• CN:11-2187/TH
  • ISSN:0577-6686

›› 2005, Vol. 41 ›› Issue (5): 38-43.

• 论文 • 上一篇    下一篇

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基于雷诺应力微分模型模拟轴流式水轮机轮缘间隙流动

廖伟丽;许联峰;刘胜柱   

  1. 西安理工大学水利水电学院
  • 发布日期:2005-05-15

BASED ON THE REYNOLDS STRESS DIFFERENTIAL MODELS SIMULATING OF TIP CLEARANCE FLOW IN KAPLAN TURBINE

Liao Weili; Xu lianfeng; Liu Shengzhu   

  1. Institute of Water Resources and Hydro-Electric Engineering, Xi’an University of Technology
  • Published:2005-05-15

摘要: 基于平均N-S方程、采用雷诺应力微分模型、非结构化网格技术,对轴流转桨式水轮机转轮轮缘间隙的三维湍流流动进行数值模拟。重点分析了不同工况下轴流水轮机轮缘间隙内部、叶片表面和轮缘间隙泄漏流动的流速分布规律。结果表明,通过间隙的泄漏流动不是单一的流动型式,按泄漏流动的流动方向不同可划分为(Ⅰ、Ⅱ、Ⅲ、Ⅳ)四个区域:Ⅰ区为叶片进水边靠头部的轮缘区,不同工况下,即可能出现在正面,也可能出现在背面;Ⅱ区为叶片轮缘中部间隙泄漏流动的流动方向改变的起始区;Ⅲ区为叶片轮缘部中间隙泄漏流动的流动方向转向背面;Ⅳ区为叶片出水边靠尾部的轮缘出口尾涡区。在此基础上,深入的研究了泄漏流动在不同区域产生、发展,泄漏涡与主流的相互作用所产生的二次流动的机理。揭示了轴流式水轮机轮缘缝隙内流动规律。计算结果与试验相吻合,说明了轴流转桨式水轮机发生翼型外缘涡流空化,转轮室产生空化真正原因。

关键词: 非结构化网格, 雷诺应力微分模型, 轮缘间隙流动, 轴流式水轮机

Abstract: Based on the average N-S equation, adopting Reynolds stress differential models and unstructured mesh technology, numerical simulation is performed on the 3D turbulent flow of Kaplan turbine’s flange clearance. The research of flow consists analyzing the velocity distributing rules of blade surface inside Kaplan turbine flange clearance and leakage flow of flange clearance under different conditions. The result indicates that the leakage flow through the clearance isn’t a single flow type but can be divided into four regions (Ⅰ, Ⅱ, Ⅲ, Ⅳ) according to the direction of leakage flow in the flange clearance: Ⅰregion is at leading edge of the blade’s flange, some parts lie in pressure side which form low pressure region affected by a fraction water leakage flowing from suction side to the pressure side, the other lie in suction side; Ⅱ region is the middle region of blade flange within tip clearance where the leakage flow change it’s direction; Ⅲ region is tip leakage flow that direction of blade flange clearance turn to suction side; Ⅳ region is trailing edge vortex region of tip near the flange of blade. The produce and the development of runner tip clearance flow and leakage vortex core at different operation point and the interaction of main flow and leakage vortex and make further study on mechanism of second flow caused by main flow and leakage vortex, are investigated. The effect on interior flow structure of hydraulic turbine and explain cavitations as well as cavitations abrasion of Kaplan turbine caused by flange clearance, is revealed. The flow rule in hydraulic turbine is improved, which provides gist for safe operation of Kaplan turbine and designing Kaplan turbine with excellent performance.

Key words: Flange clearance flow, Kaplan turbine, Reynolds stress differential models, Unstructured mesh

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