Large‐eddy simulations of the atmospheric boundary layer over an Alpine glacier: Impact of synoptic flow direction and governing processes. (8th April 2022)
- Record Type:
- Journal Article
- Title:
- Large‐eddy simulations of the atmospheric boundary layer over an Alpine glacier: Impact of synoptic flow direction and governing processes. (8th April 2022)
- Main Title:
- Large‐eddy simulations of the atmospheric boundary layer over an Alpine glacier: Impact of synoptic flow direction and governing processes
- Authors:
- Goger, Brigitta
Stiperski, Ivana
Nicholson, Lindsey
Sauter, Tobias - Abstract:
- Abstract: The mass balance of mountain glaciers is of interest for several applications (e.g., local hydrology or climate projections), and turbulent fluxes can be an important contributor to glacier surface mass balance during strong melting events. The underlying complex terrain leads to spatial heterogeneity and non‐stationarity of turbulent fluxes. Owing to the contribution of thermally induced flows and gravity waves, exchange mechanisms are fully three‐dimensional, instead of only vertical. Additionally, glaciers have their own distinct microclimate, governed by a down‐glacier katabatic wind, which protects the glacier ice and interacts with the surrounding flows on multiple scales. In this study, we perform large‐eddy simulations with the Weather Research and Forecasting model at a horizontal grid spacing of 48 m to gain insight into the boundary‐layer processes over an Alpine valley glacier, the Hintereisferner. We choose two case studies from the Hintereisferner experiment measurement campaign with different synoptic wind directions (southwest and northwest). Model evaluation with an array of eddy‐covariance stations on the glacier tongue and surroundings reveals that the Weather Research and Forecasting model is able to simulate the general glacier boundary‐layer structure. Under a southwesterly airflow, the down‐glacier wind is supported by the synoptic wind parallel to the glacier axis, a stable boundary layer is present over the ice surface, and local processesAbstract: The mass balance of mountain glaciers is of interest for several applications (e.g., local hydrology or climate projections), and turbulent fluxes can be an important contributor to glacier surface mass balance during strong melting events. The underlying complex terrain leads to spatial heterogeneity and non‐stationarity of turbulent fluxes. Owing to the contribution of thermally induced flows and gravity waves, exchange mechanisms are fully three‐dimensional, instead of only vertical. Additionally, glaciers have their own distinct microclimate, governed by a down‐glacier katabatic wind, which protects the glacier ice and interacts with the surrounding flows on multiple scales. In this study, we perform large‐eddy simulations with the Weather Research and Forecasting model at a horizontal grid spacing of 48 m to gain insight into the boundary‐layer processes over an Alpine valley glacier, the Hintereisferner. We choose two case studies from the Hintereisferner experiment measurement campaign with different synoptic wind directions (southwest and northwest). Model evaluation with an array of eddy‐covariance stations on the glacier tongue and surroundings reveals that the Weather Research and Forecasting model is able to simulate the general glacier boundary‐layer structure. Under a southwesterly airflow, the down‐glacier wind is supported by the synoptic wind parallel to the glacier axis, a stable boundary layer is present over the ice surface, and local processes govern the turbulence kinetic energy production. Under northwesterly airflow, a cross‐glacier valley flow and a breaking gravity wave lead to strong turbulent mixing and to the subsequent erosion of the glacier boundary layer. Stationarity analysis of the sensible heat flux suggests non‐stationary behaviour for both case study days, whereas non‐stationarity is highest on the northwesterly day during the gravity‐wave event. These results suggest that the synoptic wind direction has, in addition to upstream topography and the atmospheric stability, a strong impact on whether a local glacier boundary layer can form or not, influencing whether a glacier is able to maintain its own microclimate. Abstract : Large‐eddy simulations over an Alpine glacier reveal different spatial structures of the glacier boundary layer under contrasting synoptic wind directions. During southwesterly flow, horizontal gradients and local processes dominate the potential temperature field. Northwesterly flow leads to gravity wave formation and cross‐glacier winds eroding the glacier boundary layer. The sensible heat flux over the glacier ice is in both cases highly spatially heterogeneous and non‐stationary. … (more)
- Is Part Of:
- Quarterly journal of the Royal Meteorological Society. Volume 148:Number 744(2022)
- Journal:
- Quarterly journal of the Royal Meteorological Society
- Issue:
- Volume 148:Number 744(2022)
- Issue Display:
- Volume 148, Issue 744 (2022)
- Year:
- 2022
- Volume:
- 148
- Issue:
- 744
- Issue Sort Value:
- 2022-0148-0744-0000
- Page Start:
- 1319
- Page End:
- 1343
- Publication Date:
- 2022-04-08
- Subjects:
- boundary layer -- complex terrain -- glacier -- gravity waves -- land–atmosphere exchange -- large‐eddy simulation -- WRF
Meteorology -- Periodicals
551.5 - Journal URLs:
- http://onlinelibrary.wiley.com/journal/10.1002/(ISSN)1477-870X/issues ↗
http://onlinelibrary.wiley.com/ ↗
http://www.ingentaselect.com/rpsv/cw/rms/00359009/contp1.htm ↗ - DOI:
- 10.1002/qj.4263 ↗
- Languages:
- English
- ISSNs:
- 0035-9009
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 7186.000000
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British Library HMNTS - ELD Digital store - Ingest File:
- 27138.xml