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Investigations of the thermodynamic entropy evaluation in a hydraulic turbine under various operating conditions

机译:各种操作条件下液压涡轮机热力学熵评估的研究

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The irreversible energy loss due to viscous and turbulent dissipation in a Francis turbine led to a decrease in efficiency. It is difficult to reveal the detailed energy loss distribution by either experimental method or traditional simulation method. In this investigation, the entropy production method is applied to calculate the irreversible energy loss quantitatively and demonstrate the spatial distribution of energy loss intuitively. The flow in the Francis turbine is numerically simulated based on SST turbulence model and Zwart cavitation model. The objectives of this study are to (1) verify the accuracy of entropy production method in irreversible energy loss calculation, (2) investigate the detailed characteristics of entropy production rate in blade channel, blade surface and draft tube, (3) reveal the internal interaction mechanism between cavitation process and entropy production rate generation. The results show that the entropy production method has a credible accuracy for irreversible energy loss calculation. Draft tube and runner have the maximum amount of energy loss, but the guide vanes and runner have the maximum ability of irreversible energy loss generation. Finally, the new definition of entropy production rate induced by cavitation is derived to reveal the interaction mechanism between cavitation process and entropy production rate. (c) 2021 Elsevier Ltd. All rights reserved.
机译:由于频涡轮机中粘性和湍流耗散导致的不可逆能量损失导致效率降低。难以通过实验方法或传统的模拟方法揭示详细的能量损失分布。在该研究中,应用熵生产方法来定量计算不可逆能量损失,并直观地证明能量损失的空间分布。基于SST湍流模型和ZWART空化模型,在数值模拟竞技涡轮机中的流动。本研究的目标是(1)验证熵生产方法在不可逆的能量损失计算中的准确性,(2)研究刀片通道,刀片表面和牵伸管中熵生产率的详细特性,(3)揭示内部空化过程与熵产率的相互作用机制。结果表明,熵生产方法具有可靠的可逆性能量损失计算的准确性。牵引管和跑步者具有最大的能量损失量,但导向叶片和跑步者具有不可逆转的能量损失产生的最大能力。最后,衍生空化诱导的熵产生率的新定义,以揭示空化过程和熵生产率之间的相互作用机制。 (c)2021 elestvier有限公司保留所有权利。

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