Bulletin of the American Physical Society
71st Annual Meeting of the APS Division of Fluid Dynamics
Volume 63, Number 13
Sunday–Tuesday, November 18–20, 2018; Atlanta, Georgia
Session G39: Turbulence: General II
10:35 AM–12:45 PM,
Monday, November 19, 2018
Georgia World Congress Center
Room: Ballroom 3/4
Chair: Maziar Hemati, University of Minnesota
Abstract ID: BAPS.2018.DFD.G39.2
Abstract: G39.00002 : Physics-based multi-sensor fusion for statistically optimal reconstruction of wall-bounded turbulence
10:48 AM–11:01 AM
Presenter:
Mengying Wang
(Univ of Minnesota-Twin Cities)
Authors:
Mengying Wang
(Univ of Minnesota-Twin Cities)
C Vamsi Krishna
(Univ of Southern California)
Mitul Luhar
(Univ of Southern California)
Maziar Sam Hemati
(Univ of Minnesota - Twin Cities)
High-resolution spatiotemporal measurements of wall-bounded turbulence can be challenging to obtain in experiments. Instrumentation that can achieve the requisite temporal resolution (e.g., hot-wire anemometry) is typically confined to point measurements that restrict spatial fidelity; likewise, systems capable of obtaining spatially-resolved field measurements (e.g., PIV) usually lack the sampling rates required to achieve adequate temporal fidelity. In this study, we present a Bayesian estimation framework to fuse noisy multi-rate and multi-fidelity sensor measurements with uncertain predictions from a physics-based fluid dynamics model--derived using Rapid Distortion Theory. A “fast” Kalman filter is designed to fuse model predictions with high-rate point measurements; a “slow” Kalman filter is then used to fuse these time-resolved estimates with sub-Nyquist-rate field measurements to maintain spatial fidelity of the reconstruction. The method is demonstrated on a turbulent channel flow using direct numerical simulation data from the Johns Hopkins Turbulence Database. Optimal point-sensor placement is also investigated. Overall, the physics-based multi-sensor fusion approach yields unbiased and minimum variance spatiotemporal reconstructions of wall-bounded turbulent flows.
To cite this abstract, use the following reference: http://meetings.aps.org/link/BAPS.2018.DFD.G39.2
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