Convective Transition Statistics over Tropical Oceans for Climate Model Diagnostics: Observational Baseline
Convective transition statistics, which describe the relation between column-integrated water vapor (CWV) and precipitation, are compiled over tropical oceans using satellite and ARM site measurements to quantify the temperature and resolution dependence of the precipitation–CWV relation at fast tim...
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Published in | Journal of the atmospheric sciences Vol. 75; no. 5; pp. 1553 - 1570 |
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Main Authors | , , |
Format | Journal Article |
Language | English |
Published |
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American Meteorological Society
01.05.2018
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Online Access | Get full text |
ISSN | 0022-4928 1520-0469 |
DOI | 10.1175/JAS-D-17-0287.1 |
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Abstract | Convective transition statistics, which describe the relation between column-integrated water vapor (CWV) and precipitation, are compiled over tropical oceans using satellite and ARM site measurements to quantify the temperature and resolution dependence of the precipitation–CWV relation at fast time scales relevant to convection. At these time scales, and for precipitation especially, uncertainties associated with observational systems must be addressed by examining features with a variety of instrumentation and identifying robust behaviors versus instrument sensitivity at high rain rates. Here the sharp pickup in precipitation as CWV exceeds a certain critical threshold is found to be insensitive to spatial resolution, with convective onset occurring at higher CWV but at lower column relative humidity as bulk tropospheric temperature increases. Mean tropospheric temperature profiles conditioned on precipitation show vertically coherent structure across a wide range of temperature, reaffirming the use of a bulk temperature measure in defining the convective transition statistics. The joint probability distribution of CWV and precipitation develops a peak probability at low precipitation for CWV above critical, with rapidly decreasing probability of high precipitation below and near critical, and exhibits systematic changes under spatial averaging. The precipitation pickup with CWV is reasonably insensitive to time averaging up to several hours but is smoothed at daily time scales. This work demonstrates that CWV relative to critical serves as an effective predictor of precipitation with only minor geographic variations in the tropics, quantifies precipitation-related statistics subject to different spatial–temporal resolution, and provides a baseline for model comparison to apply these statistics as observational constraints on precipitation processes. |
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AbstractList | Not provided.Convective transition statistics, which describe the relation between column-integrated water vapor (CWV) and precipitation, are compiled over tropical oceans using satellite and ARM site measurements to quantify the temperature and resolution dependence of the precipitation–CWV relation at fast time scales relevant to convection. At these time scales, and for precipitation especially, uncertainties associated with observational systems must be addressed by examining features with a variety of instrumentation and identifying robust behaviors versus instrument sensitivity at high rain rates. Here the sharp pickup in precipitation as CWV exceeds a certain critical threshold is found to be insensitive to spatial resolution, with convective onset occurring at higher CWV but at lower column relative humidity as bulk tropospheric temperature increases. Mean tropospheric temperature profiles conditioned on precipitation show vertically coherent structure across a wide range of temperature, reaffirming the use of a bulk temperature measure in defining the convective transition statistics. The joint probability distribution of CWV and precipitation develops a peak probability at low precipitation for CWV above critical, with rapidly decreasing probability of high precipitation below and near critical, and exhibits systematic changes under spatial averaging. The precipitation pickup with CWV is reasonably insensitive to time averaging up to several hours but is smoothed at daily time scales. This work demonstrates that CWV relative to critical serves as an effective predictor of precipitation with only minor geographic variations in the tropics, quantifies precipitation-related statistics subject to different spatial–temporal resolution, and provides a baseline for model comparison to apply these statistics as observational constraints on precipitation processes. Convective transition statistics, which describe the relation between column-integrated water vapor (CWV) and precipitation, are compiled over tropical oceans using satellite and ARM site measurements to quantify the temperature and resolution dependence of the precipitation–CWV relation at fast time scales relevant to convection. At these time scales, and for precipitation especially, uncertainties associated with observational systems must be addressed by examining features with a variety of instrumentation and identifying robust behaviors versus instrument sensitivity at high rain rates. Here the sharp pickup in precipitation as CWV exceeds a certain critical threshold is found to be insensitive to spatial resolution, with convective onset occurring at higher CWV but at lower column relative humidity as bulk tropospheric temperature increases. Mean tropospheric temperature profiles conditioned on precipitation show vertically coherent structure across a wide range of temperature, reaffirming the use of a bulk temperature measure in defining the convective transition statistics. The joint probability distribution of CWV and precipitation develops a peak probability at low precipitation for CWV above critical, with rapidly decreasing probability of high precipitation below and near critical, and exhibits systematic changes under spatial averaging. The precipitation pickup with CWV is reasonably insensitive to time averaging up to several hours but is smoothed at daily time scales. This work demonstrates that CWV relative to critical serves as an effective predictor of precipitation with only minor geographic variations in the tropics, quantifies precipitation-related statistics subject to different spatial–temporal resolution, and provides a baseline for model comparison to apply these statistics as observational constraints on precipitation processes. |
Author | Neelin, J. David Schiro, Kathleen A. Kuo, Yi-Hung |
Author_xml | – sequence: 1 givenname: Yi-Hung surname: Kuo fullname: Kuo, Yi-Hung organization: Department of Atmospheric and Oceanic Sciences, University of California, Los Angeles, Los Angeles, California – sequence: 2 givenname: Kathleen A. surname: Schiro fullname: Schiro, Kathleen A. organization: Department of Atmospheric and Oceanic Sciences, University of California, Los Angeles, Los Angeles, California – sequence: 3 givenname: J. David surname: Neelin fullname: Neelin, J. David organization: Department of Atmospheric and Oceanic Sciences, University of California, Los Angeles, Los Angeles, California |
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Snippet | Convective transition statistics, which describe the relation between column-integrated water vapor (CWV) and precipitation, are compiled over tropical oceans... Not provided.Convective transition statistics, which describe the relation between column-integrated water vapor (CWV) and precipitation, are compiled over... |
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SubjectTerms | Atmospheric precipitations Bias Climate Climate models Conditioning Convection Datasets Dependence Earth science ENVIRONMENTAL SCIENCES Geographical variations Humidity Information services Instrumentation Meteorology & Atmospheric Sciences Oceans Phase transitions Precipitation Precipitation processes Probability distribution Probability theory Profiles Rain Relative humidity Remote sensing systems Resolution Satellites Spatial discrimination Spatial resolution Statistical methods Statistics Temperature dependence Temperature effects Temperature profile Temperature profiles Temperature range Temperature rise Temporal resolution Time Tropical climate Tropical environments Troposphere Water vapor Water vapour |
Title | Convective Transition Statistics over Tropical Oceans for Climate Model Diagnostics: Observational Baseline |
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