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      Parametric Aeroelastic Reduced-Order Model with State-Consistence Enforcement

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          Abstract

          State-space reduced-order models (ROMs) constructed by traditional system identification methods suffer from the state-inconsistence issue and poor ROM interpolatability for varying flight conditions. This paper presents a novel system identification method and a state-consistence enforcement (SCE) algorithm to generate a state-space aeroelastic (AE)-ROM within a broad flight parameter space. A new regularization term is proposed to modify the traditional autoregressive exogenous formulation and specifically penalize state inconsistence between ROMs at varying flight conditions. The new formulation cast in the form of the generalized Tikhonov regularization problem can be computed very efficiently and produce fundamentally state-consistent ROMs. Rigorous numerical analysis that compares the state-consistent AE-ROM with the full-order model and the ROM without SCE is also conducted. The results convincingly prove that the proposed approach significantly improves the state consistence of ROMs at varying flight conditions. To the best of our knowledge, this research represents the first effort of developing a state-consistent data-driven AE-ROM and enabling aeroelasticity analysis within a broad flight parameter space.

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                Author and article information

                Contributors
                Conference
                aiaaj
                AIAA Journal
                AIAA Journal
                American Institute of Aeronautics and Astronautics
                1533-385X
                22 December 2022
                March 2023
                : 61
                : 3
                : 1109-1128
                Affiliations
                University of South Carolina , Columbia, South Carolina 29208
                CFD Research Corporation , Huntsville, Alabama 35806
                Author notes
                [*]

                Postdoctoral Research Fellow, Department of Mechanical Engineering; jshu@ 123456mailbox.sc.edu . Member AIAA.

                [†]

                Associate Professor, Department of Mechanical Engineering; yiwang@ 123456cec.sc.edu . Senior Member AIAA (Corresponding Author).

                [‡]

                Project Engineer.

                [§]

                Executive Vice President.

                Article
                J062274 J062274
                10.2514/1.J062274
                9b707c0b-f3c6-4ce6-a8b4-59b0d6a1415c
                Copyright © 2022 by Jung Il Shu and Yi Wang. Published by the American Institute of Aeronautics and Astronautics, Inc., with permission. All requests for copying and permission to reprint should be submitted to CCC at www.copyright.com; employ the eISSN 1533-385X to initiate your request. See also AIAA Rights and Permissions www.aiaa.org/randp.
                History
                : 22 July 2022
                : 08 October 2022
                : 05 November 2022
                Page count
                Figures: 15, Tables: 7
                Funding
                Funded by: Langley Research Centerhttp://dx.doi.org/10.13039/100006199
                Award ID: 80NSSC19C0087
                Categories
                p2263, Fluid Dynamics
                p3304, Numerical Analysis
                p1811, Aeroelasticity
                p3282, Computational Fluid Dynamics
                p1804, Aerodynamics
                p28499, Numerical Interpolation
                p2057, Finite Element Method
                p2235, Structures, Design and Test
                p2228, Aerospace Sciences
                p2073, Aeronautics
                Regular Articles

                Engineering,Physics,Mechanical engineering,Space Physics
                Reynolds Averaged Navier Stokes,Model Order Reduction,Aeroelastic Analysis,Computational Fluid Dynamics,Stability Derivatives,Numerical Interpolation,Eigensystem Realization Algorithm,Finite Element Method,State-Space Systems,System Identification

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