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Finite Element Driven Design Domain Identification of a Beating Left Ventricular Simulator

机译:搏动左心室模拟器的有限元驱动设计域识别

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摘要

Almost ten percent of the American population have heart diseases. Since the number of available heart donors is not promising, left ventricular assist devices are implemented as bridge therapies. Development of the assist devices benefits from both in-vivo animal and in-vitro mock circulation studies. Representation of the heart is a crucial part of the mock circulation setups. Recently, a beating left ventricular simulator with latex rubber and helically oriented McKibben actuators has been proposed. The simulator was able to mimic heart wall motion, however, flow rate was reported to be limited to 2 liters per minute. This study offers a finite element driven design domain identification to identify the combination of wall thickness, number of actuators, and the orientation angle that results in better deformation. A nonlinear finite element model of the simulator was developed and validated. Design domain was constructed with 150 finite element models, each with varying wall thickness and number of actuators with varying orientation angles. Results showed that the combination of 4 mm wall thickness and 8 actuators with 90 degrees orientation performed best in the design domain.
机译:几乎百分之十的美国人患有心脏病。由于可用的心脏供体的数量没有希望,因此将左心室辅助设备用作桥梁疗法。辅助设备的开发得益于体内动物和体外模拟循环研究。心脏的代表是模拟循环设置的关键部分。近来,已经提出了一种具有乳胶橡胶和螺旋取向的McKibben致动器的跳动的左心室模拟器。该模拟器能够模拟心脏壁的运动,但是,据报道流速限制为每分钟2升。这项研究提供了一个有限元驱动的设计域识别,以识别壁厚,致动器数量和导致更好变形的定向角的组合。开发并验证了仿真器的非线性有限元模型。设计领域由150个有限元模型构成,每个模型具有不同的壁厚和具有不同定向角的执行器数量。结果表明,在设计领域,壁厚4 mm和8个90度定向致动器的组合效果最佳。

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