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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers >Through-flow calculation with a cooling model for cooled turbines
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Through-flow calculation with a cooling model for cooled turbines

机译:冷却涡轮机的冷却模型流量计算

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Conjugate heat transfer is a key feature of modern gas turbine, as cooling technology is widely applied to improve the turbine inlet temperature for high efficiency. Impact of conjugate heat transfer on heat loads and thermodynamic efficiency is a key issue in gas turbine design. This paper proposes a through-flow method for the design of cooled turbines, taking into account the influence of the complicated interaction between the flow field and heat transfer in cooled turbines. The energy and continuity equations are rederived theoretically by considering the historical influence of cooling with the method that deals with viscous losses. A cooling model is introduced to the through-flow method to predict the coolant requirement. This paper applies the method in the design of a high-pressure turbine with convective cooling. With the prescribed blade temperature limitation and the knowledge of the flow variables of the mainstream at the turbine inlet, such as the total pressure, total temperature, and mass flow rate, the convergence of the calculation is then obtained and the properties of the flow field, velocity triangles, and coolant requirement are well predicted. Three-dimensional conjugate heat transfer analysis is performed for the validation of the through-flow method. By comparing these two calculations, it is shown that the through-flow method is a useful tool for flow analysis and coolant requirement prediction in the design of cooled turbines.
机译:共轭传热是现代燃气轮机的关键特征,因为冷却技术被广泛应用于提高涡轮机入口温度以提高效率。共轭传热对热负荷和热力学效率的影响是燃气轮机设计中的关键问题。考虑到冷却涡轮中流场与传热之间复杂相互作用的影响,本文提出了一种用于冷却涡轮机设计的直通方法。通过考虑冷却的历史影响和粘性损失方法,从理论上重新提出了能量和连续性方程。将冷却模型引入通流方法以预测冷却液需求。本文将该方法应用于具有对流冷却的高压涡轮机的设计中。借助规定的叶片温度限制并了解涡轮机入口处主流的流量变量(例如总压力,总温度和质量流率),可以得出计算的收敛性,并获得流场的特性,速度三角形和冷却液需求已得到很好的预测。进行三维共轭传热分析以验证通流方法。通过比较这两种计算,可以看出通流方法是冷却涡轮机设计中流量分析和冷却剂需求预测的有用工具。

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