Simulating nuclear cloud rise within a realistic atmosphere using the Weather Research and Forecasting model. (1st June 2021)
- Record Type:
- Journal Article
- Title:
- Simulating nuclear cloud rise within a realistic atmosphere using the Weather Research and Forecasting model. (1st June 2021)
- Main Title:
- Simulating nuclear cloud rise within a realistic atmosphere using the Weather Research and Forecasting model
- Authors:
- Arthur, Robert S.
Lundquist, Katherine A.
Mirocha, Jeffrey D.
Neuscamman, Stephanie
Kanarska, Yuliya
Nasstrom, John S. - Abstract:
- Abstract: Models of nuclear detonation cloud rise used by emergency planning and response teams are usually simplified to enable fast run times. They also contain parameters that are tuned to historical nuclear tests. Thus, they do not fully account for the complex environments that may be encountered in emergency scenarios. In this work, a multiscale framework, spanning numerical weather prediction to large-eddy simulation, is used to simulate nuclear cloud rise within the Weather Research and Forecasting (WRF) model. By employing this approach, cloud rise is modeled with higher fidelity, including time-varying three-dimensional weather fields and complexities such as atmospheric moisture and terrain. Using modified initialization routines that allow for the inclusion of a high-temperature fireball in WRF, cloud rise is first simulated for three U.S. nuclear tests over the Nevada desert. Grid nesting is used to dynamically downscale historical reanalysis data to a large-eddy simulation domain, where cloud rise is simulated at 20–30 m resolution. The downscaled atmospheric states agree reasonably well with observations from the time of the tests, and turbulent mixing induced by the cloud rise is captured. Simulated nuclear clouds show good overall agreement with available cloud rise observations, especially for high-air bursts with limited surface interaction. To demonstrate WRF's ability to capture aerosol-microphysics interactions during cloud rise, a semi-idealizedAbstract: Models of nuclear detonation cloud rise used by emergency planning and response teams are usually simplified to enable fast run times. They also contain parameters that are tuned to historical nuclear tests. Thus, they do not fully account for the complex environments that may be encountered in emergency scenarios. In this work, a multiscale framework, spanning numerical weather prediction to large-eddy simulation, is used to simulate nuclear cloud rise within the Weather Research and Forecasting (WRF) model. By employing this approach, cloud rise is modeled with higher fidelity, including time-varying three-dimensional weather fields and complexities such as atmospheric moisture and terrain. Using modified initialization routines that allow for the inclusion of a high-temperature fireball in WRF, cloud rise is first simulated for three U.S. nuclear tests over the Nevada desert. Grid nesting is used to dynamically downscale historical reanalysis data to a large-eddy simulation domain, where cloud rise is simulated at 20–30 m resolution. The downscaled atmospheric states agree reasonably well with observations from the time of the tests, and turbulent mixing induced by the cloud rise is captured. Simulated nuclear clouds show good overall agreement with available cloud rise observations, especially for high-air bursts with limited surface interaction. To demonstrate WRF's ability to capture aerosol-microphysics interactions during cloud rise, a semi-idealized large-eddy simulation of the wartime Nagasaki detonation is also performed. Self-induced rainout caused by the condensation of rising moist air during cloud rise is captured, and wet deposition of aerosol particles is quantified. Future work will better account for surface interactions, including particulate lofting and shockwave reflection, which should improve cloud rise predictions. Additional development of a multiscale simulation framework could permit seamless fireball-to-fallout simulations to study the relationship between cloud rise dynamics and fallout risk. Graphical abstract: Image 1 Highlights: Multiscale atmospheric model spans weather to large-eddy simulation scales. Historical reanalysis data provide a realistic background atmosphere. Large-eddy simulation captures buoyancy effects and turbulence during cloud rise. Modeled cloud rise height matches historical observations for air burst tests. Aerosol and microphysics parameterizations can be used to simulate wet deposition. … (more)
- Is Part Of:
- Atmospheric environment. Volume 254(2021)
- Journal:
- Atmospheric environment
- Issue:
- Volume 254(2021)
- Issue Display:
- Volume 254, Issue 2021 (2021)
- Year:
- 2021
- Volume:
- 254
- Issue:
- 2021
- Issue Sort Value:
- 2021-0254-2021-0000
- Page Start:
- Page End:
- Publication Date:
- 2021-06-01
- Subjects:
- Nuclear cloud rise -- Large-eddy simulation -- Multiscale simulation -- Self-induced rainout -- Weather Research and Forecasting model
Air -- Pollution -- Periodicals
Air -- Pollution -- Meteorological aspects -- Periodicals
551.51 - Journal URLs:
- http://www.sciencedirect.com/web-editions/journal/13522310 ↗
http://www.elsevier.com/journals ↗ - DOI:
- 10.1016/j.atmosenv.2021.118363 ↗
- Languages:
- English
- ISSNs:
- 1352-2310
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 1767.120000
British Library DSC - BLDSS-3PM
British Library HMNTS - ELD Digital store - Ingest File:
- 16882.xml