Department of Mechanical Engineering, Virginia Commonwealth University, Richmond, VA, USA.
Artif Organs. 2009 Aug;33(8):611-21. doi: 10.1111/j.1525-1594.2009.00779.x. Epub 2009 Jun 28.
Currently, no long-term mechanical bridge-to-transplant or bridge-to-recovery therapeutic alternative exists for failing single ventricles. A blood pump that would augment pressure in the cavopulmonary circulation is needed, and would lead to a reduction in elevated systemic venous pressure, and improve cardiac output. Thus, we are developing a collapsible, percutaneously inserted, axial flow blood pump to support the cavopulmonary circulation in adult patients with a failing single ventricle physiology. This collapsible axial flow pump is designed for percutaneous positioning. The outer protective cage will be designed with radially arranged filaments as touchdown surfaces to protect the vessel wall from the rotating components. This study examined the geometric characteristics of the protective cage of filaments and the impeller through the development and numerical analysis of 13 models. A blood damage analysis was also performed on selected geometric models to assess the probability of blood trauma. All models demonstrated an acceptable hydraulic performance by delivering 2-6 L/min at a rotational speed of 6000-10 000 rpm and generating pressure rise of 5-20 mm Hg. Expected trends in the hydraulic performance of the pump models were found. This study represents the initial first design phase of the impeller and protective cage of filaments. Validation of these flow and performance predictions will be completed in the next round of experimental testing with blood bag evaluation.
目前,对于衰竭的单心室,尚无长期的机械桥接移植或桥接恢复治疗选择。需要一种能够增加腔肺循环压力的血泵,从而降低升高的体静脉压并提高心输出量。因此,我们正在开发一种可折叠的经皮插入的轴流血泵,以支持具有衰竭的单心室生理的成年患者的腔肺循环。这种可折叠的轴流血泵设计用于经皮定位。外保护笼将设计成带有径向排列的细丝作为着陆面,以保护血管壁免受旋转部件的伤害。这项研究通过对 13 个模型的开发和数值分析,研究了细丝和叶轮的保护笼的几何特性。还对选定的几何模型进行了血液损伤分析,以评估血液创伤的可能性。所有模型在 6000-10000rpm 的转速下以 2-6L/min 的速度输送,并产生 5-20mmHg 的压力升高,表现出可接受的水力性能。发现了泵模型水力性能的预期趋势。这项研究代表了叶轮和细丝保护笼的初步第一设计阶段。这些流动和性能预测的验证将在下一轮血液袋评估的实验测试中完成。