首页> 外文期刊>Journal of artificial organs: The official journal of the Japanese Society for Artificial Organs >Computational fluid dynamics analysis of the pump parameters in the helical flow pump.
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Computational fluid dynamics analysis of the pump parameters in the helical flow pump.

机译:螺旋流泵中泵参数的计算流体动力学分析。

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摘要

The helical flow pump (HFP) was invented to develop a total artificial heart at the University of Tokyo in 2005. The HFP consists of the multi-vane impeller involving rotor magnets, a motor stator and pump housing having double-helical volutes. To investigate the characteristics of the HFP, computational fluid dynamics analysis was performed. Validation of the computational model was performed with the data of the actual pump. A control computational model in which the vane area corresponded approximately to that of the actual pump was designed for the parametric study. The parametric study was performed varying the vane height, vane width and helical volute pitch. When the vane height was varied from 0.5 to 1.5 times that of the control computational model, the H-Q (pressure head vs. flow) and efficiency curves were translated in parallel with the vane height. When the vane height was two and three times that of the control computational model, the profile of these curves changed. From the results, the best proportion for the vane was considered to be a vane height between 1.5 and 2 times the vane width. The effect of vane width was not very strong compared to that of the vane height. A similar tendency in vane height was observed by varying the helical volute pitch. The best helical volute-pitch size is considered to be between 1.5 and 2 times the vane width. Although further study is necessary to determine the best values for these parameters, the characteristics of the pump parameters in the HFP could be approximately clarified.
机译:螺旋流泵(HFP)于2005年在东京大学发明,用于开发整个人造心脏。HFP由包含转子磁铁的多叶片叶轮,电机定子和具有双螺旋蜗壳的泵壳组成。为了研究HFP的特性,进行了计算流体动力学分析。使用实际泵的数据对计算模型进行验证。为参数研究设计了一个控制计算模型,其中叶片面积近似等于实际泵的面积。通过改变叶片高度,叶片宽度和螺旋蜗壳螺距进行参数研究。当叶片高度是控制计算模型的0.5到1.5倍变化时,H-Q(压头与流量)和效率曲线与叶片高度平行转换。当叶片高度是控制计算模型高度的两倍和三倍时,这些曲线的轮廓将发生变化。从结果来看,叶片的最佳比例被认为是叶片高度的1.5到2倍。与叶片高度相比,叶片宽度的影响不是很大。通过改变螺旋蜗壳螺距可以观察到叶片高度的类似趋势。最佳螺旋蜗轮节距尺寸被认为是叶片宽度的1.5到2倍。尽管需要进一步研究来确定这些参数的最佳值,但可以大致阐明HFP中泵参数的特性。

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