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A Liquid-Solid Coupling Hemodynamic Model with Microcirculation Load

机译:具有微循环载荷的液固耦合血流动力学模型

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From the aspect of human circulation system structure, a complete hemodynamic model requires consideration of the influence of microcirculation load effect. This paper selected the seepage in porous media as the simulant of microcirculation load. On the basis of a bi-directional liquid-solid coupling tube model, we built a liquid-solid-porous media seepage coupling model. The simulation parameters accorded with the physiological reality. Inlet condition was set as transient single-pulse velocity, and outlet as free outlet. The pressure in the tube was kept at the state of dynamic stability in the range of 80–120 mmHg. The model was able to simulate the entire propagating process of pulse wave. The pulse wave velocity simulated was 6.25 m/s, which accorded with the physiological reality. The complex pressure wave shape produced by reflections of pressure wave was also observed. After the model changed the cardiac cycle length, the pressure change according with actual human physiology was simulated successfully. The model in this paper is well-developed and reliable. It demonstrates the importance of microcirculation load in hemodynamic model. Moreover the properties of the model provide a possibility for the simulation of dynamic adjustment process of human circulation system, which indicates a promising prospect in clinical application.
机译:从人体循环系统结构的角度来看,完整的血液动力学模型需要考虑微循环负荷效应的影响。本文选择多孔介质中的渗流作为微循环载荷的模拟。在双向液固耦合管模型的基础上,建立了液固多孔介质渗流耦合模型。仿真参数符合生理现实。入口条件设置为瞬时单脉冲速度,出口设置为自由出口。管中的压力保持在80–120 mmHg范围内的动态稳定性状态。该模型能够模拟整个脉搏波传播过程。模拟的脉搏波速度为6.25 m / s,符合生理现实。还观察到由压力波反射产生的复杂压力波形。模型改变了心动周期长度后,成功模拟了根据实际人体生理状况的压力变化。本文中的模型是完善且可靠的。它证明了微循环负荷在血液动力学模型中的重要性。此外,该模型的性质为模拟人体循环系统的动态调节过程提供了可能性,这为临床应用提供了广阔的前景。

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