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DOI10.1029/2018WR023923
Sensitivity of a Continuum-Scale Porous Media Heat and Mass Transfer Model to the Spatial-Discretization Length-Scale of Applied Atmospheric Forcing Data
Trautz, Andrew C.1,2; Illangasekare, Tissa H.1; Howington, Stacy2; Cihan, Abdullah3
2019-04-01
发表期刊WATER RESOURCES RESEARCH
ISSN0043-1397
EISSN1944-7973
出版年2019
卷号55期号:4页码:3520-3540
文章类型Article
语种英语
国家USA
英文摘要

Fundamental process understanding and description of heat, mass, and momentum exchanges across the land-atmosphere interface in model boundary forcing parameterizations is critical to the simulation of near-surface soil moisture dynamics (e.g., bare-soil evaporation). This study explores the sensitivity of a continuum-scale porous media heat and mass transfer model to the spatial-discretization length-scales (i.e., spatial-resolution) of near-surface atmospheric data; the goal is to determine how much data are needed to force the model and adequately capture evaporative water losses and subsurface state variable distributions. The requisite atmospheric forcing data were taken from the high-resolution, precision bare-soil evaporation experiments of Trautz et al. (2018, https:// doi.org/10.1029/2018WR023102). Simulation results demonstrated that shallow subsurface mass and heat transfer dynamics can be adequately captured with forcing data averaged over large length-scales, or a minimal number of measurements, provided that soil conditions are properly described. The soil moisture spatial distributions were found to be insensitive to horizontal variations in the forcing data. The model failed to capture small-scale trends observed experimentally; this did not impact the accuracy of total evaporative water loss estimates however. These results indicate that in future physical experimental efforts conducted at 1-10-m length-scales, there is no need to focus on the generation of high-spatial resolution atmospheric measurements-time and effort would be better spent in characterizing soil conditions and properties. Even though a theoretical foundation was not provided to directly extrapolate this work to the field scale, these findings have practical value in designing field data collection strategies.


领域资源环境
收录类别SCI-E
WOS记录号WOS:000468597900051
WOS关键词SOIL-MOISTURE ; PHASE-CHANGE ; PORE-NETWORK ; HYDRAULIC CONDUCTIVITY ; FETCH REQUIREMENTS ; SURFACE-RENEWAL ; LIQUID WATER ; BARE SOIL ; EVAPORATION ; LAND
WOS类目Environmental Sciences ; Limnology ; Water Resources
WOS研究方向Environmental Sciences & Ecology ; Marine & Freshwater Biology ; Water Resources
引用统计
文献类型期刊论文
条目标识符http://119.78.100.173/C666/handle/2XK7JSWQ/182256
专题资源环境科学
作者单位1.Colorado Sch Mines, Dept Civil & Environm Engn, Ctr Expt Study Subsurface Environm Proc CESEP, Golden, CO 80401 USA;
2.US Army, Corps Engineers Engineer Res & Dev Ctr ERDC, Vicksburg, MS 39180 USA;
3.Lawrence Berkeley Natl Lab, Energy Geosci Div, Berkeley, CA USA
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GB/T 7714
Trautz, Andrew C.,Illangasekare, Tissa H.,Howington, Stacy,et al. Sensitivity of a Continuum-Scale Porous Media Heat and Mass Transfer Model to the Spatial-Discretization Length-Scale of Applied Atmospheric Forcing Data[J]. WATER RESOURCES RESEARCH,2019,55(4):3520-3540.
APA Trautz, Andrew C.,Illangasekare, Tissa H.,Howington, Stacy,&Cihan, Abdullah.(2019).Sensitivity of a Continuum-Scale Porous Media Heat and Mass Transfer Model to the Spatial-Discretization Length-Scale of Applied Atmospheric Forcing Data.WATER RESOURCES RESEARCH,55(4),3520-3540.
MLA Trautz, Andrew C.,et al."Sensitivity of a Continuum-Scale Porous Media Heat and Mass Transfer Model to the Spatial-Discretization Length-Scale of Applied Atmospheric Forcing Data".WATER RESOURCES RESEARCH 55.4(2019):3520-3540.
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