CFD-Driven Valve Shape Optimization for Performance Improvement of a Micro Cross-Flow Turbine

Turbines are critical parts in hydropower facilities, and the cross-flow turbine is one of the widely applied turbine designs in small- and micro-hydro facilities. Cross-flow turbines are relatively simple, flexible and less expensive, compared to other conventional hydro-turbines. However, the powe...

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Main Authors: Endashaw Tesfaye Woldemariam, Hirpa G. Lemu, G. Gary Wang
Format: Article
Language:English
Published: MDPI AG 2018-01-01
Series:Energies
Subjects:
Online Access:http://www.mdpi.com/1996-1073/11/1/248
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spelling doaj-04c4cebde9c7478e871c74805adeb0172020-11-25T01:24:57ZengMDPI AGEnergies1996-10732018-01-0111124810.3390/en11010248en11010248CFD-Driven Valve Shape Optimization for Performance Improvement of a Micro Cross-Flow TurbineEndashaw Tesfaye Woldemariam0Hirpa G. Lemu1G. Gary Wang2Department of Mechanical and Structural Engineering and Materials Science, University of Stavanger, 4036 Stavanger, NorwayDepartment of Mechanical and Structural Engineering and Materials Science, University of Stavanger, 4036 Stavanger, NorwaySchool of Mechatronics System Engineering, Simon Fraser University, Surrey, BC V5A 1S6, CanadaTurbines are critical parts in hydropower facilities, and the cross-flow turbine is one of the widely applied turbine designs in small- and micro-hydro facilities. Cross-flow turbines are relatively simple, flexible and less expensive, compared to other conventional hydro-turbines. However, the power generation efficiency of cross-flow turbines is not yet well optimized compared to conventional hydro-turbines. In this article, a Computational Fluid Dynamics (CFD)-driven design optimization approach is applied to one of the critical parts of the turbine, the valve. The valve controls the fluid flow, as well as determines the velocity and pressure magnitudes of the fluid jet leaving the nozzle region in the turbine. The Non-Uniform Rational B-Spline (NURBS) function is employed to generate construction points for the valve profile curve. Control points from the function that are highly sensitive to the output power are selected as optimization parameters, leading to the generation of construction points. Metamodel-assisted and metaheuristic optimization tools are used in the optimization. Optimized turbine designs from both optimization methods outperformed the original design with regard to performance of the turbine. Moreover, the metamodel-assisted optimization approach reduced the computational cost, compared to its counterpart.http://www.mdpi.com/1996-1073/11/1/248CFD-driven optimizationNURBS functionmicro-hydropowercross-flow turbinemetamodel-assisted optimizationturbine performance
collection DOAJ
language English
format Article
sources DOAJ
author Endashaw Tesfaye Woldemariam
Hirpa G. Lemu
G. Gary Wang
spellingShingle Endashaw Tesfaye Woldemariam
Hirpa G. Lemu
G. Gary Wang
CFD-Driven Valve Shape Optimization for Performance Improvement of a Micro Cross-Flow Turbine
Energies
CFD-driven optimization
NURBS function
micro-hydropower
cross-flow turbine
metamodel-assisted optimization
turbine performance
author_facet Endashaw Tesfaye Woldemariam
Hirpa G. Lemu
G. Gary Wang
author_sort Endashaw Tesfaye Woldemariam
title CFD-Driven Valve Shape Optimization for Performance Improvement of a Micro Cross-Flow Turbine
title_short CFD-Driven Valve Shape Optimization for Performance Improvement of a Micro Cross-Flow Turbine
title_full CFD-Driven Valve Shape Optimization for Performance Improvement of a Micro Cross-Flow Turbine
title_fullStr CFD-Driven Valve Shape Optimization for Performance Improvement of a Micro Cross-Flow Turbine
title_full_unstemmed CFD-Driven Valve Shape Optimization for Performance Improvement of a Micro Cross-Flow Turbine
title_sort cfd-driven valve shape optimization for performance improvement of a micro cross-flow turbine
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2018-01-01
description Turbines are critical parts in hydropower facilities, and the cross-flow turbine is one of the widely applied turbine designs in small- and micro-hydro facilities. Cross-flow turbines are relatively simple, flexible and less expensive, compared to other conventional hydro-turbines. However, the power generation efficiency of cross-flow turbines is not yet well optimized compared to conventional hydro-turbines. In this article, a Computational Fluid Dynamics (CFD)-driven design optimization approach is applied to one of the critical parts of the turbine, the valve. The valve controls the fluid flow, as well as determines the velocity and pressure magnitudes of the fluid jet leaving the nozzle region in the turbine. The Non-Uniform Rational B-Spline (NURBS) function is employed to generate construction points for the valve profile curve. Control points from the function that are highly sensitive to the output power are selected as optimization parameters, leading to the generation of construction points. Metamodel-assisted and metaheuristic optimization tools are used in the optimization. Optimized turbine designs from both optimization methods outperformed the original design with regard to performance of the turbine. Moreover, the metamodel-assisted optimization approach reduced the computational cost, compared to its counterpart.
topic CFD-driven optimization
NURBS function
micro-hydropower
cross-flow turbine
metamodel-assisted optimization
turbine performance
url http://www.mdpi.com/1996-1073/11/1/248
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AT hirpaglemu cfddrivenvalveshapeoptimizationforperformanceimprovementofamicrocrossflowturbine
AT ggarywang cfddrivenvalveshapeoptimizationforperformanceimprovementofamicrocrossflowturbine
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