Cardiopulmonary resuscitation (CPR) is an emergency procedure performed on patients during cardiac and respiratory arrest. This procedure externally activates the cardiac and respiratory systems via the delivery of chest compression and artificial ventilation. As the main purpose of CPR is to recirculate the blood flow, prediction of the myocardium behavior has great importance. This prediction allows us to have a better understanding of the needed force to recirculate blood without hurting the heart. Finite element method offer the possibility of noninvasive quantification of myocardial deformation. This method is attractive to use for the assessment of myocardial function. To investigate the behavior of the heart wall, a 3D model of thoracic organs has been prepared using medical images. In this study, to simulate the behavior of different organs, Code-Aster open software is used. For every organ, the material properties are defined. The most important parameters in the study are displacement, normal stress, and Von-Mises stress in the myocardium. Using these parameters, displacement and stress distribution have been predicted. Effects of the applied force on the chest during CPR and deformation of the myocardium have been predicted by the finite element model. A linear deformation is observable for each organ during force application. Besides, the final location of the heart and ribs and also involved parameters in predicting myocardium deformation are extracted from the model simulations. This finite element model enables us to have a good vision of the deformation of the myocardium during CPR. Using this method, it is possible to predict the deformation of every part of the heart, especially right and left ventricles.
翻译:心肺复苏术(CPR) 是一种在心脏和呼吸停止期间对病人实施的紧急程序。 这个程序外部通过提供胸部压缩和人工通风来激活心脏和呼吸系统。 由于CPR的主要目的是对血液循环进行循环, 心肌梗塞行为的预测非常重要。 这个预测使我们能够更好地了解在不伤害心脏的情况下进行血液再循环所需的力量。 精密元素方法提供了对心肌畸形进行非侵入性量化的可能性。 这个方法对评估心肌功能很有吸引力。 为了调查心脏墙的行为, 已经用医疗图像来准备了三维胸腺器官模型。 在这个研究中, 模拟不同器官的行为, 代码开放软件被使用。 对于每个器官来说, 物质特性是定义的。 研究中最重要的参数是迁移、 正常压力和心心心肌素变异异异异。 使用这些参数, 转移和压力分布已经预测了。 心脏变异位模型对心脏的冲击力, 特别是心脏变异变变变变的每部位置, 也是我心脏变变变变变变的每部。