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A numerically research on energy loss evaluation in a centrifugal pump system based on local entropy production method

机译:基于局部熵产生法的离心泵系统能量损失评估的数值研究

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Inspired by wide application of the second law of thermodynamics to flow and heat transfer devices, local entropy production analysis method was creatively introduced into energy assessment system of centrifugal water pump. Based on Reynolds stress turbulent model and energy equation model, the steady numerical simulation of the whole flow passage of one IS centrifugal pump was carried out. The local entropy production terms were calculated by user defined functions, mainly including wall entropy production, turbulent entropy production, and viscous entropy production. The numerical results indicated that the irreversible energy loss calculated by the local entropy production method agreed well with that calculated by the traditional method but with some deviations which were probably caused by high rotatability and high curvature of impeller and volute. The wall entropy production and turbulent entropy production took up large part of the whole entropy production about 48.61% and 47.91%, respectively, which indicated that wall friction and turbulent fluctuation were the major factors in affecting irreversible energy loss. Meanwhile, the entropy production rate distribution was discussed and compared with turbulent kinetic energy dissipation rate distribution, it showed that turbulent entropy production rate increased sharply at the near wall regions and both distributed more uniformly. The blade region in leading edge near suction side, trailing edge and volute tongue were the main regions to generate irreversible exergy loss. This research broadens a completely new view in evaluating energy loss and further optimizes pump using entropy production minimization.
机译:受到热力学第二定律在流量和传热装置中的广泛应用的启发,局部熵产生分析方法被创造性地引入到离心水泵的能量评估系统中。基于雷诺应力湍流模型和能量方程模型,对一台IS离心泵全流道进行了稳态数值模拟。局部熵产生项通过用户定义的函数计算,主要包括壁熵产生,湍流熵产生和粘性熵产生。数值结果表明,采用局部熵产生法计算的不可逆能量损失与传统方法产生的能量损失相吻合,但存在一定的偏差,这可能是由于叶轮和蜗壳的高旋转性和高曲率引起的。壁熵产生和湍流熵产生分别占整个熵产生的很大一部分,分别约为48.61%和47.91%,这表明壁摩擦和湍流波动是影响不可逆能量损失的主要因素。同时,对熵产率分布进行了讨论,并将其与湍动能耗散率分布进行了比较,结果表明,湍流熵产率在近壁区域急剧增加,且分布均较均匀。靠近吸力侧的前缘,后缘和蜗壳舌的叶片区域是产生不可逆火用损失的主要区域。这项研究为评估能量损失开辟了一个崭新的视野,并使用熵产生最小化进一步优化了泵。

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