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  <title><![CDATA[PhD Defense by  Alex Michael Moushegian]]></title>
  <body><![CDATA[<p>&nbsp;</p>

<p>Date: Tuesday, April 19<sup>th</sup></p>

<p>Time: 1:00 PM to 4:00 PM</p>

<p>Location: Montgomery Knight Room 317 and TEAMs (<a href="https://teams.microsoft.com/l/meetup-join/19%3ameeting_MWI5NjQxYmEtY2U3NS00M2I1LWFkNGYtMTdmYmJhYTUzY2Ix%40thread.v2/0?context=%7b%22Tid%22%3a%22482198bb-ae7b-4b25-8b7a-6d7f32faa083%22%2c%22Oid%22%3a%22f5f8364d-3599-4f46-b00a-9a0064279df4%22%7d" target="_blank">https://teams.microsoft.com/l/meetup-join/19%3ameeting_MWI5NjQxYmEtY2U3NS00M2I1LWFkNGYtMTdmYmJhYTUzY2Ix%40thread.v2/0?context=%7b%22Tid%22%3a%22482198bb-ae7b-4b25-8b7a-6d7f32faa083%22%2c%22Oid%22%3a%22f5f8364d-3599-4f46-b00a-9a0064279df4%22%7d</a>)</p>

<p>Title: &ldquo;Dual Solver Computational Modeling of Ship-Helicopter Dynamic Interface Aeromechanics&rdquo;</p>

<p>Author: Alex Michael Moushegian</p>

<p>Advisor: Prof. Marilyn J. Smith</p>

<p>Committee:</p>

<p>&nbsp;</p>

<p>Dr. Marilyn J. Smith &ndash; School of Aerospace Engineering (Advisor)</p>

<p>Dr. Glen R. Whitehouse &ndash; Continuum Dynamics, Inc.</p>

<p>Dr. J. V. R. Prasad &ndash; School of Aerospace Engineering</p>

<p>Dr. Juergen Rauleder &ndash; School of Aerospace Engineering</p>

<p>Dr. Susan A. Polsky &ndash; NAVAIR, Patuxent River</p>

<p>&nbsp;</p>

<p>Abstract:&nbsp;</p>

<p>&nbsp;</p>

<p>Shipboard landings are a fundamental capability of naval aircraft operations and present a unique challenge to helicopter pilots due to the complex aerodynamic interactions between the ship airwake and the helicopter aerodynamics, known as the dynamic interface (DI).&nbsp; As such, detailed analysis and testing must be done to establish the range of safe conditions at which these maneuvers can be performed, as well as to train pilots to perform them.&nbsp; With the advancement of computational power in the last two to three decades, computational tools have been investigated as a way to supplement flight testing for characterization of the DI.&nbsp; Hybrid CFD techniques have been developed in recent years with the intent of reducing the cost of rotorcraft computational fluid dynamics (CFD) simulations through coupling of an unsteady Reynolds-averaged Navier-Stokes (uRANS) solver with various lower-order computational aerodynamic solvers.&nbsp; Particularly promising for DI applications is the hybrid uRANS/free-vortex wake methodology, which uses uRANS to compute the rotor wake in the near-field and a potential flow model in the far-field.&nbsp; This technique allows wake-body and wake-wake interactions in the DI to be modeled without the need for a highly resolved uRANS domain in the large region between the ship and the helicopter.</p>

<p>This research describes the necessary improvements and extensions of a hybrid uRANS/free-wake solver, OVERFLOW-CHARM, required to accurately characterize DI aerodynamics.&nbsp; These improvements are demonstrated and validated on model problems which include fundamental physics of the DI. First, OVERFLOW-CHARM is applied to analysis of an integrated propulsion system where interactional aerodynamics influence the performance of both the propeller and the wing.&nbsp; Second, OVERFLOW-CHARM is applied to rotors in ground effect, where its capabilities are quantified at a range of rotor scales.&nbsp; This verifies that OVERFLOW-CHARM will be able to accurately capture the interaction of the rotor wake with the ship deck during shipboard landing simulations.&nbsp; Finally, OVERFLOW-CHARM simulations replicating a flight test of the UH-60L helicopter operating within the influence of a model LPD-17 hangar face are performed to investigate OVERFLOW-CHARM&#39;s capabilities at capturing low-speed object-induced recirculation (LOIDR) effects which impact helicopter performance in the DI.</p>

<p>&nbsp;</p>
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