Matches in SemOpenAlex for { <https://semopenalex.org/work/W1996625590> ?p ?o ?g. }
Showing items 1 to 72 of
72
with 100 items per page.
- W1996625590 abstract "An investigation of the aeroheating environment of the Project Orion Crew Exploration Vehicle was performed in the Arnold Engineering Development Center Hypervelocity Wind Tunnel No. 9 Mach 8 and Mach 10 nozzles and in the NASA Langley Research Center 20 - Inch Mach 6 Air Tunnel. Heating data were obtained using a thermocouple-instrumented approx.0.035-scale model (0.1778-m/7-inch diameter) of the flight vehicle. Runs were performed in the Tunnel 9 Mach 10 nozzle at free stream unit Reynolds numbers of 1x10(exp 6)/ft to 20x10(exp 6)/ft, in the Tunnel 9 Mach 8 nozzle at free stream unit Reynolds numbers of 8 x 10(exp 6)/ft to 48x10(exp 6)/ft, and in the 20-Inch Mach 6 Air Tunnel at free stream unit Reynolds numbers of 1x10(exp 6)/ft to 7x10(exp 6)/ft. In both facilities, enthalpy levels were low and the test gas (N2 in Tunnel 9 and air in the 20-Inch Mach 6) behaved as a perfect-gas. These test conditions produced laminar, transitional and turbulent data in the Tunnel 9 Mach 10 nozzle, transitional and turbulent data in the Tunnel 9 Mach 8 nozzle, and laminar and transitional data in the 20- Inch Mach 6 Air Tunnel. Laminar and turbulent predictions were generated for all wind tunnel test conditions and comparisons were performed with the experimental data to help define the accuracy of computational method. In general, it was found that both laminar data and predictions, and turbulent data and predictions, agreed to within less than the estimated 12% experimental uncertainty estimate. Laminar heating distributions from all three data sets were shown to correlate well and demonstrated Reynolds numbers independence when expressed in terms of the Stanton number based on adiabatic wall-recovery enthalpy. Transition onset locations on the leeside centerline were determined from the data and correlated in terms of boundary-layer parameters. Finally turbulent heating augmentation ratios were determined for several body-point locations and correlated in terms of the boundary-layer momentum Reynolds number." @default.
- W1996625590 created "2016-06-24" @default.
- W1996625590 creator A5007207274 @default.
- W1996625590 creator A5013816306 @default.
- W1996625590 creator A5036696904 @default.
- W1996625590 creator A5051237104 @default.
- W1996625590 creator A5054334221 @default.
- W1996625590 creator A5054364607 @default.
- W1996625590 creator A5081310850 @default.
- W1996625590 date "2008-01-07" @default.
- W1996625590 modified "2023-10-03" @default.
- W1996625590 title "Aeroheating Testing and Predictions for Project Orion CEV at Turbulent Conditions" @default.
- W1996625590 cites W1990740199 @default.
- W1996625590 cites W1998830482 @default.
- W1996625590 cites W2018211987 @default.
- W1996625590 cites W2019020029 @default.
- W1996625590 cites W2056155079 @default.
- W1996625590 cites W2058667308 @default.
- W1996625590 cites W2314673856 @default.
- W1996625590 cites W2321790482 @default.
- W1996625590 cites W2335006263 @default.
- W1996625590 cites W4245037559 @default.
- W1996625590 cites W4248010643 @default.
- W1996625590 doi "https://doi.org/10.2514/6.2008-1226" @default.
- W1996625590 hasPublicationYear "2008" @default.
- W1996625590 type Work @default.
- W1996625590 sameAs 1996625590 @default.
- W1996625590 citedByCount "21" @default.
- W1996625590 countsByYear W19966255902013 @default.
- W1996625590 countsByYear W19966255902014 @default.
- W1996625590 countsByYear W19966255902015 @default.
- W1996625590 countsByYear W19966255902017 @default.
- W1996625590 countsByYear W19966255902018 @default.
- W1996625590 countsByYear W19966255902020 @default.
- W1996625590 countsByYear W19966255902023 @default.
- W1996625590 crossrefType "proceedings-article" @default.
- W1996625590 hasAuthorship W1996625590A5007207274 @default.
- W1996625590 hasAuthorship W1996625590A5013816306 @default.
- W1996625590 hasAuthorship W1996625590A5036696904 @default.
- W1996625590 hasAuthorship W1996625590A5051237104 @default.
- W1996625590 hasAuthorship W1996625590A5054334221 @default.
- W1996625590 hasAuthorship W1996625590A5054364607 @default.
- W1996625590 hasAuthorship W1996625590A5081310850 @default.
- W1996625590 hasBestOaLocation W19966255902 @default.
- W1996625590 hasConcept C121332964 @default.
- W1996625590 hasConcept C127313418 @default.
- W1996625590 hasConcept C153294291 @default.
- W1996625590 hasConcept C196558001 @default.
- W1996625590 hasConcept C41008148 @default.
- W1996625590 hasConceptScore W1996625590C121332964 @default.
- W1996625590 hasConceptScore W1996625590C127313418 @default.
- W1996625590 hasConceptScore W1996625590C153294291 @default.
- W1996625590 hasConceptScore W1996625590C196558001 @default.
- W1996625590 hasConceptScore W1996625590C41008148 @default.
- W1996625590 hasLocation W19966255901 @default.
- W1996625590 hasLocation W19966255902 @default.
- W1996625590 hasOpenAccess W1996625590 @default.
- W1996625590 hasPrimaryLocation W19966255901 @default.
- W1996625590 hasRelatedWork W1999913942 @default.
- W1996625590 hasRelatedWork W2086120259 @default.
- W1996625590 hasRelatedWork W2137941439 @default.
- W1996625590 hasRelatedWork W2245170124 @default.
- W1996625590 hasRelatedWork W2324615561 @default.
- W1996625590 hasRelatedWork W2358668433 @default.
- W1996625590 hasRelatedWork W2390279801 @default.
- W1996625590 hasRelatedWork W2748952813 @default.
- W1996625590 hasRelatedWork W2899084033 @default.
- W1996625590 hasRelatedWork W3186982001 @default.
- W1996625590 isParatext "false" @default.
- W1996625590 isRetracted "false" @default.
- W1996625590 magId "1996625590" @default.
- W1996625590 workType "article" @default.