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  <title><![CDATA[PhD Defense by Amanda Grubb]]></title>
  <body><![CDATA[<p>Amanda Grubb<br />
(Advisor: Marilyn Smith)<br />
will defend a doctoral thesis entitled,<br />
Computational Investigation of Separated Flow and Stall Events on Rotating<br />
Systems<br />
On<br />
Wednesday, April 13 at 10:00 a.m.<br />
Weber 200<br />
Abstract<br />
Helicopters have traditionally been largely associated with military use. Over the past decade,<br />
new and diverse commercial applications have been discovered for vehicles that can<br />
takeoff/land vertically and achieve mid-flight hover. The need for a new military rotorcraft<br />
fleet, coupled with the explosion of potential commercial applications, has created a sense of<br />
urgency in developing next generation rotorcraft with improved speed, range, and agility.<br />
Rotorcraft are highly complex, dynamic vehicles with aeromechanics that are conducive to<br />
challenging problems. Many problems encountered by rotorcraft are a result of flow<br />
separation on the rotor. Increased speed, range, and agility requirements will only exacerbate<br />
these effects. Understanding flow separation on the rotor plane and the effects it has on the<br />
vehicle is fundamental to solving problems facing the next generation of rotorcraft<br />
development. The best approach to fully understand flow separation on the rotor plane is<br />
through a combination of experimentation and computational fluid dynamics.<br />
This dissertation couples high fidelity CFD with trusted experimental data sets to create a<br />
complete picture of rotorcraft flowfields for study. State-of-the-art CFD modeling techniques,<br />
many of which have not been addressed recently, are evaluated to identify and quantify their<br />
capabilities and limitations. This includes grid refinement approach, numerical approach,<br />
turbulence model effectiveness, and aeroelastic coupling bias. Rich flowfield data from CFD,<br />
coupled with experimental data, are explored to further understand separated flow on the<br />
rotor and its effects on rotorcraft performance. Separated flow is classified by separation<br />
mechanism via isolation of blade motion from shed tip vortices. Dominant flowfield vortices<br />
are studied to understand their impact on rotor performance using the Biot-Savart Law.<br />
Committee<br />
&bull; Mr. Rohit Jain<br />
&bull; Dr. Juergen Rauleder<br />
&bull; Dr. Christina Riso<br />
&bull; Dr. Daniel Schrage</p>
]]></body>
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