CFD-Based Design Optimization for Hydro Turbines

Author:

Wu Jingchun1,Shimmei Katsumasa2,Tani Kiyohito3,Niikura Kazuo3,Sato Joushirou4

Affiliation:

1. LaunchPoint Technologies, Inc., Goleta, CA, USA

2. Hitachi Ltd., Akihabara Dairu Building 18-13, Soto-Kanda, 1-Chome, Chiyoda-ku, Tokyo, Japan

3. Hitachi Ltd., 3-1-1 Saiwai-cho, Hitachi, Ibaraki, Japan

4. Sato Consultants, 11-7 Namekawa, Honchou, 3-Chome, Hitachi, Ibaraki, Japan

Abstract

A computational fluid dynamics-based design system with the integration of three blade design approaches, automatic mesh generator and CFD codes enables a quick and efficient design optimization of turbine components. It is applied to a Francis turbine rehabilitation project with strict customer requirements to provide over 3% increase in peak efficiency, 13% upgrade in power, and improved cavitation characteristics. Extensive turbulent flow simulations are performed for both the existing and new turbines at design and off design conditions. In order to take into account the interactions between different components, particularly the effects between the rotating and stationary parts, coupling calculations based on the implicit coupling method under multiple frames of reference are carried out for the entire turbine model. As a result, the runner and guide vanes are optimized to the greatest extent, and the stay vanes are locally modified with a possible minimum cost under the geometrical constraints of the existing machine. The performance of the new design is verified by model tests, and exceeds required improvements.

Publisher

ASME International

Subject

Mechanical Engineering

Reference19 articles.

1. Performance Prediction by Viscous Flow Analysis for Francis Turbine Runner;Vu;ASME J. Fluids Eng.

2. Numerical Modelling of Unsteady Flow in a Francis Turbine;Ruprecht

3. From Components to Complete Turbine Numerical Simulation;Sabourin

4. Simulation of Flow Through Francis Turbine By LES Method;Song

5. Flow in a Centrifugal Pump Impeller at design and Off-Design Conditions-Part II: Large Eddy Simulations;Byskov;ASME J. Fluids Eng.

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