Investigation on the Effect of Impeller Design Parameters on Performance of a Low Specific Speed Centrifugal Pump Using Taguchi Optimization Method

IF 0.7 Q4 ENGINEERING, MECHANICAL International Journal of Fluid Power Pub Date : 2022-01-12 DOI:10.13052/ijfp1439-9776.2322
H. Ayremlouzadeh, S. Jafarmadar, Seyed Reza Amini Niaki
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引用次数: 2

Abstract

In order to investigate the effect of blade design on pump performance, a CFD analysis was carried out, and the results were compared with experimental performance data of a low specific speed radial pump, which presents a good agreement. After model verification, the effect of impeller geometrical parameters includes blade outlet angle, wrap angle, and width at the exit, was investigated on the pump’s performance. Moreover, these parameters were chosen on three levels using an L9 orthogonal standard array of the Taguchi optimization method. The efficient levels of variables were calculated using the analysis of variance (ANOVA) method. The results revealed that impeller width at exit and blade outlet angle is the most effective pump shaft power and efficiency parameters. To minimize power, the optimal levels are the outlet angle of 27∘∘, wrap angle of 150∘∘, and width at the exit of 9 mm. Further, an outlet angle of 23∘∘, a wrap angle of 155∘∘, and a width at the exit of 9 mm lead to maximum pump efficiency. According to the validation simulations, an increase of 2.4% inefficiency and a minimum power of 3.9KW were achieved. The Overall Evaluation Criteria (OEC) technique revealed that considering 23∘∘, 160∘∘, and 9 mm for outlet angle, wrap angle, and width at the exit, minimum shaft power, and maximum pump efficiency will be achieved. ANOVA introduced width at the exit as the most governing parameter of pump performance characteristics.
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用田口优化法研究低比转速离心泵叶轮设计参数对性能的影响
为了研究叶片设计对泵性能的影响,进行了CFD分析,并将结果与低比转速径向泵的实验性能数据进行了比较,结果吻合较好。经过模型验证,研究了叶片出口角、包角和出口宽度等叶轮几何参数对泵性能的影响。此外,使用田口优化方法的L9正交标准阵列在三个水平上选择这些参数。使用方差分析(ANOVA)方法计算变量的有效水平。结果表明,叶轮出口宽度和叶片出口角度是最有效的泵轴功率和效率参数。为了最大限度地减少功率,最佳水平是出口角度为27°,包裹角度为150°,出口宽度为9毫米。此外,出口角为23°、包角为155°、出口宽度为9mm可获得最大泵效率。根据验证模拟,效率提高了2.4%,最小功率为3.9KW。总体评估标准(OEC)技术表明,考虑出口角、包角和出口宽度分别为23、160和9mm,将实现最小轴功率和最大泵效率。方差分析将出口处的宽度作为泵性能特征的最主要控制参数。
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来源期刊
International Journal of Fluid Power
International Journal of Fluid Power ENGINEERING, MECHANICAL-
CiteScore
1.60
自引率
0.00%
发文量
16
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