb, Abdesslam ;
Derouich, Mohammed .
BIOINFORMATICS AND BIOMEDICAL ENGINEERING (IWBBIO 2015), PT I, 2015, 9043 :589-598
[28]   Mathematical model of astaxanthin purification process using the low-pressure column chromatography method [J].
Dewati, Putri Restu ;
Rochmadi ;
Rohman, Abdul ;
Budiman, Arief .
SOUTH AFRICAN JOURNAL OF CHEMICAL ENGINEERING, 2023, 45 :256-268
[29]   Prediction of COVID-19 transmission dynamics using a mathematical model considering behavior changes in Korea [J].
Kim, Soyoung ;
Seo, Yu Bin ;
Jung, Eunok .
EPIDEMIOLOGY AND HEALTH, 2020, 42
[30]   Improving alloreactive CTL immunotherapy for malignant gliomas using a simulation model of their interactive dynamics [J].
Natalie Kronik ;
Yuri Kogan ;
Vladimir Vainstein ;
Zvia Agur .
Cancer Immunology, Immunotherapy, 2008, 57 :425-439