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Left Ventricular Diastolic and Systolic Material Property Estimation from Image Data

机译:从图像数据估计左心室舒张期和收缩期物质特性

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Cardiovascular simulations using patient-specific geometries can help researchers understand the mechanical behavior of the heart under different loading or disease conditions. However, to replicate the regional mechanics of the heart accurately, both the nonlinear passive and active material properties must be estimated reliably. In this paper, automated methods were used to determine passive material properties while simultaneously computing the unloaded reference geometry of the ventricles for stress analysis. Two different approaches were used to model systole. In the first, a physiologically-based active contraction model coupled to a hemodynamic three-element Windkessel model of the circulation was used to simulate ventricular ejection. In the second, developed active tension was directly adjusted to match ventricular volumes at end-systole while prescribing the known end-systolic pressure. These methods were tested in four normal dogs using the data provided for the LV mechanics challenge. The resulting end-diastolic and end-systolic geometry from the simulation were compared with measured image data.
机译:使用特定于患者的几何形状的心血管模拟可以帮助研究人员了解在不同负荷或疾病条件下心脏的机械行为。但是,为了准确地复制心脏的局部力学,必须可靠地估计非线性被动和主动材料的性能。在本文中,使用自动方法确定被动材料的性能,同时计算心室的未加载参考几何形状以进行应力分析。使用两种不同的方法对心脏收缩进行建模。首先,将基于生理学的主动收缩模型与血液动力学三要素Windkessel模型耦合用于模拟心室射血。在第二种方法中,直接调整所产生的主动张力以匹配收缩末期的心室容积,同时开出已知的收缩末期压力。使用为LV机械挑战提供的数据,在四只正常狗中测试了这些方法。将模拟得出的舒张末期和收缩末期几何与测量的图像数据进行比较。

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