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A coupled mitral valve-left ventricle model with fluid-structure interaction

机译:具有流体结构相互作用的耦合二尖瓣左心室模型

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Understanding the interaction between the valves and walls of the heart is important in assessing and subsequently treating heart dysfunction. This study presents an integrated model of the mitral valve (MV) coupled to the left ventricle (LV), with the geometry derived from in vivo clinical magnetic resonance images. Numerical simulations using this coupled MV-LV model are developed using an immersed boundary/finite element method. The model incorporates detailed valvular features, left ventricular contraction, nonlinear soft tissue mechanics, and fluid-mediated interactions between the MV and LV wall. We use the model to simulate cardiac function from diastole to systole. Numerically predicted LV pump function agrees well with in vivo data of the imaged healthy volunteer, including the peak aortic flow rate, the systolic ejection duration, and the LV ejection fraction. In vivo MV dynamics are qualitatively captured. We further demonstrate that the diastolic filling pressure increases significantly with impaired myocardial active relaxation to maintain a normal cardiac output. This is consistent with clinical observations. The coupled model has the potential to advance our fundamental knowledge of mechanisms underlying MV-LV interaction, and help in risk stratification and optimisation of therapies for heart diseases. (C) 2017 The Author(s). Published by Elsevier Ltd on behalf of IPEM.
机译:了解心脏瓣膜和墙壁之间的相互作用对于评估和随后治疗心脏功能障碍是重要的。该研究介绍了耦合到左心室(LV)的二尖瓣(MV)的集成模型,其几何形状来自于体内临床磁共振图像。使用该耦合MV-LV模型的数值模拟使用浸没边界/有限元方法开发。该模型包括详细的瓣膜特征,左心室收缩,非线性软组织力学和MV和LV壁之间的流体介导的相互作用。我们使用模型来模拟从舒张到Systole的心功能。数值预测的LV泵功能与成像健康志愿者的体内数据相一致,包括峰主动脉率,收缩射精持续时间和LV喷射部分。体内MV动态被定性捕获。我们进一步证明,舒张灌浆压力显着随着心肌活性松弛而显着增加,以保持正常的心脏输出。这与临床观察一致。耦合模型有可能推进我们对MV-LV相互作用的机制的基础知识,并有助于风险分层和心脏病疗法的优化。 (c)2017年作者。 elsevier有限公司代表IPEM发布。

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