Multiphase Flow Simulations to Explore Novel Technique of Air Injection to Mitigate Silt Erosion in Hydro Turbines

Hydropower is increasingly recognized as a sustainable energy source due to its minimal environmental impact, a crucial factor in meeting global energy demands. However, the efficiency of hydropower plants (particularly in the Himalayan region) can be hampered by wear and tear of essential component...

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Main Authors: P. Dhiman, A. Bhat, A. Karn
Format: Article
Language:English
Published: Isfahan University of Technology 2024-12-01
Series:Journal of Applied Fluid Mechanics
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Online Access:https://www.jafmonline.net/article_2570_ad6f2a2b8440d4750dee41bbff715c96.pdf
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author P. Dhiman
A. Bhat
A. Karn
author_facet P. Dhiman
A. Bhat
A. Karn
author_sort P. Dhiman
collection DOAJ
description Hydropower is increasingly recognized as a sustainable energy source due to its minimal environmental impact, a crucial factor in meeting global energy demands. However, the efficiency of hydropower plants (particularly in the Himalayan region) can be hampered by wear and tear of essential components like hydroturbine blades, runners, guide vanes, and nozzles, caused by silt particles in water streams. This study proposes an innovative solution to mitigate silt erosion by implementing a partial air shield on the pressure surface of hydrofoils. Through numerical simulations, the study investigates the interaction between quartz particle-water suspension and injected air on a NACA 4412 hydrofoil. The Euler-Euler-Lagrange model combined with the K-omega SST turbulence scheme is observed to accurately predict erosion wear behavior with and without air injection. The investigation reveals two significant phases. Initially, a comparison between scenarios with and without air injection shows a noticeable reduction in erosion rate when air is introduced over the surface. To further illustrate this reduction, the study increases the silt suspension levels from 2500 ppm to 5000 ppm and the air injection speed from 7.5 m/s to 17.5 m/s, while maintaining a constant hydrofoil angle of attack at 10° and an air-injection angle of 30°. In the subsequent phase, detailed exploration of various air injection parameters reveals an inverse relationship between air injection speed and erosion rate. This study provides comprehensive data sheets illustrating results for different parameter ranges, suggesting that air entrainment on hydroturbine runners can effectively reduce wear due to silt.
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spelling doaj-art-643acaaaac9e4f879e89e51f1f7b892b2024-12-09T07:47:36ZengIsfahan University of TechnologyJournal of Applied Fluid Mechanics1735-35721735-36452024-12-0118246848410.47176/jafm.18.2.27352570Multiphase Flow Simulations to Explore Novel Technique of Air Injection to Mitigate Silt Erosion in Hydro TurbinesP. Dhiman0A. Bhat1A. Karn2Multi Phase Flow Laboratory, Mechanical Cluster, School of Advanced Engineering, UPES, Dehradun, Uttarakhand, IndiaMulti Phase Flow Laboratory, Mechanical Cluster, School of Advanced Engineering, UPES, Dehradun, Uttarakhand, IndiaMulti Phase Flow Laboratory, Mechanical Cluster, School of Advanced Engineering, UPES, Dehradun, Uttarakhand, IndiaHydropower is increasingly recognized as a sustainable energy source due to its minimal environmental impact, a crucial factor in meeting global energy demands. However, the efficiency of hydropower plants (particularly in the Himalayan region) can be hampered by wear and tear of essential components like hydroturbine blades, runners, guide vanes, and nozzles, caused by silt particles in water streams. This study proposes an innovative solution to mitigate silt erosion by implementing a partial air shield on the pressure surface of hydrofoils. Through numerical simulations, the study investigates the interaction between quartz particle-water suspension and injected air on a NACA 4412 hydrofoil. The Euler-Euler-Lagrange model combined with the K-omega SST turbulence scheme is observed to accurately predict erosion wear behavior with and without air injection. The investigation reveals two significant phases. Initially, a comparison between scenarios with and without air injection shows a noticeable reduction in erosion rate when air is introduced over the surface. To further illustrate this reduction, the study increases the silt suspension levels from 2500 ppm to 5000 ppm and the air injection speed from 7.5 m/s to 17.5 m/s, while maintaining a constant hydrofoil angle of attack at 10° and an air-injection angle of 30°. In the subsequent phase, detailed exploration of various air injection parameters reveals an inverse relationship between air injection speed and erosion rate. This study provides comprehensive data sheets illustrating results for different parameter ranges, suggesting that air entrainment on hydroturbine runners can effectively reduce wear due to silt.https://www.jafmonline.net/article_2570_ad6f2a2b8440d4750dee41bbff715c96.pdfsilt erosionhydro turbinesair injectionerosion mitigationcavitation
spellingShingle P. Dhiman
A. Bhat
A. Karn
Multiphase Flow Simulations to Explore Novel Technique of Air Injection to Mitigate Silt Erosion in Hydro Turbines
Journal of Applied Fluid Mechanics
silt erosion
hydro turbines
air injection
erosion mitigation
cavitation
title Multiphase Flow Simulations to Explore Novel Technique of Air Injection to Mitigate Silt Erosion in Hydro Turbines
title_full Multiphase Flow Simulations to Explore Novel Technique of Air Injection to Mitigate Silt Erosion in Hydro Turbines
title_fullStr Multiphase Flow Simulations to Explore Novel Technique of Air Injection to Mitigate Silt Erosion in Hydro Turbines
title_full_unstemmed Multiphase Flow Simulations to Explore Novel Technique of Air Injection to Mitigate Silt Erosion in Hydro Turbines
title_short Multiphase Flow Simulations to Explore Novel Technique of Air Injection to Mitigate Silt Erosion in Hydro Turbines
title_sort multiphase flow simulations to explore novel technique of air injection to mitigate silt erosion in hydro turbines
topic silt erosion
hydro turbines
air injection
erosion mitigation
cavitation
url https://www.jafmonline.net/article_2570_ad6f2a2b8440d4750dee41bbff715c96.pdf
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AT akarn multiphaseflowsimulationstoexplorenoveltechniqueofairinjectiontomitigatesilterosioninhydroturbines