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Hydrodynamic characteristics of the helical flow pump

机译:螺旋流泵的流体力学特性

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摘要

The helical flow pump (HFP) was invented to be an ideal pump for developing the TAH and the helical flow TAH (HFTAH) using two HFPs has been developed. However, since the HFP is quite a new pump, hydrodynamic characteristics inside the pump are not clarified. To analyze hydrodynamic characteristics of the HFP, flow visualization study using the particle image velocimetry and computational fluid dynamics analysis were performed. The experimental and computational models were developed to simulate the left HFP of the HFTAH and distributions of flow velocity vectors, shear stress and pressure inside the pump were examined. In distribution of flow velocity vectors, the vortexes in the vane were observed, which indicated that the HFP has a novel and quite unique working principle in which centrifugal force rotates the fluid in the helical volutes and the fluid is transferred from the inlet to the outlet helical volutes according to the helical structure. In distribution of shear stress, the highest shear stress that was considered to be occurred by the shunt flow across the impeller was found around the entrance of the inlet helical volute. However, it was not so high to cause hemolysis. This shunt flow is thought to be improved by redesigning the inlet and outlet helical volutes. In distribution of pressure, negative pressure was found near the entrance of the inlet helical volute. However, it was not high. Negative pressure is thought to be reduced with an improvement in the design of the impeller or the vane shape.
机译:螺旋流泵(HFP)被发明为开发TAH的理想泵,并且已经开发出使用两个HFP的螺旋流TAH(HFTAH)。但是,由于HFP是一种新型泵,因此无法明确泵内部的流体力学特性。为了分析HFP的水动力特性,进行了使用粒子图像测速法和计算流体动力学分析的流动可视化研究。建立了实验和计算模型以模拟HFTAH的左HFP,并检查了流速矢量,泵内的切应力和压力的分布。在流速矢量的分布中,观察到叶片中的涡流,这表明HFP具有新颖且相当独特的工作原理,其中离心力使螺旋蜗壳中的流体旋转,并且流体从入口转移到出口螺旋蜗壳根据螺旋结构而定。在剪切应力的分布中,在入口螺旋蜗壳的入口附近发现了被认为是由跨过叶轮的分流产生的最大剪切应力。但是,引起溶血的可能性并不高。通过重新设计进口和出口螺旋蜗壳,可以改善这种分流。在压力分布中,在入口螺旋蜗壳的入口附近发现负压。但是,它并不高。人们认为,随着叶轮或叶片形状的设计的改善,负压减小了。

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