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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Second Law Analysis of Condensing Steam Flows
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Second Law Analysis of Condensing Steam Flows

机译:冷凝蒸汽流的第二定律分析

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A numerical second law analysis is performed to determine the entropy production due to irreversibilities in condensing steam flows. In the present work, the classical approach to calculate entropy production rates in turbulent flows based on velocity and temperature gradients is extended to two-phase condensing flows modeled within an Etilerian-Eulerian framework. This requires some modifications of the general approach and the inclusion of additional models to account for thermodynamic and kinematic relaxation processes. With this approach, the entropy production within each mesh element is obtained. In addition to the quantification of thermodynamic and kinematic wetness losses, a breakdown of aerodynamic losses is possible to allow for a detailed loss analysis. The aerodynamic losses are classified into wake mixing, boundary layer, and shock losses. The application of the method is demonstrated by means of the,flow through a well-known steam turbine cascade test case. Predicted variations of loss coefficients for different operating conditions can he confirmed by experimental observations. For the investigated test cases, the thermodynamic relaxation contributes the most to the total losses and the losses due to droplet inertia are only of minor importance. The variation of the predicted aerodynamic losses for different operating conditions is as expected and demonstrates the suitability of the approach.
机译:执行数字第二定律分析,以确定由于冷凝蒸汽流中的不可逆性而产生的熵。在当前的工作中,基于速度和温度梯度来计算湍流中熵产生率的经典方法被扩展到在Etilerian-Eulerian框架内建模的两相冷凝流。这需要对通用方法进行一些修改,并包括其他模型以说明热力学和运动学松弛过程。通过这种方法,可以获得每个网格元素内的熵产生。除了对热力学和运动学湿度损失进行量化外,还可以对空气动力学损失进行细分,以进行详细的损失分析。空气动力学损失分为尾流混合,边界层和冲击损失。该方法的应用通过流过著名的汽轮机级联测试案例的方式进行了演示。可以通过实验观察来证实针对不同工况的损耗系数的预测变化。对于所研究的测试案例,热力学松弛对总损失的贡献最大,而由于液滴惯性引起的损失仅次要。预期的空气动力学损失在不同工况下的变化符合预期,证明了该方法的适用性。

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