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Influence of Reynolds number on net positive suction head of centrifugal pumps in relation to disc friction losses

机译:雷诺数对离心泵净正吸头的影响与盘式摩擦损失的关系

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摘要

Determination of Net Positive Suction Head (NPSH) value in the range of best efficiency is important in order to ensure correct operation of centrifugal pumps in networks. Empirical formulas of NPSH determination include the specific speed, the head and coefficients taking into account the pump impeller type. Using recent formulas on disc frictions and correction factors including the viscosity, a new formula of NPSH correction factor is suggested in this study, taking into account the specific speed, the disc friction losses and the flow velocities at impeller inlet. NPSH evaluated for water by Stepanoff formula is divided in kinetic and disc friction heads. The formulation taking into account disc frictions including viscosity, diameters and velocities enables to determine the NPSH correction factor during the pumping of viscous fluids. Simulations on different centrifugal pump models of specific speeds between 20 and 45 min~(-1) are conducted. Obtained results show that the NPSH correction factor depends on the specific speed. It is near the unity when Reynolds number is greater than 10~5. It increases appreciably with Reynolds number values less than 10~5. It reaches 2.5 for a Reynolds number of 10~4 and a specific speed of 25 min~(-1), and 5 for a Reynolds number of 10~3 and a specific speed of 45 min~(-1). The established formula is related to those of Stepanoff for water. To validate this formula, a centrifugal pump with a specific speed of 20 min~(-1) is tested for water and a viscous fluid with a viscosity of 75 cSt. NPSH correction factor is also comparedrnwith those obtained by other authors. This comparison enables the validation of this new formula for the examined range of centrifugal pump models. This new formula facilitates manufacturers and users the NPSH prediction of standard centrifugal pumps whatever the viscosity of the fluid.
机译:为了确保网络中的离心泵正确运行,确定最佳效率范围内的净正负压头(NPSH)值很重要。确定NPSH的经验公式包括比转速,扬程和考虑到泵叶轮类型的系数。使用最新的圆盘摩擦力公式和校正系数(包括粘度),本研究中提出了一个新的NPSH校正系数公式,其中考虑了比转速,圆盘摩擦损失和叶轮入口处的流速。通过Stepanoff公式评估的水的NPSH分为动力学和盘式摩擦头。考虑到圆盘摩擦力(包括粘度,直径和速度)的配方,可以确定泵送粘性流体期间的NPSH校正因子。对转速在20至45 min〜(-1)之间的不同离心泵模型进行了仿真。所得结果表明,NPSH校正因子取决于特定速度。雷诺数大于10〜5时接近于1。雷诺数值小于10〜5时,它会明显增加。雷诺数为10〜4且比速度为25 min〜(-1)时达到2.5,雷诺数为10〜3且比速度为45 min〜(-1)时达到5。建立的公式与Stepanoff的水公式有关。为了验证该公式,测试了转速为20 min〜(-1)的离心泵中的水和粘度为75 cSt的粘性流体。 NPSH校正因子也与其他作者获得的校正因子进行了比较。通过比较,可以针对所检查的离心泵型号范围验证该新公式。无论流体的粘度如何,这一新公式都有助于制造商和用户对标准离心泵的NPSH预测。

著录项

  • 来源
    《Forschung im Ingenieurwesen》 |2009年第3期|173-182|共10页
  • 作者

    A. Ladouani; A. Nemdili;

  • 作者单位

    Hydraulic Department, Faculty of Architecture and Civil Engineering, Technical University of Oran, Po Box 1505, El-M'Naouer, Oran, Algeria;

    Hydraulic Department, Faculty of Architecture and Civil Engineering, Technical University of Oran, Po Box 1505, El-M'Naouer, Oran, Algeria;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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