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  <title><![CDATA[PhD Proposal by  Chrysoula Lydia Pastra]]></title>
  <body><![CDATA[<p><span><span><strong><span><span><span> Chrysoula Lydia Pastra</span></span></span></strong></span></span></p>

<p><span><span><em><span><span><span>(Advisor: Prof. Dimitri Mavris)</span></span></span></em></span></span></p>

<p><span><span><em><span><span><span>will propose a doctoral thesis entitled,</span></span></span></em></span></span></p>

<p><span><span><strong><span><span><span>Methodology formulation for multi-energy sustainable turboprop regional aircraft sizing with airport infrastructure capability constraints</span></span></span></strong></span></span></p>

<p><span><span><strong><em>&nbsp;</em></strong><em><span><span><span>On</span></span></span></em></span></span></p>

<p><span><span><strong><span><span><span>&nbsp;Friday, December 1st at 11:00 a.m. EST</span></span></span></strong></span></span></p>

<p><span><span><strong><span><span><span>Online: </span></span></span></strong><span><span><span><a href="https://teams.microsoft.com/l/meetup-join/19%3ameeting_ODM5ZDU0NTEtNmE3Zi00ZGRkLWI5OTgtNGU4ZWY5NTE1MTA1%40thread.v2/0?context=%7b%22Tid%22%3a%22482198bb-ae7b-4b25-8b7a-6d7f32faa083%22%2c%22Oid%22%3a%2218174f3e-de37-4cae-a0a8-63a2d20ee72c%22%7d" title="https://teams.microsoft.com/l/meetup-join/19%3ameeting_ODM5ZDU0NTEtNmE3Zi00ZGRkLWI5OTgtNGU4ZWY5NTE1MTA1%40thread.v2/0?context=%7b%22Tid%22%3a%22482198bb-ae7b-4b25-8b7a-6d7f32faa083%22%2c%22Oid%22%3a%2218174f3e-de37-4cae-a0a8-63a2d20ee72c%22%7d">Click here to join the meeting</a></span></span></span><strong><span><span><span>,</span></span></span></strong></span></span></p>

<p><span><span><strong><span><span><span>Collaborative Design Environment (CoDE),</span></span></span></strong>&nbsp;</span></span></p>

<p><span><span><strong><span><span><span>Weber Space Science and Technology Building (SST II)</span></span></span></strong>&nbsp;</span></span></p>

<p><span><span><span><span><span>&nbsp;<strong>Abstract</strong></span></span></span></span></span></p>

<p><span><span><span><span><span>&nbsp;With climate change being a more prominent issue in our society, every industry is moving towards more sustainable solutions. The aviation industry has set forth certain goals&nbsp;that it needs to reach to reduce if not eliminate harmful emissions. The aviation industry has been focused on exploring the feasibility and viability of different technological&nbsp;solutions to minimize greenhouse gas emissions, with electrification and hydrogen usage&nbsp;being at the epicenter. Infrastructure and regulation changes are two missing pieces of the&nbsp;puzzle. Technology, infrastructure, and regulations are three pillars that need to be considered simultaneously to accurately evaluate the feasibility of shifting towards a net&nbsp;zero aviation reality in the future. All of these pillars are crucial aspects, and without one,&nbsp;the shift cannot occur.</span></span></span></span></span></p>

<p><span><span><span><span><span>Current state-of-the-art research focuses on technological solutions and their feasibility.&nbsp;Technological solutions such as hybrid electric aircraft, fully electric aircraft, hydrogen-powered aircraft, and sustainable aviation fuels are all evaluated.&nbsp;Researchers perform&nbsp;sizing and synthesis analysis for the new propulsive methods to evaluate the effects on&nbsp;Green House Gases by applying mission and performance constraints, while the infrastructure aspect is evaluated separately. Analysis of what will be required to support the new&nbsp;generation green aircraft is performed such as charging stations, hydrogen hydrants and pipelines, and charging schedule optimizations. The major identified gap in the literature&nbsp;and current research is that the infrastructure needs are not considered as constraints in&nbsp;aircraft sizing and synthesis research. Infrastructure poses a major obstacle to overcome in&nbsp;the transition towards a green aviation reality. Similarly, regulations and incentives have&nbsp;been previously identified but they have not been evaluated in conjunction with infrastructure and design. Additionally, with the variety of technological solutions available, there&nbsp;is an inherent uncertainty on which path different stakeholders will follow, causing further&nbsp;stagnation in infrastructure development. Using the automotive industry as a thou</span></span></span><span><span>g<span>ht experiment,&nbsp;this thesis will explore these identified gaps.</span></span></span></span></span></p>

<p><span><span><span><span><span>The methodology that is proposed within this thesis stems from the realization that these&nbsp;technologies that have been proposed and evaluated in previous research cannot be implemented unless there is a drastic change in infrastructure or infrastructure and technologies&nbsp;are considered as two pieces of the same puzzle and evaluated together. This thesis will be composed of three experiments that will tie together the technology and infrastructure,&nbsp;and in the future can be expanded to also include the third pillar: regulations. The first aspect of this thesis tackles the lack of research that is done on multi-energy source regional&nbsp;aircraft. Although there has been research done on smaller aircraft and UAVs using both&nbsp;hydrogen fuel cells, and batteries for an energy-sharing topology, detailed trades and sizing&nbsp;evaluations have been lacking. The first experiment aims to show that an energy-sharing&nbsp;aircraft can provide significantly higher fuel savings than either a purely hybrid electric or&nbsp;hybrid hydrogen fuel cell-powered aircraft. The second experiment will be directly using&nbsp;the optimized multi-energy source aircraft to explore the fleet level impact within the US&nbsp;regional routes and compare those to the purely electric or hydrogen-powered aircraft, and&nbsp;evaluating the fleet level energy requirements that would be necessary to support such a&nbsp;multi-energy source solution. Finally, where the new methodology comes into place is the&nbsp;third experiment. Within this experiment, the optimized aircraft that was sized with traditional sizing and synthesis methods will be evaluated with infrastructure and operational&nbsp;constraints. The new design space will then be evaluated, and different scenarios will be performed to identify how the infrastructure and operational constraints need to be changed in</span></span></span></span></span></p>

<p><span><span><span><span><span>order to allow for the shift towards greener new-generation aircraft. This new design space&nbsp;will allow for constrained optimization and will generate a new optimized aircraft design&nbsp;which is hypothesized to be significantly different than the aircraft produced in experiment&nbsp;1. This methodology will allow future researchers to evaluate new types of technologies&nbsp;in a more holistic way as the current state of the market can also be considered within the&nbsp;sizing and optimization of the aircraft.</span></span></span></span></span></p>

<p><span><span><span><span><span>&nbsp;<strong>Committee</strong></span></span></span></span></span></p>

<ul>
	<li><span><span><span><span><span><span>Prof. Dimitri Mavris – School of Aerospace Engineering (advisor)</span></span></span></span></span></span></li>
	<li><span><span><span><span><span><span>Prof. Brian German – School of Aerospace Engineering</span></span></span></span></span></span></li>
	<li><span><span><span><span><span><span>Prof. Daniel Schrage– School of Aerospace Engineering</span></span></span></span></span></span></li>
	<li><span><span><span><span><span><span>Dr. &nbsp;Pfaender Holger – School of Aerospace Engineering</span></span></span></span></span></span></li>
	<li><span><span><span><span><span><span>Dr. Eric Upton – Gulfstream Aerospace</span></span></span></span></span></span></li>
</ul>
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