Mobile Airborne Lidar for Remote Methane Monitoring: Design, Simulation of Atmospheric Measurements and First Flight Tests

The results of modernization of a mobile lidar for the airborne monitoring of the methane content in the atmosphere are presented. The modernization was carried out on the basis of in situ tests, several engineering solutions, and preliminary numerical simulations. The in situ tests showed a possibi...

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Published in:Remote Sensing
Main Authors: Semyon V. Yakovlev, Sergey A. Sadovnikov, Oleg A. Romanovskii
Format: Article in Journal/Newspaper
Language:English
Published: MDPI AG 2022
Subjects:
Q
Online Access:https://doi.org/10.3390/rs14246355
https://doaj.org/article/d1abda729a2d4352a310859e31660cd7
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spelling ftdoajarticles:oai:doaj.org/article:d1abda729a2d4352a310859e31660cd7 2023-05-15T14:56:42+02:00 Mobile Airborne Lidar for Remote Methane Monitoring: Design, Simulation of Atmospheric Measurements and First Flight Tests Semyon V. Yakovlev Sergey A. Sadovnikov Oleg A. Romanovskii 2022-12-01T00:00:00Z https://doi.org/10.3390/rs14246355 https://doaj.org/article/d1abda729a2d4352a310859e31660cd7 EN eng MDPI AG https://www.mdpi.com/2072-4292/14/24/6355 https://doaj.org/toc/2072-4292 doi:10.3390/rs14246355 2072-4292 https://doaj.org/article/d1abda729a2d4352a310859e31660cd7 Remote Sensing, Vol 14, Iss 6355, p 6355 (2022) lidar atmosphere methane Science Q article 2022 ftdoajarticles https://doi.org/10.3390/rs14246355 2022-12-30T19:30:26Z The results of modernization of a mobile lidar for the airborne monitoring of the methane content in the atmosphere are presented. The modernization was carried out on the basis of in situ tests, several engineering solutions, and preliminary numerical simulations. The in situ tests showed a possibility of sounding background tropospheric methane concentrations along a 500 m surface path. During the modernization, the airborne lidar for methane monitoring was supplemented with an off-axis mirror collimator, which made it possible to reduce the divergence of laser radiation by a factor of 4. The overlapping function was simulated for a biaxial scheme of the mobile lidar with radii of the light-sensitive zone of the receiving optics of 0.1, 0.3, 0.5, 0.8 and 1 mm. The dimensions of the light-sensitive zone were found to provide complete coverage of the field of view of the telescope and a laser beam; the length of the “dead” zone was estimated when a laser beam propagated parallel to the optical axis of the telescope. Airborne methane monitoring in the atmosphere in the informative wavelength range (2916.55–2917 cm −1 on-line and 2915.00 cm −1 off-line) was numerically simulated for midlatitude and Arctic summer. Thus, on the basis of the work carried out, the design of the mobile airborne lidar is substantiated, which is to operate as a part of the Tu-134 “Optik” aircraft laboratory of IAO SB RAS and to perform methane monitoring vertically downwards. The airborne lidar was tested during test flights and the Arctic expedition in 2022. The first experimental results of lidar measurements of the averaged methane concentration vertically downwards from sounding altitudes of 2000–3000, 380, and 270 m were obtained for mid-latitude summer and Arctic summer. Article in Journal/Newspaper Arctic Directory of Open Access Journals: DOAJ Articles Arctic Remote Sensing 14 24 6355
institution Open Polar
collection Directory of Open Access Journals: DOAJ Articles
op_collection_id ftdoajarticles
language English
topic lidar
atmosphere
methane
Science
Q
spellingShingle lidar
atmosphere
methane
Science
Q
Semyon V. Yakovlev
Sergey A. Sadovnikov
Oleg A. Romanovskii
Mobile Airborne Lidar for Remote Methane Monitoring: Design, Simulation of Atmospheric Measurements and First Flight Tests
topic_facet lidar
atmosphere
methane
Science
Q
description The results of modernization of a mobile lidar for the airborne monitoring of the methane content in the atmosphere are presented. The modernization was carried out on the basis of in situ tests, several engineering solutions, and preliminary numerical simulations. The in situ tests showed a possibility of sounding background tropospheric methane concentrations along a 500 m surface path. During the modernization, the airborne lidar for methane monitoring was supplemented with an off-axis mirror collimator, which made it possible to reduce the divergence of laser radiation by a factor of 4. The overlapping function was simulated for a biaxial scheme of the mobile lidar with radii of the light-sensitive zone of the receiving optics of 0.1, 0.3, 0.5, 0.8 and 1 mm. The dimensions of the light-sensitive zone were found to provide complete coverage of the field of view of the telescope and a laser beam; the length of the “dead” zone was estimated when a laser beam propagated parallel to the optical axis of the telescope. Airborne methane monitoring in the atmosphere in the informative wavelength range (2916.55–2917 cm −1 on-line and 2915.00 cm −1 off-line) was numerically simulated for midlatitude and Arctic summer. Thus, on the basis of the work carried out, the design of the mobile airborne lidar is substantiated, which is to operate as a part of the Tu-134 “Optik” aircraft laboratory of IAO SB RAS and to perform methane monitoring vertically downwards. The airborne lidar was tested during test flights and the Arctic expedition in 2022. The first experimental results of lidar measurements of the averaged methane concentration vertically downwards from sounding altitudes of 2000–3000, 380, and 270 m were obtained for mid-latitude summer and Arctic summer.
format Article in Journal/Newspaper
author Semyon V. Yakovlev
Sergey A. Sadovnikov
Oleg A. Romanovskii
author_facet Semyon V. Yakovlev
Sergey A. Sadovnikov
Oleg A. Romanovskii
author_sort Semyon V. Yakovlev
title Mobile Airborne Lidar for Remote Methane Monitoring: Design, Simulation of Atmospheric Measurements and First Flight Tests
title_short Mobile Airborne Lidar for Remote Methane Monitoring: Design, Simulation of Atmospheric Measurements and First Flight Tests
title_full Mobile Airborne Lidar for Remote Methane Monitoring: Design, Simulation of Atmospheric Measurements and First Flight Tests
title_fullStr Mobile Airborne Lidar for Remote Methane Monitoring: Design, Simulation of Atmospheric Measurements and First Flight Tests
title_full_unstemmed Mobile Airborne Lidar for Remote Methane Monitoring: Design, Simulation of Atmospheric Measurements and First Flight Tests
title_sort mobile airborne lidar for remote methane monitoring: design, simulation of atmospheric measurements and first flight tests
publisher MDPI AG
publishDate 2022
url https://doi.org/10.3390/rs14246355
https://doaj.org/article/d1abda729a2d4352a310859e31660cd7
geographic Arctic
geographic_facet Arctic
genre Arctic
genre_facet Arctic
op_source Remote Sensing, Vol 14, Iss 6355, p 6355 (2022)
op_relation https://www.mdpi.com/2072-4292/14/24/6355
https://doaj.org/toc/2072-4292
doi:10.3390/rs14246355
2072-4292
https://doaj.org/article/d1abda729a2d4352a310859e31660cd7
op_doi https://doi.org/10.3390/rs14246355
container_title Remote Sensing
container_volume 14
container_issue 24
container_start_page 6355
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