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Aerodynamics and Fluid Mechanics Commons™
Open Access. Powered by Scholars. Published by Universities.®
- Discipline
- Keyword
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- Aerodynamic engineering (1)
- Aerodynamic theory (1)
- Aircraft (1)
- Atmospheric turbulence effects (1)
- Bubble column droplet generation (1)
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- Burble (1)
- CFD Acceleration (1)
- Compressible Corrections (1)
- Computational Fluid Dynamics (1)
- Controlled droplet generation (1)
- Fluids (1)
- Parameter Estimation (1)
- Particle tracking velocimetry (1)
- Potential Flow (1)
- RANS (1)
- Reynolds-Averaged Navier-Stokes (1)
- Rudderless Aircraft (1)
- Sensitivity (1)
- Shadowgraph imaging (1)
- Simulation (1)
- Sonic boom loudness (1)
- Strand Grids Cartesian Overset Domain Connectivity (1)
- Subsonic flow (1)
- Supersonic (1)
- Synthetic jet actuators (1)
- System Identification (1)
- Publication
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- All Graduate Reports and Creative Projects, Fall 2023 to Present (3)
- All Graduate Plan B and other Reports, Spring 1920 to Spring 2023 (2)
- Student Research Symposium (2)
- All Graduate Theses and Dissertations, Spring 1920 to Summer 2023 (1)
- Mechanical and Aerospace Engineering Student Publications and Presentations (1)
- Publication Type
Articles 1 - 9 of 9
Full-Text Articles in Aerodynamics and Fluid Mechanics
Accelerating Rans Cfd Convergence For Bluff Body Flows Using Surface-Vorticity Panel Solver Initialization, Trisha Babu
Accelerating Rans Cfd Convergence For Bluff Body Flows Using Surface-Vorticity Panel Solver Initialization, Trisha Babu
All Graduate Reports and Creative Projects, Fall 2023 to Present
Reynolds-Averaged Navier--Stokes (RANS) simulations are widely used for predicting aerodynamic performance in engineering applications but often require substantial computational time to achieve convergence, particularly for bluff-body flows characterized by large-scale separation and wake formation. Improving the initialization of CFD simulations offers a practical approach for reducing computational cost without modifying the underlying numerical algorithms. This study investigates the use of a surface-vorticity panel solver (FlightStream) to generate physically informed velocity fields for initializing steady RANS simulations in STAR-CCM+.
Two canonical bluff-body geometries are considered: a sphere at a Reynolds number of 5 X 105 and an isolated cube at …
Development And Application Of Novel Apparatus For Ocean Spray In Turbulent Atmospheres, Alicyn S. Koldewyn
Development And Application Of Novel Apparatus For Ocean Spray In Turbulent Atmospheres, Alicyn S. Koldewyn
All Graduate Reports and Creative Projects, Fall 2023 to Present
Ocean spray droplets can have significant effects including reducing surface heating from the sun, degrading air quality, and intensifying tropical cyclones. However, quantifying these effects has been challenging due to the multiscale, chaotic nature of wave breaking and turbulent flow. This research presents the development of a novel apparatus designed to combine bubble column droplet generation with synthetic jet actuators for turbulence generation. The purpose is to demonstrate reliable bubble formation and droplet generation, air turbulence effect on droplet dynamics, and quantitative measurement and analysis of these effects. The primary goals of the apparatus include optical accessibility for high-resolution imaging, …
Production And Decay Of Sheared Turbulence In A Turbulence Box, Ankit Gautam
Production And Decay Of Sheared Turbulence In A Turbulence Box, Ankit Gautam
Student Research Symposium
Introduction
- Turbulence
- Irregular flow with eddies, swirls, and flow instabilities
Simulating Low Gravity Particle Dynamics, Ryan Lewis
Simulating Low Gravity Particle Dynamics, Ryan Lewis
Student Research Symposium
- Vibrating motors prevent particle arches from forming and clogging nozzle.
- A metal mesh under the nozzle creates an evenly dispersed stream.
- Nozzle is static dissipative to ensure particles have consistent path through the charging section.
Equivalent-Area Studies For Sonic Boom Loudness Mitigation On A Commercial Supersonic Aircraft Configuration, Zachary N. Foster
Equivalent-Area Studies For Sonic Boom Loudness Mitigation On A Commercial Supersonic Aircraft Configuration, Zachary N. Foster
All Graduate Reports and Creative Projects, Fall 2023 to Present
Since the early 1970s, the FAA has banned commercial supersonic flight over populated areas. This ban has limited aerospace manufacturers’ and commercial aircraft companies’ ability to design and operate subsonic aircraft in their fleets. Since then, research has been conducted to understand the sonic boom and learn how to minimize its loudness. The work presented in this project report aims to use a 1D low-fidelity analysis to study the effect of perturbations to the outer mold line (OML) of a representative model of the N+2 Quiet Commercial Supersonic Concept Aircraft. Using a 1D analysis that employs an equivalent area method, …
On The History And Semantics Of Burble In Aerodynamic Theory, Benjamin C. Moulton, Cory D. Goates, Troy A. Abraham
On The History And Semantics Of Burble In Aerodynamic Theory, Benjamin C. Moulton, Cory D. Goates, Troy A. Abraham
Mechanical and Aerospace Engineering Student Publications and Presentations
The term burble has been in use in aerodynamic theory for over a century. While burble may be unfamiliar to most contemporary aerodynamicists, the word has a rich history based in aerodynamic theory and experimentation. The present paper outlines the fluidity of burble's meaning over time. From analyzing subsonic flow over an airfoil, to the implementation of stochastic turbulence in aircraft carrier landing simulations, the term burble has had a significant impact on the study of aerodynamics. The term burble has fallen out of use in aerodynamic engineering circles. Why did this happen? And what can be learned from the …
Sensitivity And Estimation Of Aerodynamic, Propulsion, And Inertial Parameters For Rudderless Aircraft Using Simulation, Jaden W. Thurgood
Sensitivity And Estimation Of Aerodynamic, Propulsion, And Inertial Parameters For Rudderless Aircraft Using Simulation, Jaden W. Thurgood
All Graduate Theses and Dissertations, Spring 1920 to Summer 2023
A technique known as system identification is often used in aircraft design and testing to understand and validate the mathematical parameters that describe the aircrafts stability and handling characteristics. System identification can be thought of as the inverse of simulation. In the world of system identification, we have a physical system that we seek to understand in more detail by monitoring the system with an array of sensors. In short, we conduct tests of an aircraft while recording the inputs and response outputs. Then we take the input and output data and run it through an algorithm that seeks to …
A Comparison Of The Aerodynamic Centers For Panel Code Compressible Corrections And Openfoam 5 For Mach 0.1 To 0.8, Dustin Weaver
A Comparison Of The Aerodynamic Centers For Panel Code Compressible Corrections And Openfoam 5 For Mach 0.1 To 0.8, Dustin Weaver
All Graduate Plan B and other Reports, Spring 1920 to Spring 2023
It is known that the aerodynamic center changes from quarter chord to half chord from incompressible to compressible flows on airfoils. Compressible corrections are derived and implemented in a vortex panel code. These results will be used to find the aerodynamic centers for the specified Mach range of 0.1 to 0.8 in 0.1 increments within - 6 to 6 degrees angle of attack. OpenFOAM 5 cases will be created with specific meshes and settings. The results calculated from OpenFOAM 5 will be compared to the results obtained from the compressible corrections.
Application Of Strand-Cartesian Interfaced Solver On Flows Around Various Geometries, Yushi Yanagita
Application Of Strand-Cartesian Interfaced Solver On Flows Around Various Geometries, Yushi Yanagita
All Graduate Plan B and other Reports, Spring 1920 to Spring 2023
This work examines the application of a high-order numerical method to strand-based grids to solve the Navier-Stokes equations. Coined "Flux Correction", this method eliminates error terms in the fluxes of traditional second-order finite volume Galerkin methods. Flux Correction is first examined for applications to the Reynolds-Averaged Navier-Stokes equations to compute turbulent flows on a strictly strand-based domain. Flow over three geometries are examined to demonstrate the method’s capabilities: a three-dimensional bump, an infinite wing, and a hemisphere-cylinder configuration. Comparison to results obtained from established codes show that the turbulent Flux Correction scheme accurately predicts flow properties such as pressure, velocity …