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对一种使用旋转纤维束的辅助泵肺的评估。

Evaluation of a pumping assist lung that uses a rotating fiber bundle.

作者信息

Svitek Robert G, Frankowski Brian J, Federspiel William J

机构信息

McGowan Institute for Regenerative Medicine, Department of Chemical Engineering, University of Pittsburgh, Pittsburgh, PA 15203, USA.

出版信息

ASAIO J. 2005 Nov-Dec;51(6):773-80. doi: 10.1097/01.mat.0000178970.00971.43.

Abstract

A paracorporeal respiratory assist lung (PRAL) is being developed for supplemental gas exchange to allow the native lungs of acute lung failure patients to heal. The device consists of a rotating annular microporous hollow fiber membrane bundle. The rotation augments the gas exchange efficiency of the device at constant flow-rate thereby uncoupling gas exchange and flow rate. The rotating fibers also enable the PRAL to pump the blood without the need for an additional pump or arterial cannulation. Blood flow rates will be between 500 and 750 ml/min with CO(2) removal rates of 100-130 ml/min. A prototype was manufactured with an overall surface area of 0.25 m. When rotated at 1500 rpm, CO(2) removal increased by 133% and O(2) transfer increased by 157% during an in vitro bovine blood study. The pumping of the rotating fiber bundle was assessed in a glycerol/water solution. At 1500 rpm, the PRAL generated 750 ml/min against 52 mm Hg pressure. Hemolysis of the device was assessed using in vitro bovine blood from a slaughterhouse. Plasma free hemoglobin levels were similar regardless of whether the rotating fibers were present in the PRAL, indicating that a rotating fiber bundle can be used to increase gas exchange without causing blood trauma.

摘要

一种体外呼吸辅助肺(PRAL)正在研发中,用于辅助气体交换,以使急性肺衰竭患者的天然肺得以恢复。该装置由一个旋转的环形微孔中空纤维膜束组成。旋转可在恒定流速下提高装置的气体交换效率,从而使气体交换与流速解耦。旋转的纤维还使PRAL无需额外的泵或动脉插管即可泵送血液。血流速度将在500至750毫升/分钟之间,二氧化碳清除率为100 - 130毫升/分钟。制造了一个表面积为0.25平方米的原型。在体外牛血研究中,当以1500转/分钟旋转时,二氧化碳清除率提高了133%,氧气传输率提高了157%。在甘油/水溶液中评估了旋转纤维束的泵送能力。在1500转/分钟时,PRAL在52毫米汞柱压力下产生750毫升/分钟的流量。使用来自屠宰场的体外牛血评估了该装置的溶血情况。无论PRAL中是否存在旋转纤维,血浆游离血红蛋白水平都相似,这表明旋转纤维束可用于增加气体交换而不会造成血液损伤。

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