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Emerging Technologies and Synergies for Airborne and Space-Based Measurements of Water Vapor Profiles

A deeper understanding of how clouds will respond to a warming climate is one of the outstanding challenges in climate science. Uncertainties in the response of clouds, and particularly shallow clouds, have been identified as the dominant source of the discrepancy in model estimates of equilibrium c...

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Autores principales: Nehrir, Amin R., Kiemle, Christoph, Lebsock, Mathew D., Kirchengast, Gottfried, Buehler, Stefan A., Löhnert, Ulrich, Liu, Cong-Liang, Hargrave, Peter C., Barrera-Verdejo, Maria, Winker, David M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer Netherlands 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6956949/
https://www.ncbi.nlm.nih.gov/pubmed/31997843
http://dx.doi.org/10.1007/s10712-017-9448-9
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author Nehrir, Amin R.
Kiemle, Christoph
Lebsock, Mathew D.
Kirchengast, Gottfried
Buehler, Stefan A.
Löhnert, Ulrich
Liu, Cong-Liang
Hargrave, Peter C.
Barrera-Verdejo, Maria
Winker, David M.
author_facet Nehrir, Amin R.
Kiemle, Christoph
Lebsock, Mathew D.
Kirchengast, Gottfried
Buehler, Stefan A.
Löhnert, Ulrich
Liu, Cong-Liang
Hargrave, Peter C.
Barrera-Verdejo, Maria
Winker, David M.
author_sort Nehrir, Amin R.
collection PubMed
description A deeper understanding of how clouds will respond to a warming climate is one of the outstanding challenges in climate science. Uncertainties in the response of clouds, and particularly shallow clouds, have been identified as the dominant source of the discrepancy in model estimates of equilibrium climate sensitivity. As the community gains a deeper understanding of the many processes involved, there is a growing appreciation of the critical role played by fluctuations in water vapor and the coupling of water vapor and atmospheric circulations. Reduction of uncertainties in cloud-climate feedbacks and convection initiation as well as improved understanding of processes governing these effects will result from profiling of water vapor in the lower troposphere with improved accuracy and vertical resolution compared to existing airborne and space-based measurements. This paper highlights new technologies and improved measurement approaches for measuring lower tropospheric water vapor and their expected added value to current observations. Those include differential absorption lidar and radar, microwave occultation between low-Earth orbiters, and hyperspectral microwave remote sensing. Each methodology is briefly explained, and measurement capabilities as well as the current technological readiness for aircraft and satellite implementation are specified. Potential synergies between the technologies are discussed, actual examples hereof are given, and future perspectives are explored. Based on technical maturity and the foreseen near-mid-term development path of the various discussed measurement approaches, we find that improved measurements of water vapor throughout the troposphere would greatly benefit from the combination of differential absorption lidar focusing on the lower troposphere with passive remote sensors constraining the upper-tropospheric humidity.
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spelling pubmed-69569492020-01-27 Emerging Technologies and Synergies for Airborne and Space-Based Measurements of Water Vapor Profiles Nehrir, Amin R. Kiemle, Christoph Lebsock, Mathew D. Kirchengast, Gottfried Buehler, Stefan A. Löhnert, Ulrich Liu, Cong-Liang Hargrave, Peter C. Barrera-Verdejo, Maria Winker, David M. Surv Geophys Article A deeper understanding of how clouds will respond to a warming climate is one of the outstanding challenges in climate science. Uncertainties in the response of clouds, and particularly shallow clouds, have been identified as the dominant source of the discrepancy in model estimates of equilibrium climate sensitivity. As the community gains a deeper understanding of the many processes involved, there is a growing appreciation of the critical role played by fluctuations in water vapor and the coupling of water vapor and atmospheric circulations. Reduction of uncertainties in cloud-climate feedbacks and convection initiation as well as improved understanding of processes governing these effects will result from profiling of water vapor in the lower troposphere with improved accuracy and vertical resolution compared to existing airborne and space-based measurements. This paper highlights new technologies and improved measurement approaches for measuring lower tropospheric water vapor and their expected added value to current observations. Those include differential absorption lidar and radar, microwave occultation between low-Earth orbiters, and hyperspectral microwave remote sensing. Each methodology is briefly explained, and measurement capabilities as well as the current technological readiness for aircraft and satellite implementation are specified. Potential synergies between the technologies are discussed, actual examples hereof are given, and future perspectives are explored. Based on technical maturity and the foreseen near-mid-term development path of the various discussed measurement approaches, we find that improved measurements of water vapor throughout the troposphere would greatly benefit from the combination of differential absorption lidar focusing on the lower troposphere with passive remote sensors constraining the upper-tropospheric humidity. Springer Netherlands 2017-11-21 2017 /pmc/articles/PMC6956949/ /pubmed/31997843 http://dx.doi.org/10.1007/s10712-017-9448-9 Text en © The Author(s) 2017 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made.
spellingShingle Article
Nehrir, Amin R.
Kiemle, Christoph
Lebsock, Mathew D.
Kirchengast, Gottfried
Buehler, Stefan A.
Löhnert, Ulrich
Liu, Cong-Liang
Hargrave, Peter C.
Barrera-Verdejo, Maria
Winker, David M.
Emerging Technologies and Synergies for Airborne and Space-Based Measurements of Water Vapor Profiles
title Emerging Technologies and Synergies for Airborne and Space-Based Measurements of Water Vapor Profiles
title_full Emerging Technologies and Synergies for Airborne and Space-Based Measurements of Water Vapor Profiles
title_fullStr Emerging Technologies and Synergies for Airborne and Space-Based Measurements of Water Vapor Profiles
title_full_unstemmed Emerging Technologies and Synergies for Airborne and Space-Based Measurements of Water Vapor Profiles
title_short Emerging Technologies and Synergies for Airborne and Space-Based Measurements of Water Vapor Profiles
title_sort emerging technologies and synergies for airborne and space-based measurements of water vapor profiles
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6956949/
https://www.ncbi.nlm.nih.gov/pubmed/31997843
http://dx.doi.org/10.1007/s10712-017-9448-9
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