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Experimental and Numerical Studies of a High-Head Francis Turbine: A Review of the Francis-99 Test Case

机译:高扬程混流式水轮机的实验与数值研究 - 弗朗西斯-99测试案例综述

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摘要

Hydraulic turbines are widely used to meet real-time electricity demands. Computational fluid dynamic (CFD) techniques have played an important role in the design and development of such turbines. The simulation of a complete turbine requires substantial computational resources. A specific approach that is applied to investigate the flow field of one turbine may not work for another turbine. A series of Francis-99 workshops have been planned to discuss and explore the CFD techniques applied within the field of hydropower with application to high-head Francis turbines. The first workshop was held in December 2014 at the Norwegian University of Science and Technology, Norway. The steady-state measurements were conducted on a model Francis turbine. Three operating points, part load, best efficiency point, and high load, were investigated. The complete geometry, meshing, and experimental data concerning the hydraulic efficiency, pressure, and velocity were provided to the academic and industrial research groups. Various researchers have conducted extensive numerical studies on the high-head Francis turbine, and the obtained results were presented during the workshop. This paper discusses the presented numerical results and the important outcome of the extensive numerical studies on the Francis turbine. The use of a wall function assuming equilibrium between the production and dissipation of turbulence is widely used in the simulation of hydraulic turbines. The boundary layer of hydraulic turbines is not fully developed because of the continuously-changing geometry and large pressure gradients. There is a need to develop wall functions that enable the estimation of viscous losses under boundary development for accurate simulations. Improved simulations and results enable reliable estimation of the blade loading. Numerical investigations on leakage flow through the labyrinth seals were conducted. The volumetric efficiency and losses in the seals were determined. The seal leakage losses formulated through analytical techniques are sufficient.
机译:水轮机广泛用于满足实时电力需求。计算流体力学(CFD)技术在此类涡轮机的设计和开发中发挥了重要作用。完整涡轮机的仿真需要大量的计算资源。用于研究一个涡轮机的流场的特定方法可能不适用于另一台涡轮机。已计划举办一系列Francis-99讲习班,以讨论和探索在水力发电领域中应用到CFD技术的高扬程弗朗西斯涡轮机。第一次研讨会于2014年12月在挪威科技大学举行。稳态测量是在Francis型涡轮机上进行的。研究了三个工作点,部分负荷,最佳效率点和高负荷。有关水力效率,压力和速度的完整几何图形,网格划分和实验数据已提供给学术和工业研究小组。许多研究人员对高扬程混流式水轮机进行了广泛的数值研究,并在研讨会期间介绍了获得的结果。本文讨论了提出的数值结果以及在弗朗西斯涡轮机上进行的大量数值研究的重要成果。假设湍流产生和耗散之间达到平衡的壁函数的使用已广泛用于水轮机的仿真中。由于几何形状的不断变化和较大的压力梯度,水轮机的边界层尚未完全开发。需要开发能够在边界发展下估算粘性损失的壁函数,以进行精确的模拟。改进的仿真和结果可以可靠地估计叶片负载。对通过迷宫式密封件的泄漏流进行了数值研究。确定了密封件的容积效率和损失。通过分析技术得出的密封泄漏损失就足够了。

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