Effects of variable, ice-ocean surface properties and air mass transformation on the Arctic radiative energy budget

Low-level airborne observations of the Arctic surface radiative energy budget are discussed. We focus on the terrestrial part of the budget, quantified by the thermal-infrared net irradiance (TNI). The data have been collected in cloudy and cloud-free conditions over and in the vicinity of the margi...

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Main Authors: Wendisch, Manfred, Stapf, Johannes, Becker, Sebastian, Ehrlich, André, Jäkel, Evelyn, Klingebiel, Marcus, Lüpkes, Christof, Schäfer, Michael, Shupe, Matthew D.
Format: Text
Language:English
Published: 2022
Subjects:
Online Access:https://doi.org/10.5194/acp-2022-614
https://acp.copernicus.org/preprints/acp-2022-614/
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spelling ftcopernicus:oai:publications.copernicus.org:acpd106092 2023-05-15T13:11:40+02:00 Effects of variable, ice-ocean surface properties and air mass transformation on the Arctic radiative energy budget Wendisch, Manfred Stapf, Johannes Becker, Sebastian Ehrlich, André Jäkel, Evelyn Klingebiel, Marcus Lüpkes, Christof Schäfer, Michael Shupe, Matthew D. 2022-10-07 application/pdf https://doi.org/10.5194/acp-2022-614 https://acp.copernicus.org/preprints/acp-2022-614/ eng eng doi:10.5194/acp-2022-614 https://acp.copernicus.org/preprints/acp-2022-614/ eISSN: 1680-7324 Text 2022 ftcopernicus https://doi.org/10.5194/acp-2022-614 2022-10-10T16:22:41Z Low-level airborne observations of the Arctic surface radiative energy budget are discussed. We focus on the terrestrial part of the budget, quantified by the thermal-infrared net irradiance (TNI). The data have been collected in cloudy and cloud-free conditions over and in the vicinity of the marginal sea ice zone (MIZ) close to Svalbard during two aircraft campaigns in spring of 2019 and in early summer of 2017. The measurements, complemented by ground-based observations available from the literature and radiative transfer simulations, are used to evaluate the influence of surface type (sea ice, open ocean, MIZ), seasonal characteristics, and synoptically driven meridional air mass transports into and out of the Arctic on the near-surface TNI. The analysis reveals a typical four-mode structure of the frequency distribution of the TNI as a function of surface albedo, sea ice fraction, and surface brightness temperature. Two modes prevail over sea ice and another two over open ocean, each representing cloud-free and cloudy radiative states. Characteristic shifts and modifications of the TNI modes during the transition from winter towards early spring and summer conditions are discussed. Furthermore, the influence of warm air intrusions (WAIs) and marine cold air outbreaks (MCAOs) on the near-surface downward thermal-infrared irradiances and the TNI is highlighted for several case studies. It is concluded that during WAIs the surface warming depends on cloud properties and evolution. Lifted clouds embedded in warmer air masses over a colder sea ice surface, decoupled from the ground by a surface-based temperature inversion, have the potential to warm the surface more strongly than near-surface fog or thin low-level boundary layer clouds, because of a higher cloud base temperature. For MCAOs it is found that the thermodynamic profile of the southward moving air mass adapts only slowly to the warmer ocean surface. Text albedo Arctic Sea ice Svalbard Copernicus Publications: E-Journals Arctic Svalbard
institution Open Polar
collection Copernicus Publications: E-Journals
op_collection_id ftcopernicus
language English
description Low-level airborne observations of the Arctic surface radiative energy budget are discussed. We focus on the terrestrial part of the budget, quantified by the thermal-infrared net irradiance (TNI). The data have been collected in cloudy and cloud-free conditions over and in the vicinity of the marginal sea ice zone (MIZ) close to Svalbard during two aircraft campaigns in spring of 2019 and in early summer of 2017. The measurements, complemented by ground-based observations available from the literature and radiative transfer simulations, are used to evaluate the influence of surface type (sea ice, open ocean, MIZ), seasonal characteristics, and synoptically driven meridional air mass transports into and out of the Arctic on the near-surface TNI. The analysis reveals a typical four-mode structure of the frequency distribution of the TNI as a function of surface albedo, sea ice fraction, and surface brightness temperature. Two modes prevail over sea ice and another two over open ocean, each representing cloud-free and cloudy radiative states. Characteristic shifts and modifications of the TNI modes during the transition from winter towards early spring and summer conditions are discussed. Furthermore, the influence of warm air intrusions (WAIs) and marine cold air outbreaks (MCAOs) on the near-surface downward thermal-infrared irradiances and the TNI is highlighted for several case studies. It is concluded that during WAIs the surface warming depends on cloud properties and evolution. Lifted clouds embedded in warmer air masses over a colder sea ice surface, decoupled from the ground by a surface-based temperature inversion, have the potential to warm the surface more strongly than near-surface fog or thin low-level boundary layer clouds, because of a higher cloud base temperature. For MCAOs it is found that the thermodynamic profile of the southward moving air mass adapts only slowly to the warmer ocean surface.
format Text
author Wendisch, Manfred
Stapf, Johannes
Becker, Sebastian
Ehrlich, André
Jäkel, Evelyn
Klingebiel, Marcus
Lüpkes, Christof
Schäfer, Michael
Shupe, Matthew D.
spellingShingle Wendisch, Manfred
Stapf, Johannes
Becker, Sebastian
Ehrlich, André
Jäkel, Evelyn
Klingebiel, Marcus
Lüpkes, Christof
Schäfer, Michael
Shupe, Matthew D.
Effects of variable, ice-ocean surface properties and air mass transformation on the Arctic radiative energy budget
author_facet Wendisch, Manfred
Stapf, Johannes
Becker, Sebastian
Ehrlich, André
Jäkel, Evelyn
Klingebiel, Marcus
Lüpkes, Christof
Schäfer, Michael
Shupe, Matthew D.
author_sort Wendisch, Manfred
title Effects of variable, ice-ocean surface properties and air mass transformation on the Arctic radiative energy budget
title_short Effects of variable, ice-ocean surface properties and air mass transformation on the Arctic radiative energy budget
title_full Effects of variable, ice-ocean surface properties and air mass transformation on the Arctic radiative energy budget
title_fullStr Effects of variable, ice-ocean surface properties and air mass transformation on the Arctic radiative energy budget
title_full_unstemmed Effects of variable, ice-ocean surface properties and air mass transformation on the Arctic radiative energy budget
title_sort effects of variable, ice-ocean surface properties and air mass transformation on the arctic radiative energy budget
publishDate 2022
url https://doi.org/10.5194/acp-2022-614
https://acp.copernicus.org/preprints/acp-2022-614/
geographic Arctic
Svalbard
geographic_facet Arctic
Svalbard
genre albedo
Arctic
Sea ice
Svalbard
genre_facet albedo
Arctic
Sea ice
Svalbard
op_source eISSN: 1680-7324
op_relation doi:10.5194/acp-2022-614
https://acp.copernicus.org/preprints/acp-2022-614/
op_doi https://doi.org/10.5194/acp-2022-614
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