globalchange  > 全球变化的国际研究计划
项目编号: 1603384
项目名称:
Collaborative Research: Understanding the role of Arctic cyclones - A system approach
作者: John Cassano
承担单位: University of Colorado at Boulder
批准年: 2016
开始日期: 2016-07-15
结束日期: 2019-06-30
资助金额: 666625
资助来源: US-NSF
项目类别: Standard Grant
国家: US
语种: 英语
特色学科分类: Geosciences - Polar
英文关键词: cyclone ; arctic cyclone ; arctic ; change ; ocean state ; ocean ; atmosphere-ocean-ice ; rasm ; spatial scale ; global climate model ; assessment ; state ; ocean-atmosphere ; role ; atmosphere-ocean-ice system ; sea ice deformation ; track ; arctic ice cover ; arctic ocean ; graduate level course ; regional model simulation ; project web page ; previous arctic modeling study ; graduate student ; arctic sea ice ; ocean-atmosphere coupling ; ocean temperature ; marine transport ; address priority ; sea ice condition ; potential increase ; output ; post-doctoral fellow ; arctic stakeholder sector ; wind-induced ice deformation ; last decade ; sea ice ; coastal community ; storm activity ; sea ice depletion ; western alaska ; ice state ; cyclone activity ; arctic section ; climate assessment ; ice mass balance ; atmosphere-ocean-ice process ; surface climate ; cyclone intensity ; year-on-year comparison ; such limitation ; month-on-month observational record ; impactful cyclone ; cyclone response ; case study ; limited arctic ocean measurement ; cyclone climatology ; arctic region ; observational record ; ice pack ; oceanic science undergraduate ; cyclone tracking scheme ; historical time series ; alaska center ; nsf polar programs ; low ice concentration ; high-resolution regional arctic system model ; atmospheric feedback ; arctic climate system ; arctic system ; cyclone-ocean-sea ice process ; complete understanding ; same analysis ; us national strategy ; key uncertainty ; ice data center ; regional arctic system model ; atmosphere-ice-ocean coupling ; seasonal sea ice cover ; important contributor ; ocean-atmosphere arctic coupling ; upper-ocean response ; rasm simulation ; 21st century cmip5 simulation ; ice-ocean-atmosphere coupling process ; important aspect ; national snow ; ice concentration
英文摘要: Arctic cyclones are an important contributor to sea ice deformation and oceanic mixing. Changes
in storm activity, and associated atmospheric feedbacks, have been linked to increased seasonality of the high north in the last decade, and with sea ice depletion during summer months. Cyclones are also likely to respond to changes in Arctic ice cover and ocean state indicating that
the atmosphere-ocean-ice system is tightly coupled through processes related to cyclones. Previous Arctic modeling studies typically used regional model simulations without full coupling
of the atmosphere-ocean-ice system, or fully coupled global climate models that do not permit year-on-year comparison with the observational record. This study will avoid such limitations by using
the Regional Arctic System Model (RASM), for which output corresponds directly with month-on-month observational records. This
will allow assessment of the ice-ocean-atmosphere coupling processes on multiple temporal
and spatial scales, and to relate them to limited Arctic Ocean measurements to build a more complete understanding of how increased cyclone activity may be helping to shift the surface climate of the Arctic to a new, warmer state with seasonal sea ice cover, and of how cyclones
will respond to this new Arctic Ocean state.

The impact of cyclones on Arctic stakeholder sectors in northern and western Alaska, including coastal communities and marine transport, will be assessed through a partnership with the Alaska Center for Climate Assessment and Policy and the project's inventory of Arctic cyclones and associated ocean and sea ice conditions will be archived at the National Snow and Ice Data Center. Historical time series of annual and seasonal Arctic cyclone activity, maps of tracks and intensities of Arctic cyclones, and case studies of intense or impactful cyclones will be made available on a project web page. The project will engage graduate students and a post-doctoral fellow,
and results will be used in atmospheric and oceanic science undergraduate and graduate level courses at the project institutions. Outcomes from this work will be address priorities in the US National Strategy for the Arctic Region and will address key uncertainties in understanding extreme events and their role in the Arctic climate system.

The recent loss of Arctic sea ice has increased the potential for ocean-atmosphere coupling
in the Arctic, especially in areas of low ice concentration or where the ice edge has receded. An important aspect of increased ocean-atmosphere Arctic coupling is the
 potential increase
of the ocean's response to storms. Where once mitigated by thick ice, wind-induced ice deformation and oceanic mixing are increasing as the ice pack thins. The decreasing Arctic ice cover and associated warming of the Arctic Ocean may also impact cyclone intensity and frequency. This grant will support investigation of changes in atmosphere-ice-ocean coupling in the presence of cyclones in the Arctic. It will advance our understanding of coupled atmosphere-ocean-ice processes with a focus on the role and response of cyclones in altering the state of the Arctic system. A cyclone tracking scheme will be applied to reanalyses, yielding an inventory of Arctic cyclone locations, tracks, and intensities that will provide a framework for analysis of ice and upper-ocean responses to storms. The responses of ice concentration, ocean temperature and salinity, and associated ice mass balance before, during, and after cyclones at a variety of intensities will be documented. The same analysis will be applied
to output from the high-resolution Regional Arctic System Model (RASM) and to output from
a suite of global climate models (GCMs). Using a novel set of metrics computed from the output of RASM, peak temporal and spatial scales of oceanic mixing, sea ice deformation, and turbulent fluxes associated with the passage of storms in the Arctic will be determined, in order to assess coupled cyclone-ocean-sea ice processes. Changes in the cyclone climatology between pairs of coupled RASM simulations, that differ only in sea ice and ocean state, and in current and end of the 21st century CMIP5 simulations will allow for assessment of cyclone response to changing ocean and ice state. This award is made by the Arctic Section of NSF Polar Programs and co-funded by the NSF GEO effort PREEVENTS.
资源类型: 项目
标识符: http://119.78.100.158/handle/2HF3EXSE/91748
Appears in Collections:全球变化的国际研究计划
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John Cassano. Collaborative Research: Understanding the role of Arctic cyclones - A system approach. 2016-01-01.
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