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RD of a pulsatile rotary heart pump imitating the native ventricle

机译:模仿原生心室的脉动旋转心脏泵的研发

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It is evident that a pulsatile flow is important for blood circulation because the flow pulsatility can reduce the resistance of peripheral vessels. It is difficult, however, to produce a pulsatile flow with an impeller pump, since blood damage will occur when a pulsatile flow is produced. Further investigation has revealed that the main factor for blood damage is turbulence shear, which tears the membranes of red blood cells, resulting in free release of haemoglobin into the plasma, and consequently lead to haemolysis. Therefore, the question for producing a pulsatile flow with low haemolysis becomes how to develop a pulsatile impeller pump with less turbulence? The authors have successively developed a pulsatile axial pump and a pulsatile centrifugal pump. In the pulsatile axial pump, the impeller reciprocates axially and rotates simultaneously. The reciprocation is driven by a pneumatic device and the rotation by a DC motor. For a pressure of 40mm Hg pulsatility, about 50mm axially reciprocation amplitude of the impeller is desirable. In order to reduce the axial amplitude, the pump inlet and the impeller both have cone-shaped heads, thus the gap between the impeller and the inlet pipe changes by only 2mm, that is, the impeller reciprocates up to 2mm, a pressure pulsatility of 40mmHg can be produced. As the impeller rotates with a constant speed, low turbulence in the pump can be expected. In the centrifugal pulsatile pump, the impeller changes its rotating speed periodically; the turbulence is reduced by designing an impeller with twisted vanes which enable the blood flow to change its direction rather than its magnitude during the periodic change of the rotating speed. In this way, a pulsatile flow is produced and the turbulence is minimized. Compared to the axial pulsatile pump, the centrifugal pulsatile pump needs only one driver and thus has more application possibilities. The centrifugal pulsatile pump has been used in animal experiments. The pump assisted the circulation of calves for several months without harm to the blood elements and the organ functions of the experimental animal. The experiments demonstrated that the pulsatile impeller is the most efficient pump for assisting heart recovery, because it can produce a pulsatile flow like a diaphragm pump and has no back flow as what occurs in a non-pulsatile rotary pump; the former reduces the circulatory resistance and the later increases the diastole pressure in aorta, and thus increase the perfusion of coronary arteries of the natural heart.
机译:显然,脉动流动对于血液循环是重要的,因为流动脉冲性可以降低外围容器的电阻。然而,难以产生与叶轮泵的脉动流动,因为在产生脉动流动时会发生血液损伤。进一步的调查表明,血液损伤的主要因素是湍流剪切,其撕裂红细胞的膜,导致血红蛋白的自由释放到血浆中,因此导致溶血。因此,用于产生低溶血流的脉动流动的问题成为如何开发具有较小湍流的脉动叶轮泵?作者依次开发了脉动轴泵和脉动离心泵。在脉动轴向泵中,叶轮轴向往复运动并同时旋转。往复运动由气动装置驱动并通过直流电动机旋转。对于40mm Hg脉冲的压力,希望叶轮的约50mm轴向往复运动幅度。为了减小轴向幅度,泵入口和叶轮都具有锥形头,因此叶轮和入口管之间的间隙仅在2mm的变化下变化,即叶轮往复运动高达2mm,压力脉冲可以生产40mmhg。当叶轮以恒定速度旋转时,可以预期泵中的低湍流。在离心脉动泵中,叶轮定期改变其旋转速度;通过设计具有扭曲叶片的叶轮来减小湍流,这使得血流能够在旋转速度的周期性变化期间改变其方向而不是其大小。以这种方式,产生脉动流,并且湍流最小化。与轴向脉动泵相比,离心脉动泵仅需要一个驱动器,因此具有更多的应用可能性。离心脉动泵已用于动物实验中。泵辅助小腿循环几个月而不会伤害血液元素和实验动物的器官功能。实验表明,脉动叶轮是用于辅助心脏恢复的最有效的泵,因为它可以产生像隔膜泵这样的脉动流,并且没有背面流动,因为非脉动旋转泵中发生的东西。前者降低了循环抗性,后来增加了主动脉的舒张压,从而增加了天然心脏冠状动脉的灌注。

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