Expand this Topic clickable element to expand a topic
Skip to content
Optica Publishing Group

Dynamic mode decomposition based predictive model performance on supersonic and transonic aero-optical wavefront measurements

Not Accessible

Your library or personal account may give you access

Abstract

Air density variations around an airborne directed energy system distort a beam’s wavefront, resulting in degraded performance after propagation into the far field. Adaptive optics (AO) can be used to correct for these rapidly evolving aero-optical aberrations; however, in some conditions, the inherent latency between measurement and correction in state-of-the-art AO systems results in significantly reduced performance. Predictive AO control methods utilize future state predictions to compensate for rapidly evolving distortions and are promising techniques for mitigating this limitation. This paper demonstrates an application of the dynamic mode decomposition (DMD) method on turbulent boundary layer wavefront data from supersonic and transonic wind tunnel flow from the Air Force Research Laboratory’s Aero-Effects Laboratory. DMD is a lightweight algorithm used to isolate spatiotemporal patterns in a dataset into physically meaningful modes with associated dynamics, which were used to predict future states from a given wavefront. This method showed notable improvements in simulated wavefront correction, providing a reduction of residual wavefront distortion, measured as root mean square over the aperture, by up to 25.4% over a simulated latency model, which could accordingly result in higher laser system performance.

© 2021 Optical Society of America

Full Article  |  PDF Article
More Like This
Generalizable turbulent flow forecasting for adaptive optics control

Benjamin D. Shaffer, Jeremy R. Vorenberg, Christopher C. Wilcox, and Austin J. McDaniel
Appl. Opt. 62(23) G1-G11 (2023)

Shock-related effects on aero-optical environment for hemisphere-on-cylinder turrets at transonic speeds

Jacob Morrida, Stanislav Gordeyev, Nicholas De Lucca, and Eric J. Jumper
Appl. Opt. 56(16) 4814-4824 (2017)

Data Availability

Data underlying the results presented in this paper are not publicly available.

Cited By

You do not have subscription access to this journal. Cited by links are available to subscribers only. You may subscribe either as an Optica member, or as an authorized user of your institution.

Contact your librarian or system administrator
or
Login to access Optica Member Subscription

Figures (13)

You do not have subscription access to this journal. Figure files are available to subscribers only. You may subscribe either as an Optica member, or as an authorized user of your institution.

Contact your librarian or system administrator
or
Login to access Optica Member Subscription

Tables (2)

You do not have subscription access to this journal. Article tables are available to subscribers only. You may subscribe either as an Optica member, or as an authorized user of your institution.

Contact your librarian or system administrator
or
Login to access Optica Member Subscription

Equations (9)

You do not have subscription access to this journal. Equations are available to subscribers only. You may subscribe either as an Optica member, or as an authorized user of your institution.

Contact your librarian or system administrator
or
Login to access Optica Member Subscription

Select as filters


Select Topics Cancel
© Copyright 2024 | Optica Publishing Group. All rights reserved, including rights for text and data mining and training of artificial technologies or similar technologies.