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Comprehensive Numerical Investigations of Unsteady Internal Flows and Cavitation Characteristics in Double-Suction Centrifugal Pump

机译:双吸离心泵非定常内部流动和空化特性的综合数值研究

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The RNG k-epsilon turbulence model combined with cavitation model was used to simulate unsteady cavitating flows inside a double-suction centrifugal pump under different flow rate conditions based on hexahedral structured grid. The numerical external characteristic performances agree well with the experimental performances. The predicted results show that the turbulence kinetic energy and the turbulence dissipation rate inside the impeller at design flow rate are lower than those at other off-design flow rates, which are caused by various vortexes. Based on frequency-domain analyses in the volute casing, the blade passing frequency is the dominant one of the pressure fluctuations except the vicinity of volute tongue for all operating cases, and the dominant frequency near the volute tongue ranges from 0 to 0.5 times the blade passing frequency for other off-design points, while the blade passing one near the volute tongue is the dominant one of the pressure fluctuations at design point. The increase of flow rate reduces the pressure fluctuations amplitude. For cavitation cases, the blade loading of the middle streamline increases a bit during the initial stage, but, for serious cavitation, the blade loading near the blade inlet reduces to 0 and even negative values, and the serious cavitation bubbles block the blade channels, which results in a sharp drop in pump head. Under noncavitation condition, the predicted power related to the pressure in the impeller channels increases from the inlet to the exit, while, under different cavitation conditions at the design flow rate, these power-transformation distributions in the impeller channels show that these power conversions are affected by the available NPSHa and the corresponding work in leading regions of the blades increases increases gradually a bit, and then it increases sharply in the middle regions, but it decreases in the blade trailing regions and is greatly influenced by secondary flows.
机译:基于六面体网格,利用RNGk-ε湍流模型与空化模型相结合,模拟了在不同流量条件下双吸离心泵内部的非定常空化流。数值上的外部性能与实验性能吻合良好。预测结果表明,叶轮内部的湍流动能和湍流耗散率在设计流量时要低于其他非设计流量,这是由各种涡流引起的。根据蜗壳中的频域分析,在所有工作情况下,叶片通过频率是压力波动的主导因素之一,除了蜗舌附近,并且蜗舌附近的主导频率范围是叶片的0到0.5倍其他非设计点的通过频率,而叶片在蜗壳舌部附近通过是设计点压力波动的主要因素之一。流量的增加减小了压力波动幅度。对于气蚀情况,中间流线的叶片载荷在初始阶段会略有增加,但是对于严重的气蚀,叶片入口附近的叶片载荷会降低至0甚至为负值,并且严重的气蚀气泡会堵塞叶片通道,导致泵压头急剧下降。在非空化条件下,与叶轮通道压力相关的预测功率从入口到出口增加,而在不同的空化条件下以设计流量运行时,叶轮通道中的这些功率转换分布表明这些功率转换为受可用NPSHa的影响以及叶片前缘区域的相应功逐渐增加,然后在中间区域急剧增加,但在叶片后缘区域则减小,并受二次流的影响很大。

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  • 来源
    《Mathematical Problems in Engineering》 |2017年第8期|5013826.1-5013826.13|共13页
  • 作者单位

    China Agr Univ, Coll Water Resources & Civil Engn, Beijing 100083, Peoples R China;

    China Agr Univ, Coll Water Resources & Civil Engn, Beijing 100083, Peoples R China;

    China Agr Univ, Coll Water Resources & Civil Engn, Beijing 100083, Peoples R China;

    China Agr Univ, Coll Water Resources & Civil Engn, Beijing 100083, Peoples R China;

    China Agr Univ, Coll Water Resources & Civil Engn, Beijing 100083, Peoples R China;

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