Model reduction for active control design using multiple-point Arnoldi methods

A multiple-point Arnoldi method is derived for model reduction of computational fluid dynamic systems. By choosing the number of frequency interpolation points and the number of Arnoldi vectors at each frequency point, the user can select the accuracy and range of validity of the resulting reduced-o...

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Những tác giả chính: Lassaux, G., Willcox, Karen E.
Định dạng: Bài viết
Ngôn ngữ:en_US
Được phát hành: 2003
Những chủ đề:
Truy cập trực tuyến:http://hdl.handle.net/1721.1/3702
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author Lassaux, G.
Willcox, Karen E.
author_facet Lassaux, G.
Willcox, Karen E.
author_sort Lassaux, G.
collection MIT
description A multiple-point Arnoldi method is derived for model reduction of computational fluid dynamic systems. By choosing the number of frequency interpolation points and the number of Arnoldi vectors at each frequency point, the user can select the accuracy and range of validity of the resulting reduced-order model while balancing computational expense. The multiple-point Arnoldi approach is combined with a singular value decomposition approach similar to that used in the proper orthogonal decomposition method. This additional processing of the basis allows a further reduction in the number of states to be obtained, while retaining a significant computational cost advantage over the proper orthogonal decomposition. Results are presented for a supersonic diffuser subject to mass flow bleed at the wall and perturbations in the incoming flow. The resulting reduced-order models capture the required dynamics accurately while providing a significant reduction in the number of states. The reduced-order models are used to generate transfer function data, which are then used to design a simple feedforward controller. The controller is shown to work effectively at maintaining the average diffuser throat Mach number.
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spelling mit-1721.1/37022019-04-10T19:59:01Z Model reduction for active control design using multiple-point Arnoldi methods Lassaux, G. Willcox, Karen E. multiple-point Arnoldi method computational fluid dynamics proper orthogonal decomposition model reduction A multiple-point Arnoldi method is derived for model reduction of computational fluid dynamic systems. By choosing the number of frequency interpolation points and the number of Arnoldi vectors at each frequency point, the user can select the accuracy and range of validity of the resulting reduced-order model while balancing computational expense. The multiple-point Arnoldi approach is combined with a singular value decomposition approach similar to that used in the proper orthogonal decomposition method. This additional processing of the basis allows a further reduction in the number of states to be obtained, while retaining a significant computational cost advantage over the proper orthogonal decomposition. Results are presented for a supersonic diffuser subject to mass flow bleed at the wall and perturbations in the incoming flow. The resulting reduced-order models capture the required dynamics accurately while providing a significant reduction in the number of states. The reduced-order models are used to generate transfer function data, which are then used to design a simple feedforward controller. The controller is shown to work effectively at maintaining the average diffuser throat Mach number. Singapore-MIT Alliance (SMA) 2003-11-17T17:30:46Z 2003-11-17T17:30:46Z 2003-01 Article http://hdl.handle.net/1721.1/3702 en_US High Performance Computation for Engineered Systems (HPCES); 400302 bytes application/pdf application/pdf
spellingShingle multiple-point Arnoldi method
computational fluid dynamics
proper orthogonal decomposition
model reduction
Lassaux, G.
Willcox, Karen E.
Model reduction for active control design using multiple-point Arnoldi methods
title Model reduction for active control design using multiple-point Arnoldi methods
title_full Model reduction for active control design using multiple-point Arnoldi methods
title_fullStr Model reduction for active control design using multiple-point Arnoldi methods
title_full_unstemmed Model reduction for active control design using multiple-point Arnoldi methods
title_short Model reduction for active control design using multiple-point Arnoldi methods
title_sort model reduction for active control design using multiple point arnoldi methods
topic multiple-point Arnoldi method
computational fluid dynamics
proper orthogonal decomposition
model reduction
url http://hdl.handle.net/1721.1/3702
work_keys_str_mv AT lassauxg modelreductionforactivecontroldesignusingmultiplepointarnoldimethods
AT willcoxkarene modelreductionforactivecontroldesignusingmultiplepointarnoldimethods