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Structure Identification Within a Transitioning Swept-Wing Boundary LayerExtensive measurements are made in a transitioning swept-wing boundary layer using hot-film, hot-wire and cross-wire anemometry. The crossflow-dominated flow contains stationary vortices that breakdown near mid-chord. The most amplified vortex wavelength is forced by the use of artificial roughness elements near the leading edge. Two-component velocity and spanwise surface shear-stress correlation measurements are made at two constant chord locations, before and after transition. Streamwise surface shear stresses are also measured through the entire transition region. Correlation techniques are used to identify stationary structures in the laminar regime and coherent structures in the turbulent regime. Basic techniques include observation of the spatial correlations and the spatially distributed auto-spectra. The primary and secondary instability mechanisms are identified in the spectra in all measured fields. The primary mechanism is seen to grow, cause transition and produce large-scale turbulence. The secondary mechanism grows through the entire transition region and produces the small-scale turbulence. Advanced techniques use Linear Stochastic Estimation (LSE) and Proper Orthogonal Decomposition (POD) to identify the spatio-temporal evolutions of structures in the boundary layer. LSE is used to estimate the instantaneous velocity fields using temporal data from just two spatial locations and the spatial correlations. Reference locations are selected using maximum RMS values to provide the best available estimates. POD is used to objectively determine modes characteristic of the measured flow based on energy. The stationary vortices are identified in the first laminar modes of each velocity component and shear component. Experimental evidence suggests that neighboring vortices interact and produce large coherent structures with spanwise periodicity at double the stationary vortex wavelength. An objective transition region detection method is developed using streamwise spatial POD solutions which isolate the growth of the primary and secondary instability mechanisms in the first and second modes, respectively. Temporal evolutions of dominant POD modes in all measured fields are calculated. These scalar POD coefficients contain the integrated characteristics of the entire field, greatly reducing the amount of data to characterize the instantaneous field. These modes may then be used to train future flow control algorithms based on neural networks.
Document ID
19970025578
Acquisition Source
Ames Research Center
Document Type
Contractor Report (CR)
Authors
Chapman, Keith
(Clarkson Univ. Potsdam, NY United States)
Glauser, Mark
(Clarkson Univ. Potsdam, NY United States)
Date Acquired
September 6, 2013
Publication Date
December 1, 1996
Subject Category
Aerodynamics
Report/Patent Number
NASA-CR-205181
MAE-319
NAS 1.26:205181
Report Number: NASA-CR-205181
Report Number: MAE-319
Report Number: NAS 1.26:205181
Accession Number
97N25074
Funding Number(s)
CONTRACT_GRANT: NCC4-110
CONTRACT_GRANT: NAG2-724
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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