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Numerical Investigation on the Aerodynamic Performance of a Low-Pressure Steam Turbine Exhaust Hood Using Design of Experiment Analysis

机译:使用实验分析设计低压汽轮机排气罩空气动力学性能的数值研究

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Nowadays, the rising interest in using renewable energy for thermal power generation has led to radical changes in steam turbine design practice and operability. Modern steam turbines are required to operate with greater flexibility due to rapid load changes, fast start-up, and frequent shutdowns. This has given rise to great challenges to the exhaust hood system design, which has a great influence on the overall turbine performance converting the kinetic energy leaving the last stage of low-pressure turbine into static pressure. The radial hoods are characterized by a complex aerodynamic behavior since the flow turns by 90 deg in a very short distance and this generates a highly rotational flow structure within the diffuser and exhaust hood outer casing, moreover, the adverse pressure gradient can promote the flow separation drastically reducing the hood recovery performance. For these reasons, it is fundamental to design the exhaust system in order to ensure a good pressure recovery under all the machine operating conditions. This paper presents a design of experiment (DOE) analysis on a low-pressure steam turbine exhaust hood through computational fluid dynamics (CFD) simulations. A parametric model of an axial-radial exhaust hood was developed, and a sensitivity of exhaust hood performance as a function of key geometrical parameters was carried out, with the aim of optimizing the pressure recovery coefficient and minimizing the overall dimensions of the exhaust casing. Since hood performance strongly depends on a proper coupling with the turbine rear stage, such a stage was modeled using the so-called mixing-plane approach to couple both stator-rotor and rotor-diffuser interfaces. A detailed analysis of the flow field in the exhaust hood in the different configurations was performed, detecting the swirling structures responsible for the energy dissipation in each simulation, as well as correlating the flow field with the pressure recovery coefficient.
机译:如今,对热发电的可再生能源的兴趣兴趣导致汽轮机设计实践和可操作性的根本变化。由于快速负载变化,快速启动和频繁关闭,现代蒸汽轮机需要以更大的灵活性运行。这对排气罩系统设计产生了巨大挑战,这对整体涡轮机性能转化为将低压涡轮机的最后阶段转化为静压的整体涡轮机性能产生了很大的影响。径向罩的特征在于复杂的空气动力学行为,因为流量在很短的距离中达到90°,这在扩散器和排气罩外壳内产生高旋转的流动结构,而且,不利的压力梯度可以促进流动分离大幅减少罩恢复性能。由于这些原因,设计排气系统是基本的,以确保在所有机器操作条件下进行良好的压力恢复。本文通过计算流体动力学(CFD)模拟,提出了对低压蒸汽轮机排气罩的实验(DOE)分析的设计。开发了轴向排气罩的参数模型,并且作为关键几何参数的函数进行了排气罩性能的灵敏度,目的是优化压力回收系数并最小化排气壳的整体尺寸。由于罩性能强烈地取决于与涡轮机后级的适当耦合,因此使用所谓的混合平面方法建模这种阶段来耦合定子转子和转子扩散器接口。执行在不同配置中排气罩中的流场的详细分析,检测每个模拟中的能量耗散的旋流结构,以及将流场与压力回收系数相关。

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