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Parametric Study and Optimization of Ceiling Fan Blades for Improved Aerodynamic Performance
by
Adeeb, E.
, Sohn, C. H.
, Mushtaq, Ammar
, Maqsood, Adnan
in
Aerodynamics
/ Angle of attack
/ Blade tips
/ Blades
/ Ceiling fans
/ Ceilings
/ Computational fluid dynamics
/ Computer applications
/ Design
/ Design of experiments
/ Design optimization
/ Energy efficiency
/ Fan blades
/ Flow rates
/ Flow velocity
/ Fluid dynamics
/ Hydrodynamics
/ Mathematical models
/ Multiple objective analysis
/ Nonlinearity
/ Optimization
/ Parametric statistics
/ Response surface methodology
/ Response surfaces
2016
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Parametric Study and Optimization of Ceiling Fan Blades for Improved Aerodynamic Performance
by
Adeeb, E.
, Sohn, C. H.
, Mushtaq, Ammar
, Maqsood, Adnan
in
Aerodynamics
/ Angle of attack
/ Blade tips
/ Blades
/ Ceiling fans
/ Ceilings
/ Computational fluid dynamics
/ Computer applications
/ Design
/ Design of experiments
/ Design optimization
/ Energy efficiency
/ Fan blades
/ Flow rates
/ Flow velocity
/ Fluid dynamics
/ Hydrodynamics
/ Mathematical models
/ Multiple objective analysis
/ Nonlinearity
/ Optimization
/ Parametric statistics
/ Response surface methodology
/ Response surfaces
2016
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Parametric Study and Optimization of Ceiling Fan Blades for Improved Aerodynamic Performance
by
Adeeb, E.
, Sohn, C. H.
, Mushtaq, Ammar
, Maqsood, Adnan
in
Aerodynamics
/ Angle of attack
/ Blade tips
/ Blades
/ Ceiling fans
/ Ceilings
/ Computational fluid dynamics
/ Computer applications
/ Design
/ Design of experiments
/ Design optimization
/ Energy efficiency
/ Fan blades
/ Flow rates
/ Flow velocity
/ Fluid dynamics
/ Hydrodynamics
/ Mathematical models
/ Multiple objective analysis
/ Nonlinearity
/ Optimization
/ Parametric statistics
/ Response surface methodology
/ Response surfaces
2016
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Parametric Study and Optimization of Ceiling Fan Blades for Improved Aerodynamic Performance
Journal Article
Parametric Study and Optimization of Ceiling Fan Blades for Improved Aerodynamic Performance
2016
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Overview
This paper includes parametric study and optimization of non-linear ceiling fan blades by combining the techniques of Design of Experiments (DOE), Response Surface Methods (RSM) and Computational Fluid Dynamics (CFD). Specifically, the nonlinear (elliptical) planform shape of ceiling fan blade is investigated in conjunction with blade tip width, root and tip angle of attack. Sixteen cases are designed for three blade ceiling fan using two level full factorial model. The flow field is modeled using Reynolds-Averaged-Navier-Stokes approach. The performance variables used to formulate a multi-objective optimization problem are volumetric flow rate, torque and energy efficiency. Response Surface Method is used to generate the optimized design for non-linear ceiling fan blade profile. The results reveal that the interactions between the design variables play a significant role in determining the performance. It is concluded that the nonlinear forward sweep has a moderate effect on response parameters.
Publisher
Isfahan University of Technology
Subject
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