Wenk Jonathan F, Ge Liang, Zhang Zhihong, Soleimani Mehrdad, Potter D Dean, Wallace Arthur W, Tseng Elaine, Ratcliffe Mark B, Guccione Julius M
a Department of Surgery , University of California , San Francisco , CA , USA.
Comput Methods Biomech Biomed Engin. 2013;16(8):807-18. doi: 10.1080/10255842.2011.641121. Epub 2012 Jan 16.
Numerical modelling of the cardiovascular system is becoming an important tool for assessing the influence of heart disease and treatment therapies. In the current study, we present an approach for modelling the interaction between the heart and the circulatory system. This was accomplished by creating animal-specific biventricular finite element (FE) models, which characterise the mechanical response of the heart, and by coupling them to a lumped-parameter model that represents the systemic and pulmonic circulatory system. In order to minimise computation time, the coupling was enforced in a weak (one-way) manner, where the ventricular pressure-volume relationships were generated by the FE models and then passed into the circulatory system model to ensure volume conservation and physiological pressure changes. The models were first validated by tuning the parameters, such that the output of the models matched experimentally measured pressures and volumes. Then the models were used to examine cardiac function and the myofibre stress in a healthy canine heart and a canine heart with dilated cardiomyopathy. The results showed good agreement with experimental measurements. The stress in the case of cardiomyopathy was found to increase significantly, while the pump function was decreased, compared to the healthy case. The total runtime of the simulations is lesser than that of many fully coupled models presented in the literature. This will allow for a much quicker evaluation of possible treatment strategies for combating the effects of heart failure, especially in optimisation schemes that require numerous FE simulations.
心血管系统的数值建模正成为评估心脏病及治疗方法影响的重要工具。在本研究中,我们提出了一种对心脏与循环系统之间相互作用进行建模的方法。这是通过创建特定动物的双心室有限元(FE)模型来实现的,该模型表征了心脏的机械响应,并将其与代表体循环和肺循环系统的集总参数模型相耦合。为了最小化计算时间,耦合以弱(单向)方式进行,其中心室压力 - 容积关系由有限元模型生成,然后传入循环系统模型以确保容积守恒和生理压力变化。首先通过调整参数对模型进行验证,使模型输出与实验测量的压力和容积相匹配。然后使用这些模型来检查健康犬心脏和患有扩张型心肌病的犬心脏的心脏功能和肌纤维应力。结果与实验测量结果显示出良好的一致性。与健康情况相比,发现心肌病情况下的应力显著增加,而泵功能下降。模拟的总运行时间比文献中提出的许多完全耦合模型的运行时间要短。这将允许更快地评估对抗心力衰竭影响的可能治疗策略,特别是在需要大量有限元模拟的优化方案中。