首页> 外文会议>ASME Fluids Engineering Division summer meeting >THE EFFECT OF THE THICKNESS AND ANGLE OF THE INLET AND OUTLET GUIDE VANE ON THE PERFORMANCE OF AXIAL-FLOW PUMP
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THE EFFECT OF THE THICKNESS AND ANGLE OF THE INLET AND OUTLET GUIDE VANE ON THE PERFORMANCE OF AXIAL-FLOW PUMP

机译:进,出口导叶厚度和角度对轴流泵性能的影响

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An axial-flow pump has a relatively high discharge flow rate and specific speed at a relatively low head and it consists of an inlet guide vane, impeller, and outlet guide vane. The interaction of the flow through the inlet guide vane, impeller, and outlet guide vane of the axial-flow pump has a significant effect on its performance. Of those components, the guide vanes especially can improve the head and efficiency of the pump by transforming the kinetic energy of the rotating flow, which has a tangential velocity component, into pressure energy. Accordingly, the geometric configurations of the guide vanes such as blade thickness and angle are crucial design factors for determining the performance of the axial-flow pump. As the reliability of Computational Fluid Dynamics (CFD) has been elevated together with the advance in computer technology, numerical analysis using CFD has recently become an alternative to empirical experiment due to its high reliability to measure the flow field. Thus, in this study, 1,200mm axial-flow pump having an inlet guide vane and impeller with 4 blades and an outlet guide vane with 6 blades was numerically investigated. Numerical study was conducted using the commercial CFD code, ANSYS CFX ver. 16.1, in order to elucidate the effect of the thickness and angle of the guide vanes on the performance of 1,200mm axial-flow pump. The stage condition, which averages the fluxes between interfaces and is accordingly appropriate for the evaluation of pump performance, was adopted as the interface condition between the guide vanes and the impeller. The rotational periodicity condition was used in order to enable a simplified geometry to be used since the guide vanes feature multiple identical regions. The shear stress transport (SST) k-ω model, predicting the turbulence within the flow in good agreement, was also employed in the CFD calculation. With regard to the numerical simulation results, the characteristics of the pressure distribution were discussed in detail. The pump performance, which will determine how well an axial-flow pump will work in terms of its efficiency and head, was also discussed in detail, leading to the conclusion on the optimal blade thickness and angle for the improvement of the performance. In addition, the total pressure loss coefficient was considered in order to investigate the loss within the flow paths depending on the thickness and angle variations. The results presented in this study may give guidelines to the numerical analysis of the axial-flow pump and the investigation of the performance for further optimal design of the axial-flow pump.
机译:轴流泵在较低的扬程下具有较高的排出流量和比速,并且由入口导向叶片,叶轮和出口导向叶片组成。通过轴流泵的进口导向叶片,叶轮和出口导向叶片的流的相互作用对其性能有重大影响。在这些组件中,导向叶片尤其可以通过将具有切向速度分量的旋转流的动能转换为压力能来提高泵的扬程和效率。因此,导向叶片的几何构型,例如叶片厚度和角度,是确定轴流泵性能的关键设计因素。随着计算机流体技术的发展,计算流体动力学(CFD)的可靠性不断提高,由于使用CFD进行流场测量具有很高的可靠性,因此使用CFD进行数值分析已成为经验实验的替代方法。因此,在这项研究中,对具有入口导向叶片和带4个叶片的叶轮和出口导向叶片和6个叶片的1200mm轴流泵进行了数值研究。使用商业CFD代码ANSYS CFX ver。进行了数值研究。 16.1,以阐明导向叶片的厚度和角度对1,200mm轴流泵性能的影响。阶跃条件被用作导叶和叶轮之间的界面条件,该条件平均了界面之间的通量,因此适合于评估泵的性能。由于导向叶片具有多个相同的区域,因此使用旋转周期性条件是为了能够使用简化的几何形状。 CFD计算中还采用了剪切应力传递(SST)k-ω模型,该模型很好地预测了流动内的湍流。关于数值模拟结果,详细讨论了压力分布的特征。还对泵的性能进行了详细讨论,该性能将决定轴流泵的效率和扬程,以得出最佳叶片厚度和角度来改善性能的结论。另外,考虑总的压力损失系数是为了研究取决于厚度和角度变化的流路内的损失。本研究结果可为轴流泵的数值分析和进一步优化轴流泵性能的性能研究提供指导。

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