Investigation of sediment erosion phenomenon for different blade angle distribution in Francis runner
-
Published:2021-06-01
Issue:1
Volume:774
Page:012017
-
ISSN:1755-1307
-
Container-title:IOP Conference Series: Earth and Environmental Science
-
language:
-
Short-container-title:IOP Conf. Ser.: Earth Environ. Sci.
Author:
Acharya N,Trivedi C,Gautam S,Dahlhaug O G
Abstract
Abstract
Wear and tear of hydraulic turbine due to sediment erosion is one of the major problems in hydropower plants located in the Himalayan and Andes regions. High sediment concentration in water of such areas wears down the mechanical components rapidly which causes significant operational challenges. In the present work, a prototype high head Francis runner with speed number 0.32 has been considered as reference case and other designs have been obtained modifying the blade angle distribution with same hydraulic parameters. Full turbine steady state numerical calculations were carried out at the best efficiency point and corresponding performance and erosion pattern are observed. Hydraulic efficiency and sediment erosion rate density are compared for the different cases taken into consideration. Sediment erosion analysis gives an indication of relative erosion intensity and critical zones of erosion damage in runner. Erosion was observed at the inlet near hub and shroud region and was mostly concentrated at the outlet of runner blades for all cases, where relative velocity is higher. Numerical results from CFD are also compared with the actual eroded turbine from the powerplant.
Subject
General Engineering
Reference11 articles.
1. Empirical modeling of sediment erosion in Francis turbines;Thapa;Energy,2012
2. Numerical study of sediment erosion in guide vanes of a high head Francis turbine;Acharya;Journal of Physics: Conference Series,2019
3. Simplified hydrodynamic analysis on the general shape of the hill charts of Francis turbine using shroud-streamline modeling;Iliev;Journal of Physics: Conference Series,2018
Cited by
1 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献