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Atmospheric Moisture Residence Times and Cycling: Implications for Rainfall Rates and Climate Change

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Abstract

New estimates of the moistening of the atmosphere through evaporation at the surface and of the drying through precipitation are computed. Overall, the e-folding residence time of atmospheric moisture is just over 8 days. New estimates are also made of how much moisture that precipitates out comes from horizontal transport versus local evaporation, referred to as ‘recycling’. The results depend greatly on the scale of the domain under consideration and global maps of the recycling for annual means are produced for 500 km scales for which global recycling is 9.6%, consisting of 8.9% over land and 9.9% over the oceans. Even for 1000 km scales, less than 20% of the annual precipitation typically comes from evaporation within the domain. While average overall atmospheric moisture depletion and restoration must balance, precipitation falls only a small fraction of the time. Thus precipitation rates are also examined. Over the United States, one hour intervals with 0.1 mm or more are used to show that the frequency of precipitation ranges from over 30% in the Northwest, to about 20% in the Southeast and less than 4% just east of the continental divide in winter, and from less than 2% in California to over 20% in the Southeast in summer. In midlatitudes precipitation typically falls about 10% of the time, and so rainfall rates, conditional on when rain is falling, are much larger than evaporation rates. The mismatches in the rates of rainfall versus evaporation imply that precipitating systems of all kinds feed mostly on the moisture already in the atmosphere. Over North America, much of the precipitation originates from moisture advected from the Gulf of Mexico and subtropical Atlantic or Pacific a day or so earlier. Increases in greenhouse gases in the atmosphere produce global warming through an increase in downwelling infrared radiation, and thus not only increase surface temperatures but also enhance the hydrological cycle, as much of the heating at the surface goes into evaporating surface moisture. Global temperature increases signify that the water-holding capacity of the atmosphere increases and, together with enhanced evaporation, this means that the actual atmospheric moisture should increase. It follows that naturally-occurring droughts are likely to be exacerbated by enhanced potential evapotranspiration. Further, globally there must be an increase in precipitation to balance the enhanced evaporation but the processes by which precipitation is altered locally are not well understood. Observations confirm that atmospheric moisture is increasing in many places, for example at a rate of about 5% per decade over the United States. Based on the above results, we argue that increased moisture content of the atmosphere therefore favors stronger rainfall or snowfall events, thus increasing risk of flooding, which is a pattern observed to be happening in many parts of the world. Moreover, because there is a disparity between the rates of increase of atmospheric moisture and precipitation, there are implied changes in the frequency of precipitation and/or efficiency of precipitation (related to how much moisture is left behind in a storm). However, an analysis of linear trends in the frequency of precipitation events for the United States corresponding to thresholds of 0.1 and 1 mm/h shows that the most notable statistically significant trends are for increases in the southern United States in winter and decreases in the Pacific Northwest from November through January, which may be related to changes in atmospheric circulation and storm tracks associated with El Niño–Southern Oscillation trends. It is suggested that as the physical constraints on precipitation apply only globally, more attention should be paid to rates in both observations and models as well as the frequency of occurrence.

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References

  • Arkin, P. A. and Xie, P.: 1994, ‘The Global Precipitation Climatology Project: First Algorithm Intercomparison Project’, Bull. Amer. Meteor. Soc. 75, 401-419.

    Google Scholar 

  • Boer, G. J.: 1993, ‘Climate Change and the Regulation of the Surface Moisture and Energy Budgets’, Clim. Dyn. 8, 225-239.

    Google Scholar 

  • Brubaker, K. L., Entehabi, D., and Eagleson, P. S.: 1993, ‘Estimation of Continental Precipitation Recycling’, J. Clim. 6, 1077-1089.

    Google Scholar 

  • Byers, H. R.: 1948, ‘The Use of Radar in Determining the Amount of Rain Over a Small Area’, EOS Trans. AGU 29, 187-196.

    Google Scholar 

  • Drozdov, O. A. and Grigor’eva, A. S.: 1965, The Hydrologic Cycle in the Atmosphere, Israel Program for scientific translations, pp. 35-50.

  • Eltahir, E. A. B. and Bras, R. L.: 1994, ‘Precipitation Recycling in the Amazon Basin’, Quart. J. Roy. Meteor. Soc. 120, 861-880.

    Google Scholar 

  • Eltahir, E. A. B. and Bras, R. L.: 1996, ‘Precipitation Recycling’, Rev. Geophys. 34, 367-378.

    Google Scholar 

  • Fankhauser, J. C.: 1988, ‘Estimates of Thunderstorm Precipitation Efficiency From Field Measurements in CCOPE’, Mon. Wea. Rev. 116, 663-684.

    Google Scholar 

  • Ferrier, B. S., Simpson, J., and Tao, W-K.: 1996, ‘Factors Responsible for Precipitation Efficiencies in Midlatitude and Tropical Squall Simulations’, Mon. Wea. Rev. 124, 2100-2125.

    Google Scholar 

  • Gaffen, D. J., Barnett, T. P., and Elliott, W. P.: 1991, ‘Space and Time Scales of Global Tropospheric Moisture’, J. Clim. 4, 989-1008.

    Google Scholar 

  • Gaffen, D. J., Elliott, W. P., and Robock, A.: 1992, ‘Relationships Between TroposphericWater Vapor and Surface Temperature as Observed by Radiosondes’, Geophys. Res. Lett. 19, 1839-1842.

    Google Scholar 

  • Gregory, J. M., Mitchell, J. F. B., and Brady, A. J.: 1997, ‘Summer Drought in Northern Midlatitudes in a Time-Dependent Climate Experiment’, J. Clim. 10, 662-686.

    Google Scholar 

  • Gutowski, W. J., Gutzler, D. S., and Wang, W-C.: 1991, ‘Surface Energy Balances of Three General Cirulation Models: Implications for Simulating Regional Climate Change’, J. Clim. 4, 121-134.

    Google Scholar 

  • Gutzler, D. S.: 1992, ‘Climatic Variability of Temperature and Humidity Over the Tropical Western Pacific’, Geophys. Res. Lett. 19, 1595-1598.

    Google Scholar 

  • Halpert, M. S. and Bell, G. D.: 1997, ‘Climate Assessment for 1996’, Bull. Amer. Meteor. Soc. 78, S1-S49 (May issue).

    Google Scholar 

  • Held, I. M.: 1993, ‘Large-Scale Dynamics and Global Warming’, Bull. Amer. Meteor. Soc. 74, 228-241.

    Google Scholar 

  • Hense, A., Krahe, P., and Flohn, H.: 1988, ‘Recent Fluctuations of Tropospheric Temperature and Water Vapour Content in the Tropics’, Meteorol. Atmos. Phys. 38, 215-227.

    Google Scholar 

  • Higgins, R. W., Janowiak, J. E., and Yao, Y-P.: 1996, A Gridded Hourly Precipitation Data Base for the United States (1963-1993), NCEP/Climate Prediction Center Atlas No. 1. U.S. Dept. Commerce, 47 pp.

  • Huffman, G. J., Adler, R. F., Arkin, P., Chang, A., Ferraro, R., Gruber, A., Janowiak, J., McNab, A., Rudolf, B., and Schneider, U.: 1997, ‘The Global Precipitation Climatology Project (GPCP) Combined Precipitation Dataset’, Bull. Amer. Meteor. Soc. 78, 5-20.

    Google Scholar 

  • Hurrell, J. W.: 1995, ‘Decadal Trends in the North Atlantic Oscillation Regional Temperatures and Precipitation’, Science 269, 676-679.

    Google Scholar 

  • Hurrell, J. W.: 1996, ‘Influence of Variations in Extratropical Wintertime Teleconnections on Northern Hemisphere Temperature’, Geophys. Res. Lett. 23, 665-668.

    Google Scholar 

  • IPCC (Intergovernmental Panel of Climate Change): 1996, Climate Change 1995: The Science of Climate Change, Houghton, J. T., Meira Filho, F. G., Callander, B. A., Harris, N., Kattenberg, A., and Maskell, K. (eds.), Cambridge Univ. Press, Cambridge, U.K.

    Google Scholar 

  • Jones, D. M. A. and Sims, A. L.: 1978, ‘Climatology of Instantaneous Rainfall Rates’, J. Appl. Meteor. 17, 1135-1140.

    Google Scholar 

  • Kalnay, E., Kanamitsu, M., Kistler, R., Collins, W., Deaven, D., Gandin, L., Iredell, M., Saha, S., White, G., Woollen, J., Zhu, Y., Chelliah, M., Ebisuzaki, W., Higgins, W., Janowiak, J., Mo, K-C., Ropelewski, C., Leetmaa, A., Reynolds, R., and Jenne, R.: 1996, ‘The NCEP/NCAR Reanalysis Project’, Bull. Amer. Meteor. Soc. 77, 437-471.

    Google Scholar 

  • Karl, T. R., Knight, R. W., Easterling, D. R., and Quayle, R. G.: 1996, ‘Indices of Climate Change for the United States’, Bull. Amer. Meteor. Soc. 77, 279-292.

    Google Scholar 

  • Karl, T. R. and Knight, R. W.: 1998, ‘Secular Trends of Precipitation Amount, Frequency, and Intensity in the U.S.A.’, Bull. Amer. Meteor. Soc. 79, 231-242.

    Google Scholar 

  • Kumar, A., Leetmaa, A., and Ji, M.: 1994, ‘Simulations of Atmospheric Variability Induced by Sea Surface Temperatures and Implications for Global Warming’, Science 266, 632-634.

    Google Scholar 

  • Mearns, L. O., Giorgi, F., McDaniel, L., and Shields, C.: 1995, ‘Analysis of Daily Variability of Precipitation in a Nested Regional Climate Model: Comparison with Observations and Doubled Results’, Glob. Planet. Change 10, 55-78.

    Google Scholar 

  • Meehl, G. A. and Washington, W. M.: 1988, ‘A Comparison of Soil Moisture Sensitivity in Two Global Climate Models’, J. Atmos. Sci. 45, 1476-1492.

    Google Scholar 

  • Mitchell, J. F. B., Wilson, C. A., and Cunnington, W. M.: 1987, ‘On Climate Sensitivity and Model Dependence of Results’, Quart. J. Roy. Meteor. Soc. 113, 293-322.

    Google Scholar 

  • Randel, D. L., Vonder Haar, T. H., Ringerud, M. A., Reinke, D. L., Stephens, G. L., Greenwald, T. J., and Combs, C. L.: 1996, ‘A New GlobalWater Vapor Dataset’, Bull. Amer. Meteor. Soc. 77, 1233-1246.

    Google Scholar 

  • Roads, J. O., Marshall, S., Oglesby, R., and Chen, S-C.: 1996, ‘Sensitivity of the CCM1 Hydrological Cycle to CO2’, J. Geophys. Res. 101, 7321-7339.

    Google Scholar 

  • Ross, R. J. and Elliot, W. P.: 1996, ‘Tropospheric Water Vapor Climatology and Trends over North America: 1973-93’, J. Clim. 9, 3561-3574.

    Google Scholar 

  • Short, D. A., Shimizu, K., and Kedem, B.: 1993a, ‘Optimal Thresholds for the Estimation of Area Rain Rate Moments by the Threshold Method’, J. Appl. Meteor. 32, 182-192.

    Google Scholar 

  • Short, D. A., Wolff, D. B., Rosenfeld, D., and Atlas, D.: 1993b, ‘A Study of the Threshold Method Utilizing Rain Gauge Data’, J. Appl. Meteor. 32, 1379-1387.

    Google Scholar 

  • Shimizu, K., Short, D. A., and Kedem, B.: 1993, ‘Single-and Double-Threshold Methods for Estimating the Variance of Area Rain Rate’, J. Meteor. Soc. Japan 71, 673-683.

    Google Scholar 

  • Trenberth, K. E.: 1992, Global Analyses from ECMWF and Atlas of 1000 to 10 mb Circulation Statistics, NCAR Technical Note NCAR/TN 373+STR, NCAR, Boulder, CO. 191 pp. plus 24 fiche.

  • Trenberth, K. E.: 1998, ‘Atmospheric Moisture Recycling: Role of Advection and Local Evaporation’, J. Clim.(submitted).

  • Trenberth, K. E. and Hurrell, J. W.: 1994, ‘Decadal Atmosphere-Ocean Variations in the Pacific’, Clim. Dyn. 9, 303-319.

    Google Scholar 

  • Trenberth, K. E. and Guillemot, C. J.: 1995, ‘Evaluation of the Global Atmospheric Moisture Budget as Seen from Analyses’, J. Clim. 8, 2255-2272.

    Google Scholar 

  • Trenberth, K. E. and Guillemot, C. J.: 1996a, ‘Physical Processes Involved in the 1988 Drought and 1993 Floods in North America’, J. Clim. 9, 1288-1298.

    Google Scholar 

  • Trenberth K. E. and Guillemot, C. J.: 1996b, Evaluation of the Atmospheric Moisture and Hydrological Cycle in the NCEP Reanalyses, NCAR Tech. Note NCAR/TN-430+STR. 300 pp.

  • Trenberth K. E. and Guillemot, C. J.: 1998, ‘Evaluation of the Atmospheric Moisture and Hydrological Cycle in the NCEP/NCAR Reanalyses’, Clim. Dyn. 14, 213-231.

    Google Scholar 

  • Trenberth, K. E. and Hoar, T. J.: 1996, ‘The 1990-1995 El Niño-Southern Oscillation Event: Longest on Record’, Geophys. Res. Lett. 23, 57-60.

    Google Scholar 

  • Xie, P. and Arkin, P. A.: 1996, ‘Analyses of Global Monthly Precipitation Using Gauge Observations, Satellite Estimates, and Numerical Model Predictions’, J. Clim. 9, 840-858.

    Google Scholar 

  • Xie, P. and Arkin, P. A.: 1997, ‘Global Precipitation: A 17 Year Monthly Analysis Based on Gauge Observations, Satellite Estimates and Numerical Model Outputs’, Bull. Amer. Meteor. Soc. 78, 2539-2558.

    Google Scholar 

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Trenberth, K.E. Atmospheric Moisture Residence Times and Cycling: Implications for Rainfall Rates and Climate Change. Climatic Change 39, 667–694 (1998). https://doi.org/10.1023/A:1005319109110

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