Impulse Turbine Injector Design Improvement Using Computational Fluid Dynamics

Author:

Benzon D.1,Židonis A.1,Panagiotopoulos A.23,Aggidis G. A.3,Anagnostopoulos J. S.3,Papantonis D. E.3

Affiliation:

1. Lancaster University Renewable Energy Group, Engineering Department, Engineering Building, Bailrigg, Lancaster, Lancs LA1 4YR, UK

2. Lancaster University Renewable Energy Group, Engineering Department, Engineering Building, Bailrigg, Lancaster, Lancs LA1 4YR, UK;

3. National Technical University of Athens, School of Mechanical Engineering, 9 Heroon Polytechniou, Zografou, Athens 15780, Greece

Abstract

This study utilizes two modern computational fluid dynamics (CFD) software packages (ansys®cfx® and ansys®fluent®) to analyze the basic geometric factors affecting the efficiency of a typical impulse turbine injector. A design of experiments (DOEs) study is used to look at the impact of four primary nozzle and spear design parameters on the injector losses over a range of inlet pressures. Improved injector designs for both solvers are suggested based on the results and comparisons are made. The results for both CFD tools suggest that steeper injector nozzle and spear angles than current literature describes will reduce the losses by up to 0.6%.

Publisher

ASME International

Subject

Mechanical Engineering

Reference37 articles.

1. Hydropower: Opportunities, Challenges & Sharing Best Practice. The British Hydropower Association Perspective;British Hydropower Association (BHA),2010

2. Gilkes Turgo Impulse Hydro Turbine,2014

3. Hydro Resource Evaluation Tool: Engineering Options;Lancaster University Renewable Energy Group (LUREG),2014

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