Estimating Atmospheric Wind Speeds From Gemini Planet Imager AO Telemetry

Fuente: arXiv
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Main Authors: Du, Zhenxi, Perera, Saavidra, Levinstein, Daniel, Konopacky, Quinn, Madurowicz, Alex, Macintosh, Bruce, Poyneer, Lisa, Wilson, Richard, Farley, Ollie
Format: Preprint
Published: 2024
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author Du, Zhenxi
Perera, Saavidra
Levinstein, Daniel
Konopacky, Quinn
Madurowicz, Alex
Macintosh, Bruce
Poyneer, Lisa
Wilson, Richard
Farley, Ollie
author_facet Du, Zhenxi
Perera, Saavidra
Levinstein, Daniel
Konopacky, Quinn
Madurowicz, Alex
Macintosh, Bruce
Poyneer, Lisa
Wilson, Richard
Farley, Ollie
contents The Earth's atmosphere is comprised of turbulent layers that result in speckled and blurry images from ground-based visible and infrared observations. Adaptive Optics (AO) systems are employed to measure the perturbed wavefront with a wavefront sensor (WFS) and correct for these distortions with a deformable mirror. Therefore, understanding and characterising the atmosphere is crucial for the design and functionality of AO systems. One parameter for characterizing the atmosphere is the atmospheric coherence time, which is a function of the effective wind velocity of the atmosphere. This parameter dictates how fast the AO system needs to correct for the atmosphere. If not fast enough, phenomena such as the wind butterfly effect can occur, hindering high-contrast coronographic imaging. This effect is a result of fast, strong, high-altitude turbulent layers. This paper presents two methods for estimating the effective wind velocity, using pseudo-open loop WFS slopes. The first method uses a spatial-temporal covariance map and the second uses the power spectral density of the defocus term. We show both simulated results and preliminary results from the Gemini Planet Imager AO telemetry.
format Preprint
id arxiv_https___arxiv_org_abs_2410_01193
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Estimating Atmospheric Wind Speeds From Gemini Planet Imager AO Telemetry
Du, Zhenxi
Perera, Saavidra
Levinstein, Daniel
Konopacky, Quinn
Madurowicz, Alex
Macintosh, Bruce
Poyneer, Lisa
Wilson, Richard
Farley, Ollie
Instrumentation and Methods for Astrophysics
The Earth's atmosphere is comprised of turbulent layers that result in speckled and blurry images from ground-based visible and infrared observations. Adaptive Optics (AO) systems are employed to measure the perturbed wavefront with a wavefront sensor (WFS) and correct for these distortions with a deformable mirror. Therefore, understanding and characterising the atmosphere is crucial for the design and functionality of AO systems. One parameter for characterizing the atmosphere is the atmospheric coherence time, which is a function of the effective wind velocity of the atmosphere. This parameter dictates how fast the AO system needs to correct for the atmosphere. If not fast enough, phenomena such as the wind butterfly effect can occur, hindering high-contrast coronographic imaging. This effect is a result of fast, strong, high-altitude turbulent layers. This paper presents two methods for estimating the effective wind velocity, using pseudo-open loop WFS slopes. The first method uses a spatial-temporal covariance map and the second uses the power spectral density of the defocus term. We show both simulated results and preliminary results from the Gemini Planet Imager AO telemetry.
title Estimating Atmospheric Wind Speeds From Gemini Planet Imager AO Telemetry
topic Instrumentation and Methods for Astrophysics
url https://arxiv.org/abs/2410.01193