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<ArticleSet>
<Article>
<Journal>
				<PublisherName>Amirkabir University of Technology</PublisherName>
				<JournalTitle>Amirkabir Journal of Mechanical Engineering</JournalTitle>
				<Issn>2008-6032</Issn>
				<Volume>54</Volume>
				<Issue>5</Issue>
				<PubDate PubStatus="epublish">
					<Year>2022</Year>
					<Month>07</Month>
					<Day>23</Day>
				</PubDate>
			</Journal>
<ArticleTitle>Numerical Simulation of Flow Separation in a Thrust Optimized Parabolic Nozzle</ArticleTitle>
<VernacularTitle>Numerical Simulation of Flow Separation in a Thrust Optimized Parabolic Nozzle</VernacularTitle>
			<FirstPage>985</FirstPage>
			<LastPage>1006</LastPage>
			<ELocationID EIdType="pii">4732</ELocationID>
			
<ELocationID EIdType="doi">10.22060/mej.2022.20465.7235</ELocationID>
			
			<Language>FA</Language>
<AuthorList>
<Author>
					<FirstName>Sina</FirstName>
					<LastName>Afkhami</LastName>
<Affiliation>Department of Aerospace Engineering, Ferdowsi University, Mashhad, Iran</Affiliation>

</Author>
<Author>
					<FirstName>Nematollah</FirstName>
					<LastName>Fouladi</LastName>
<Affiliation>Space Transportation Research Institute, Iranian Space Research Center, Tehran, Iran</Affiliation>
<Identifier Source="ORCID">0000-0003-2737-0741</Identifier>

</Author>
<Author>
					<FirstName>Mahmood</FirstName>
					<LastName>Pasandideh Fard</LastName>
<Affiliation>Department of Aerospace Engineering, Ferdowsi  University, Mashhad, Iran</Affiliation>
<Identifier Source="ORCID">0000-0003-2498-5476</Identifier>

</Author>
</AuthorList>
				<PublicationType>Journal Article</PublicationType>
			<History>
				<PubDate PubStatus="received">
					<Year>2021</Year>
					<Month>08</Month>
					<Day>25</Day>
				</PubDate>
			</History>
		<Abstract>Complex flow separation in thrust optimized parabolic nozzles in the over-expanded condition is one of the challenging issues of many numerical investigations. The correct estimation of a thrust optimized parabolic nozzle performance extremely depends upon the accurate estimation of the onset of flow separation. Literature review indicates that conventional Reynolds-averaged Navier–Stokes turbulence models have a significant error in predicting the onset of flow separation in these types of nozzles due to the overestimating of turbulent kinetic energy production. Recently proposed generalized k-omega has made it possible to rectify numerical simulations based on governing physics and using limited experimental results. In the present study, the flow physics in the LEA_TOC nozzle has been investigated with the numerical simulation approach. At the first, the significant error of conventional Reynolds-averaged Navier–Stokes turbulence models is shown to simulate flow separation in this type of problem. Then, the generalized k-omega parameters are modified based on the limited experimental result of the LEA_TOC nozzle, and the ability of this model has been evaluated to estimate the flow physics under different pressure ratios. Numerical investigations show that generalized k-omega has a high capability for accurately estimating the onset of flow separation at a wide range of nozzle pressure ratios. Applying the corrected generalized k-omega has resulted in an improvement of about 30% in the estimation of the onset of separation in the over-expanded LEA_TOC nozzle compared to the k-ω-SST model.</Abstract>
			<OtherAbstract Language="FA">Complex flow separation in thrust optimized parabolic nozzles in the over-expanded condition is one of the challenging issues of many numerical investigations. The correct estimation of a thrust optimized parabolic nozzle performance extremely depends upon the accurate estimation of the onset of flow separation. Literature review indicates that conventional Reynolds-averaged Navier–Stokes turbulence models have a significant error in predicting the onset of flow separation in these types of nozzles due to the overestimating of turbulent kinetic energy production. Recently proposed generalized k-omega has made it possible to rectify numerical simulations based on governing physics and using limited experimental results. In the present study, the flow physics in the LEA_TOC nozzle has been investigated with the numerical simulation approach. At the first, the significant error of conventional Reynolds-averaged Navier–Stokes turbulence models is shown to simulate flow separation in this type of problem. Then, the generalized k-omega parameters are modified based on the limited experimental result of the LEA_TOC nozzle, and the ability of this model has been evaluated to estimate the flow physics under different pressure ratios. Numerical investigations show that generalized k-omega has a high capability for accurately estimating the onset of flow separation at a wide range of nozzle pressure ratios. Applying the corrected generalized k-omega has resulted in an improvement of about 30% in the estimation of the onset of separation in the over-expanded LEA_TOC nozzle compared to the k-ω-SST model.</OtherAbstract>
		<ObjectList>
			<Object Type="keyword">
			<Param Name="value">numerical simulation</Param>
			</Object>
			<Object Type="keyword">
			<Param Name="value">Thrust optimized parabolic nozzle</Param>
			</Object>
			<Object Type="keyword">
			<Param Name="value">flow separation pattern</Param>
			</Object>
			<Object Type="keyword">
			<Param Name="value">Generalized k-omega turbulence model</Param>
			</Object>
		</ObjectList>
<ArchiveCopySource DocType="pdf">https://mej.aut.ac.ir/article_4732_fd1d83de2517a02d4e221ede9a681432.pdf</ArchiveCopySource>
</Article>
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