High-Elevation Precipitation Patterns: Using Snow Measurements to Assess Daily Gridded Datasets across the Sierra Nevada, CaliforniaSource: Journal of Hydrometeorology:;2015:;Volume( 016 ):;issue: 004::page 1773Author:Lundquist, Jessica D.
,
Hughes, Mimi
,
Henn, Brian
,
Gutmann, Ethan D.
,
Livneh, Ben
,
Dozier, Jeff
,
Neiman, Paul
DOI: 10.1175/JHM-D-15-0019.1Publisher: American Meteorological Society
Abstract: ridded spatiotemporal maps of precipitation are essential for hydrometeorological and ecological analyses. In the United States, most of these datasets are developed using the Cooperative Observer (COOP) network of ground-based precipitation measurements, interpolation, and the Parameter?Elevation Regressions on Independent Slopes Model (PRISM) to map these measurements to places where data are not available. Here, we evaluate two daily datasets gridded at ° resolution against independent daily observations from over 100 snow pillows in California?s Sierra Nevada from 1990 to 2010. Over the entire period, the gridded datasets performed reasonably well, with median total water-year errors generally falling within ±10%. However, errors in individual storm events sometimes exceeded 50% for the median difference across all stations, and in many cases, the same underpredicted storms appear in both datasets. Synoptic analysis reveals that these underpredicted storms coincide with 700-hPa winds from the west or northwest, which are associated with post-cold-frontal flow and disproportionately small precipitation rates in low-elevation valley locations, where the COOP stations are primarily located. This atmospheric circulation leads to a stronger than normal valley-to-mountain precipitation gradient and underestimation of actual mountain precipitation. Because of the small average number of storms (<10) reaching California each year, these individual storm misses can lead to large biases (~20%) in total water-year precipitation and thereby significantly affect estimates of statewide water resources.
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contributor author | Lundquist, Jessica D. | |
contributor author | Hughes, Mimi | |
contributor author | Henn, Brian | |
contributor author | Gutmann, Ethan D. | |
contributor author | Livneh, Ben | |
contributor author | Dozier, Jeff | |
contributor author | Neiman, Paul | |
date accessioned | 2017-06-09T17:16:28Z | |
date available | 2017-06-09T17:16:28Z | |
date copyright | 2015/08/01 | |
date issued | 2015 | |
identifier issn | 1525-755X | |
identifier other | ams-82230.pdf | |
identifier uri | http://onlinelibrary.yabesh.ir/handle/yetl/4225321 | |
description abstract | ridded spatiotemporal maps of precipitation are essential for hydrometeorological and ecological analyses. In the United States, most of these datasets are developed using the Cooperative Observer (COOP) network of ground-based precipitation measurements, interpolation, and the Parameter?Elevation Regressions on Independent Slopes Model (PRISM) to map these measurements to places where data are not available. Here, we evaluate two daily datasets gridded at ° resolution against independent daily observations from over 100 snow pillows in California?s Sierra Nevada from 1990 to 2010. Over the entire period, the gridded datasets performed reasonably well, with median total water-year errors generally falling within ±10%. However, errors in individual storm events sometimes exceeded 50% for the median difference across all stations, and in many cases, the same underpredicted storms appear in both datasets. Synoptic analysis reveals that these underpredicted storms coincide with 700-hPa winds from the west or northwest, which are associated with post-cold-frontal flow and disproportionately small precipitation rates in low-elevation valley locations, where the COOP stations are primarily located. This atmospheric circulation leads to a stronger than normal valley-to-mountain precipitation gradient and underestimation of actual mountain precipitation. Because of the small average number of storms (<10) reaching California each year, these individual storm misses can lead to large biases (~20%) in total water-year precipitation and thereby significantly affect estimates of statewide water resources. | |
publisher | American Meteorological Society | |
title | High-Elevation Precipitation Patterns: Using Snow Measurements to Assess Daily Gridded Datasets across the Sierra Nevada, California | |
type | Journal Paper | |
journal volume | 16 | |
journal issue | 4 | |
journal title | Journal of Hydrometeorology | |
identifier doi | 10.1175/JHM-D-15-0019.1 | |
journal fristpage | 1773 | |
journal lastpage | 1792 | |
tree | Journal of Hydrometeorology:;2015:;Volume( 016 ):;issue: 004 | |
contenttype | Fulltext |