Matches in SemOpenAlex for { <https://semopenalex.org/work/W3197197867> ?p ?o ?g. }
Showing items 1 to 69 of
69
with 100 items per page.
- W3197197867 endingPage "40" @default.
- W3197197867 startingPage "35" @default.
- W3197197867 abstract "The development and improvement of turboprop engines are one of the important tasks of modern aircraft engine building. Propeller performance significantly affects the overall efficiency of turboprop engines. An important issue is to increase the trust of the propeller or propfan. In this matter, promising energy methods for increasing lift deserve special attention. Energy methods for increasing the lift force are based on the use of additional energy from the power plant to improve the flow around the blade and increase its bearing properties. The purpose of this work is to assess the influence of the boundary layer control on the blades of a coaxial propfan on the thrust. A coaxial propfan was chosen as the object of research. The rotor fan consists of two rows of blades, the first row has eight blades, the second - six. The peripheral diameter of the blades of the propfan is the same and amounts to 4.5 m. The cruise mode of operation was selected for the study. Modeling the flow in a coaxial propfan was based on the solution of the Navier-Stokes system of equations, which was closed by the SST Gamma Theta Transition model of turbulent viscosity. The computational grid consisted of 20 million cells, type-block, structured and unstructured with an adaptation of the boundary layer. In this study, an active boundary layer control method was chosen. The boundary layer was controlled only on the blades of the first row of the propfan. In the peripheral region of the blade, an additional mass of air was blown out through the slot, at a distance of 70 % of the profile chord. Blowing out a thin jet near the blade wall to increase the flow energy serves as an effective means of controlling the flow separation and increasing the bearing capacity of the propfan blade. Analysis of the simulation of the flow in a propfan with control of the boundary layer showed that the addition of energy to the boundary layer contributes to the filling of the velocity profile in the boundary layer, leads to a decrease in resistance and an increase in the thrust of the propfan. The results of the study showed that for the studied scheme of blowing out an additional mass of air on the propeller blades, it is possible to increase the thrust force up to 100 N. In the future, it is planned to investigate other schemes for controlling the boundary layer to increase the thrust of the coaxial propfan." @default.
- W3197197867 created "2021-09-13" @default.
- W3197197867 creator A5021008718 @default.
- W3197197867 creator A5057093631 @default.
- W3197197867 creator A5067472812 @default.
- W3197197867 date "2021-08-27" @default.
- W3197197867 modified "2023-09-25" @default.
- W3197197867 title "Моделювання течії в співвісному гвинтовентиляторі з управлінням примежовим шаром" @default.
- W3197197867 doi "https://doi.org/10.32620/aktt.2021.4sup1.05" @default.
- W3197197867 hasPublicationYear "2021" @default.
- W3197197867 type Work @default.
- W3197197867 sameAs 3197197867 @default.
- W3197197867 citedByCount "0" @default.
- W3197197867 crossrefType "journal-article" @default.
- W3197197867 hasAuthorship W3197197867A5021008718 @default.
- W3197197867 hasAuthorship W3197197867A5057093631 @default.
- W3197197867 hasAuthorship W3197197867A5067472812 @default.
- W3197197867 hasBestOaLocation W31971978671 @default.
- W3197197867 hasConcept C111603439 @default.
- W3197197867 hasConcept C124101348 @default.
- W3197197867 hasConcept C127413603 @default.
- W3197197867 hasConcept C139002025 @default.
- W3197197867 hasConcept C146978453 @default.
- W3197197867 hasConcept C1633027 @default.
- W3197197867 hasConcept C17281054 @default.
- W3197197867 hasConcept C199104240 @default.
- W3197197867 hasConcept C41008148 @default.
- W3197197867 hasConcept C43227947 @default.
- W3197197867 hasConcept C51221625 @default.
- W3197197867 hasConcept C66938386 @default.
- W3197197867 hasConcept C78519656 @default.
- W3197197867 hasConcept C79420006 @default.
- W3197197867 hasConcept C80055088 @default.
- W3197197867 hasConceptScore W3197197867C111603439 @default.
- W3197197867 hasConceptScore W3197197867C124101348 @default.
- W3197197867 hasConceptScore W3197197867C127413603 @default.
- W3197197867 hasConceptScore W3197197867C139002025 @default.
- W3197197867 hasConceptScore W3197197867C146978453 @default.
- W3197197867 hasConceptScore W3197197867C1633027 @default.
- W3197197867 hasConceptScore W3197197867C17281054 @default.
- W3197197867 hasConceptScore W3197197867C199104240 @default.
- W3197197867 hasConceptScore W3197197867C41008148 @default.
- W3197197867 hasConceptScore W3197197867C43227947 @default.
- W3197197867 hasConceptScore W3197197867C51221625 @default.
- W3197197867 hasConceptScore W3197197867C66938386 @default.
- W3197197867 hasConceptScore W3197197867C78519656 @default.
- W3197197867 hasConceptScore W3197197867C79420006 @default.
- W3197197867 hasConceptScore W3197197867C80055088 @default.
- W3197197867 hasIssue "4sup1" @default.
- W3197197867 hasLocation W31971978671 @default.
- W3197197867 hasLocation W31971978672 @default.
- W3197197867 hasOpenAccess W3197197867 @default.
- W3197197867 hasPrimaryLocation W31971978671 @default.
- W3197197867 hasRelatedWork W1488669384 @default.
- W3197197867 hasRelatedWork W2781755601 @default.
- W3197197867 hasRelatedWork W3187664003 @default.
- W3197197867 hasRelatedWork W4281482521 @default.
- W3197197867 hasRelatedWork W4292428547 @default.
- W3197197867 hasRelatedWork W4304810528 @default.
- W3197197867 hasRelatedWork W4312579694 @default.
- W3197197867 hasRelatedWork W4364355472 @default.
- W3197197867 hasRelatedWork W4366077567 @default.
- W3197197867 hasRelatedWork W4379472851 @default.
- W3197197867 isParatext "false" @default.
- W3197197867 isRetracted "false" @default.
- W3197197867 magId "3197197867" @default.
- W3197197867 workType "article" @default.