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  <title><![CDATA[PhD Proposal by Amanda Grubb]]></title>
  <body><![CDATA[<p>Computational Characterization and Classification of Transient Stall Events in Rotating Systems</p>

<p>&nbsp;</p>

<p>Ph.D. Thesis Proposal</p>

<p>Amanda Grubb</p>

<p>&nbsp;</p>

<p>11 a.m., Thursday, August 23</p>

<p>Montgomery Knight Building &ndash; Room 317</p>

<p>&nbsp;</p>

<p>&nbsp;</p>

<p>Abstract</p>

<p>Rotorcraft are highly complex dynamic systems and encounter a variety of aerodynamic phenomena not encountered by traditional fixed-wing aircraft.&nbsp; One problem frequently encountered by rotorcraft is the appearance of stall events, which are transient due to the unsteady nature of rotating systems.&nbsp; These complex aerodynamic phenomena are characterized by the convection of a strong vortex core along the rotor blade surface, and may include blade-vortex interactions and classic dynamic stall.&nbsp; Large losses in lift and large negative pitching moments, both of which are detrimental to the integrity of the aircraft, appear during these events.&nbsp; Fully understanding and being able to predict transient stall is of high importance as the rotorcraft community works towards next-generation vehicle design.</p>

<p>&nbsp;</p>

<p>Most transient stall research to date has targeted two-dimensional analyses.&nbsp; However, it has been shown that the inclusion of finite wing and rotational effects is necessary to fully capture and characterize stall behavior on rotorcraft.&nbsp; Initial research into current computational approaches for analyzing stall on three-dimensional, rotating systems has identified several major shortcomings regarding turbulence and transition modeling, grid generation techniques, and the inclusion of aeroelastic effects.&nbsp; The limitations of current computational approaches and recommendations to address these shortcomings are presented.</p>

<p>&nbsp;</p>

<p>The proposed research goals are to address issues with the computational approaches that currently limit the ability to fully characterize and classify these transient stall events on rotating systems.&nbsp; Those changes will be integrated and applied to new high-fidelity computational fluid dynamics and aeroelastic simulations to evaluate their effects when dynamic flow separation is encountered.&nbsp; The approach will then be applied to available rotor geometries to establish an initial database which characterizes and classifies these events on rotating systems.</p>

<p>&nbsp;</p>

<p>Committee</p>

<p>Prof. Marilyn Smith (Advisor), Georgia Institute of Technology, Aerospace Engineering</p>

<p>Prof. Ari Glezer, Georgia Institute of Technology, Mechanical Engineering</p>

<p>Mr. Rohit Jain, U.S. Army AMRDEC, Aviation Development Directorate</p>

<p>Dr. Marvin Moulton, U.S. Army AMRDEC, Aviation Engineering Directorate</p>

<p>Prof. Stephen Ruffin, Georgia Institute of Technology, Aerospace Engineering</p>

<p>Prof. Daniel Schrage, Georgia Institute of Technology, Aerospace Engineering</p>
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