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新型混合式全人工心脏,带集成式氧合器。

Novel hybrid total artificial heart with integrated oxygenator.

机构信息

BioCirc Research Laboratory, School of Biomedical Engineering, Science and Health Systems, Drexel University, Philadelphia, Pennsylvania, USA.

Department of Bioengineering, McGowan Institute for Regenerative Medicine, Swanson School of Engineering, University, Pittsburgh, Pennsylvania, USA.

出版信息

J Card Surg. 2022 Dec;37(12):5172-5186. doi: 10.1111/jocs.17210. Epub 2022 Nov 20.

Abstract

There continues to be an unmet therapeutic need for an alternative treatment strategy for respiratory distress and lung disease. We are developing a portable cardiopulmonary support system that integrates an implantable oxygenator with a hybrid, dual-support, continuous-flow total artificial heart (TAH). The TAH has a centrifugal flow pump that is rotating about an axial flow pump. By attaching the hollow fiber bundle of the oxygenator to the base of the TAH, we establish a new cardiopulmonary support technology that permits a patient to be ambulatory during usage. In this study, we investigated the design and improvement of the blood flow pathway from the inflow-to-outflow of four oxygenators using a mathematical model and computational fluid dynamics (CFD). Pressure loss and gas transport through diffusion were examined to assess oxygenator design. The oxygenator designs led to a resistance-driven pressure loss range of less than 35 mmHg for flow rates of 1-7 L/min. All of the designs met requirements. The configuration having an outside-to-inside blood flow direction was found to have higher oxygen transport. Based on this advantageous flow direction, two designs (Model 1 and 3) were then integrated with the axial-flow impeller of the TAH for simulation. Flow rates of 1-7 L/min and speeds of 10,000-16,000 RPM were analyzed. Blood damage studies were performed, and Model 1 demonstrated the lowest potential for hemolysis. Future work will focus on developing and testing a physical prototype for integration into the new cardiopulmonary assist system.

摘要

目前,对于治疗呼吸窘迫和肺部疾病的替代疗法,仍存在着未满足的治疗需求。我们正在开发一种便携式心肺支持系统,该系统将植入式氧合器与混合式、双支持、连续流全人工心脏(TAH)集成在一起。TAH 配备了一个离心流泵,该泵围绕轴向流泵旋转。通过将氧合器的中空纤维束连接到 TAH 的底座上,我们建立了一种新的心肺支持技术,允许患者在使用过程中进行活动。在这项研究中,我们使用数学模型和计算流体动力学(CFD)研究了四个氧合器从流入到流出的血流途径的设计和改进。通过扩散检查了压力损失和气体传输,以评估氧合器的设计。氧合器设计导致在 1-7 L/min 的流速下,阻力驱动的压力损失范围小于 35mmHg。所有设计都符合要求。具有从外向内血流方向的配置被发现具有更高的氧气传输能力。基于这种有利的流动方向,然后将两种设计(模型 1 和 3)与 TAH 的轴流叶轮集成在一起进行模拟。分析了 1-7 L/min 的流速和 10,000-16,000 RPM 的速度。进行了血液损伤研究,模型 1 显示出最低的溶血潜力。未来的工作将集中于开发和测试物理原型,以集成到新的心肺辅助系统中。

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