Performance Simulations of Spaceborne Methane Observations by Integrated-Path Differential Absorption Lidar

A lidar-based satellite instrument for global observations of atmospheric methane is foreseen whose expected performance and technical feasibility are currently investigated in planning phase 0/A. Methane is, after carbon dioxide, the second most important greenhouse gas, whereby its anthropogenic e...

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Main Authors: Kiemle, Christoph, Ehret, Gerhard
Format: Conference Object
Language:unknown
Published: 2010
Subjects:
Online Access:https://elib.dlr.de/66648/
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spelling ftdlr:oai:elib.dlr.de:66648 2024-05-19T07:47:12+00:00 Performance Simulations of Spaceborne Methane Observations by Integrated-Path Differential Absorption Lidar Kiemle, Christoph Ehret, Gerhard 2010-07-25 https://elib.dlr.de/66648/ unknown Kiemle, Christoph und Ehret, Gerhard (2010) Performance Simulations of Spaceborne Methane Observations by Integrated-Path Differential Absorption Lidar. 38th scientific assembly of the committee on space research, 2010-07-18 - 2010-07-25, Bremen. Lidar Konferenzbeitrag NonPeerReviewed 2010 ftdlr 2024-04-25T00:19:03Z A lidar-based satellite instrument for global observations of atmospheric methane is foreseen whose expected performance and technical feasibility are currently investigated in planning phase 0/A. Methane is, after carbon dioxide, the second most important greenhouse gas, whereby its anthropogenic emissions are much more uncertain. In addition, climate change may cause an important positive feedback of yet unknown intensity by release of methane from melting permafrost soils and ocean sediments. The current observational network is not able to monitor these sources with sufficient density and accuracy: While the ground-based in-situ network is too sparse, existing passive remote sensors on spacecraft are not accurate enough. Preliminary studies show that lidar with a realistic instrument design on a LEO platform has the potential to overcome these shortcomings and to measure methane with an accuracy and spatial resolution that satisfies the requirements of the user community. The presentation will include basic issues such as the selection of suitable methane absorption wavelengths, key performance parameters of instrument and spacecraft, and an assessment of the residual bias. It will highlight critical performance parameters such as instrument noise and surface reflectivity, and list the instrument and platform characteristics needed to fulfil the user requirements. Conference Object permafrost German Aerospace Center: elib - DLR electronic library
institution Open Polar
collection German Aerospace Center: elib - DLR electronic library
op_collection_id ftdlr
language unknown
topic Lidar
spellingShingle Lidar
Kiemle, Christoph
Ehret, Gerhard
Performance Simulations of Spaceborne Methane Observations by Integrated-Path Differential Absorption Lidar
topic_facet Lidar
description A lidar-based satellite instrument for global observations of atmospheric methane is foreseen whose expected performance and technical feasibility are currently investigated in planning phase 0/A. Methane is, after carbon dioxide, the second most important greenhouse gas, whereby its anthropogenic emissions are much more uncertain. In addition, climate change may cause an important positive feedback of yet unknown intensity by release of methane from melting permafrost soils and ocean sediments. The current observational network is not able to monitor these sources with sufficient density and accuracy: While the ground-based in-situ network is too sparse, existing passive remote sensors on spacecraft are not accurate enough. Preliminary studies show that lidar with a realistic instrument design on a LEO platform has the potential to overcome these shortcomings and to measure methane with an accuracy and spatial resolution that satisfies the requirements of the user community. The presentation will include basic issues such as the selection of suitable methane absorption wavelengths, key performance parameters of instrument and spacecraft, and an assessment of the residual bias. It will highlight critical performance parameters such as instrument noise and surface reflectivity, and list the instrument and platform characteristics needed to fulfil the user requirements.
format Conference Object
author Kiemle, Christoph
Ehret, Gerhard
author_facet Kiemle, Christoph
Ehret, Gerhard
author_sort Kiemle, Christoph
title Performance Simulations of Spaceborne Methane Observations by Integrated-Path Differential Absorption Lidar
title_short Performance Simulations of Spaceborne Methane Observations by Integrated-Path Differential Absorption Lidar
title_full Performance Simulations of Spaceborne Methane Observations by Integrated-Path Differential Absorption Lidar
title_fullStr Performance Simulations of Spaceborne Methane Observations by Integrated-Path Differential Absorption Lidar
title_full_unstemmed Performance Simulations of Spaceborne Methane Observations by Integrated-Path Differential Absorption Lidar
title_sort performance simulations of spaceborne methane observations by integrated-path differential absorption lidar
publishDate 2010
url https://elib.dlr.de/66648/
genre permafrost
genre_facet permafrost
op_relation Kiemle, Christoph und Ehret, Gerhard (2010) Performance Simulations of Spaceborne Methane Observations by Integrated-Path Differential Absorption Lidar. 38th scientific assembly of the committee on space research, 2010-07-18 - 2010-07-25, Bremen.
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