Untangling aerosol effects on clouds and precipitation in a buffered system (original) (raw)
References
Squires, P. The microstructure and colloidal stability of warm clouds. I. The relation between structure and stability. Tellus10, 256–271 (1958)This paper shows that clouds that form in clean marine air are more apt to precipitate than clouds forming in air containing a high aerosol burden. ADS Google Scholar
Liou, K.-N. & Ou, S.-C. The role of cloud microphysical processes in climate: an assessment from a one-dimensional perspective. J. Geophys. Res.94, 8599–8607 (1989) ArticleADS Google Scholar
Albrecht, B. A. Aerosols, cloud microphysics and fractional cloudiness. Science245, 1227–1230 (1989)This study postulates that by suppressing precipitation, the aerosol might increase cloud lifetime and thus enhance radiative forcing. ArticleADSCAS Google Scholar
Pincus, R. & Baker, M. B. Effect of precipitation on the albedo susceptibility of clouds in the marine boundary layer. Nature372, 250–252 (1994) ArticleADSCAS Google Scholar
Hartmann, D. L. & Doelling, D. On the net radiative effectiveness of clouds. J. Geophys. Res.96, 869–891 (1980) ArticleADS Google Scholar
Tiedtke, M. A comprehensive mass flux scheme for cumulus parameterization in large-scale models. Mon. Weath. Rev.117, 1779–1800 (1989) ArticleADS Google Scholar
Bony, S. & Dufresne, J.-L. Marine boundary layer clouds at the heart of tropical cloud feedback uncertainties in climate models. Geophys. Res. Lett.32, L20806 (2006)This paper shows that the sensitivity of shallow marine clouds to changing environmental conditions is the main source of uncertainty in tropical cloud feedbacks simulated by climate models. ArticleADS Google Scholar
Rosenfeld, D. et al. Flood or drought: how do aerosols affect precipitation? Science321, 1309–1313 (2008) ArticleADSCAS Google Scholar
Jiang, H., Xue, H., Teller, A., Feingold, G. & Levin, Z. Aerosol effects on the lifetime of shallow cumulus. Geophys. Res. Lett.33 1029/2006GL026024 (2006)
Twomey, S. The influence of pollution on the shortwave albedo of clouds. J. Atmos. Sci.34, 1149–1152 (1977)This was the first study to point out the potential for the aerosol to brighten clouds, leading to the concept of cloud-mediated (or indirect) aerosol effects. ArticleADS Google Scholar
Levin, Z. & Cotton, W. Aerosol Pollution Impact on Precipitation (Springer, 2008)This book provides a comprehensive review of aerosol effects on clouds and precipitation. Google Scholar
Storelvmo, T. et al. Modeling the Wegner-Bergeron-Findeisen process—implications for aerosol indirect effects. Environ. Res. Lett.3, 045001 (2008) ArticleADS Google Scholar
Stevens, B. et al. Pockets of open cells and drizzle in marine stratocumulus. Bull. Am. Meteorol. Soc.86, 51–57 (2005) ArticleADS Google Scholar
Radke, L. F., Coakley, J. A. & King, M. D. Direct and remote sensing observations of the effects of ships on clouds. J. Appl. Meteorol.246, 1146–1149 (1989) CAS Google Scholar
Comstock, K. K., Bretherton, C. S. & Yuter, S. E. Mesoscale variability and drizzle in southeast Pacific stratocumulus. J. Atmos. Sci.62, 3792–3807 (2005) ArticleADS Google Scholar
Sharon, T. M. et al. Aerosol and cloud microphysical characteristics of rifts and gradients in maritime stratocumulus clouds. J. Atmos. Sci.63, 983–997 (2006) ArticleADS Google Scholar
Stephens, G. et al. The CloudSat mission and the A-TRAIN: a new dimension to space-based observations of clouds and precipitation. Bull. Am. Meteorol. Soc.83, 1771–1790 (2002) ArticleADS Google Scholar
Coakley, J. A., Bernstein, L. & Durkee, A. Effect of ship-stack effluents on cloud reflectivity. Science237, 1020–1022 (1987) ArticleADS Google Scholar
Han, Q., Rossow, W. B. & Lacis, A. A. Near-global survey of effective droplet radii in liquid water clouds using ISCCP data. J. Clim.7, 465–497 (1994) ArticleADS Google Scholar
Sekiguchi, M. et al. A study of the direct and indirect effects of aerosols using global satellite data sets of aerosol and cloud parameters. J. Geophys. Res.108 10.1029/2002JD003359 (2003)
Loeb, N. G. & Schuster, G. L. An observational study of the relationship between cloud, aerosol and meteorology in broken low-level cloud conditions. J. Geophys. Res.113, D14214 (2008)The introduction to this study provides a salient overview of many of the challenges of using satellite observations to relate clouds to the aerosol. ArticleADS Google Scholar
Kaufman, Y. J., Koren, I., Remer, L. A., Rosenfeld, D. & Rudich, Y. The effect of smoke, dust, and pollution aerosol on shallow cloud development over the Atlantic Ocean. Proc. Natl Acad. Sci. USA102, 11207–11212 (2005) ArticleADSCAS Google Scholar
Matheson, M. A., Coakley, J. A. & Tahnk, W. R. Aerosol and cloud property relationships for summertime stratiform clouds in the northeastern Atlantic from Advanced Very High Resolution Radiometer observations. J. Geophys. Res.110, D24204 (2005) ArticleADS Google Scholar
Nakajima, T., Higurashi, A., Kawamoto, K. & Penner, J. E. A possible correlation between satellite-derived cloud and aerosol microphysical parameters. Geophys. Res. Lett.28 10.1029/2000GL012186 (2001)
Rosenfeld, D. TRMM observed first direct evidence of smoke from forest fires inhibiting rainfall. Geophys. Res. Lett.26, 3105–3108 (1999) ArticleADS Google Scholar
Andreae, M. O. et al. Smoking rain clouds over the Amazon. Science303, 1337–1342 (2004) ArticleADSCAS Google Scholar
Charlson, R., Ackerman, A., Bender, F.-M., Anderson, T. & Liu, Z. On the climate forcing consequences of the albedo continuum between cloudy and clear air. Tellus B59 10.1111/j.1600–0889.2007.00297.x (2007)
Koren, I., Remer, L. A., Kaufman, Y. J., Rudich, Y. & Martins, J. V. On the twilight zone between clouds and aerosols. Geophys. Res. Lett.34, L08805 (2007) ArticleADS Google Scholar
Anderson, J. B. Observations from airplanes of cloud and fog conditions along the southern Californian coast. Mon. Weath. Rev.59, 264–270 (1931) ArticleADS Google Scholar
Várnai, T. & Marshak, A. MODIS observations of enhanced clear sky reflectance near clouds. Geophys. Res. Lett.36, L06807 (2009)This study shows that three-dimensional radiative interactions between clouds and their surroundings extend up to 15 km beyond the boundaries of the clouds. ArticleADS Google Scholar
Avey, L., Garrett, T. J. & Stohl, A. Evaluation of the aerosol indirect effect using satellite, tracer transport model, and aircraft data from the International Consortium for Atmospheric Research on Transport and Transformation. J. Geophys. Res.112 10.1029/2006JD007581 (2007)
Rauber, R. et al. Rain in (shallow) cumulus over the ocean–the RICO campaign. Bull. Am. Meteorol. Soc.88, 1912–1928 (2007) ArticleADS Google Scholar
Nuijens, L., Stevens, B. & Siebesma, A. P. The environment of precipitating shallow cumulus convection. J. Atmos. Sci.66, 1962–1969 (2009) ArticleADS Google Scholar
Arakawa, A. in The Physical Basis of Climate and Climate Modelling 181–197 (GARP Publ. Ser. 16, ICSU/WMO, 1975)This prescient study was perhaps the first to appreciate the singular problem clouds pose for the modelling of the general circulation of the atmosphere. Google Scholar
Stevens, B. & Brenguier, J.-L. in Clouds in the Perturbed Climate System: Their Relationship to Energy Balance, Atmospheric Dynamics and Precipitation (eds Heintzenberg, J. & Charlson, R. J.) Ch. 8 (MIT Press, 2009) Google Scholar
Brenguier, J. L., Pawlowska, H. & Schüller, L. J. Cloud microphysical and radiative properties for parameterization and satellite monitoring of the indirect effect of aerosol on climate. J. Geophys. Res.108 10.1029/2002JD002682 (2003)
Mauger, G. S. & Norris, J. R. Meteorological bias in satellite estimates of aerosol-cloud relationships. Geophys. Res. Lett.34 10.1029/2007GL029952 (2007)
Hoppel, W. A., Fitzgerald, J. W., Frick, G. M., Larson, R. E. & Mack, E. J. Aerosol size distributions and optical properties found in the marine boundary layer over the Atlantic Ocean. J. Geophys. Res.95, 3659–3686 (1990) ArticleADS Google Scholar
Hegg, D., Majeed, R., Yuen, P., Baker, M. & Larson, T. The impacts of SO2 oxidation in cloud drops and in haze particles on aerosol light scattering and CCN activity. Geophys. Res. Lett.23, 2613–2616 (1996) ArticleADSCAS Google Scholar
Boucher, O. & Lohmann, U. The sulfate-CCN-cloud albedo effect: a sensitivity study with two general circulation models. Tellus B47, 281–300 (1995) ArticleADS Google Scholar
Hoose, C., Kristjánsson, J. E., Kirkevåg, A., Seland, Ø. & Gettelman, A. Constraining cloud drop number concentration in GCMs suppresses the aerosol indirect effect. Geophys. Res. Lett.36 10.1029/2009GL038568 (2009)
Lohmann, U. & Feichter, J. Global indirect aerosol effects: a review. Atmos. Chem. Phys.5, 715–737 (2005)This paper provides a comprehensive overview of aerosol–cloud interactions (indirect effects) in global climate models and suggest required improvements. ArticleADSCAS Google Scholar
Quaas, J. et al. Aerosol indirect effects — general circulation model intercomparison and evaluation with satellite data. Atmos. Chem. Phys. Discuss.9, 12731–12779 (2009) ArticleADS Google Scholar
Murphy, D. M. et al. An observationally based energy balance for the Earth since 1950. J. Geophys. Res. (in the press)
Knutti, R., Stocker, T. F., Joos, F. & Plattner, G.-K. Constraints on radiative forcing and future climate change from observations and climate model ensembles. Nature416, 719–723 (2002) ArticleADSCAS Google Scholar
Rotstayn, L. D. Indirect forcing by anthropogenic aerosols: a global climate model calculation of the effective-radius and cloud-lifetime effects. J. Geophys. Res.104, 9369–9380 (1999) ArticleADS Google Scholar
Lohmann, U. & Feichter, J. Impact of sulfate aerosols on albedo and lifetime of clouds: a sensitivity study with the ECHAM GCM. J. Geophys. Res.102, 13685–13700 (1997) ArticleADSCAS Google Scholar
Feingold, G. & Siebert, H. in Clouds in the Perturbed Climate System: Their Relationship to Energy Balance, Atmospheric Dynamics and Precipitation, (eds Heintzenberg, J. & Charlson, R. J.) Ch. 14 (MIT Press, 2009) Google Scholar
Twomey, S. A. The nuclei of natural cloud formation, part II: the supersaturation in natural clouds and the variation of cloud droplet concentration. Pure Appl. Geophys.43, 243–249 (1959) Article Google Scholar
Martin, G. M., Johnson, D. & Spice, A. The measurement and parameterization of effective radius of droplets in warm stratocumulus clouds. J. Atmos. Sci.51, 1823–1842 (1994) ArticleADS Google Scholar
O’Dowd, C. D., Lowe, J. A., Smith, M. H. & Kaye, A. D. The relative importance of non-sea sulphate and sea-salt aerosol to the marine cloud condensation nuclei population: an improved multi-component aerosol-cloud droplet parameterization. Q. J. R. Meteorol. Soc.125, 1295–1313 (1999) ArticleADS Google Scholar
Ramanathan, V., Crutzen, P., Kiehl, J. & Rosenfeld, D. Aerosols, climate and the hydrological cycle. Science294, 2119–2124 (2001) ArticleADSCAS Google Scholar
Johnson, D. B. The role of giant and ultragiant aerosol particles in warm rain initiation. J. Atmos. Sci.39, 448–460 (1982) ArticleADS Google Scholar
Seifert, A. & Beheng, K. D. A double-moment parameterization for simulating autoconversion, accretion and self collection. Atmos. Res.59–60, 265–281 (2001) Article Google Scholar
Pawlowska, H. & Brenguier, J.-L. An observational study of drizzle formation in stratocumulus clouds for general circulation model (GCM) parameterization. J. Geophys. Res.33, L19810 (2003) ADS Google Scholar
Comstock, K. K., Wood, R., Yuter, S. E. & Bretherton, C. S. Reflectivity and rain rate in and below drizzling stratocumulus. Q. J. R. Meteorol. Soc.130, 2891–2918 (2004) ArticleADS Google Scholar
vanZanten, M., Stevens, B., Vali, G. & Lenschow, D. Observations of drizzle in nocturnal marine stratocumulus. J. Atmos. Sci.62, 88–106 (2005) ArticleADS Google Scholar
Petters, M. D. et al. Accumulation mode aerosol, pockets of open cells and particle nucleation in the remote subtropical pacific marine boundary layer. J. Geophys. Res.111, D02206 (2005) ADS Google Scholar
Sorooshian, A., Feingold, G., Lebsock, M. D., Jiang, H. & Stephens, G. L. On the precipitation susceptibility of clouds to aerosol perturbations. Geophys. Res. Lett.36, 10.1029/2009GL038993 (2009)
Wood, R. Rate of loss of cloud droplets by coalescence in warm clouds. J. Geophys. Res.111, D21205 (2006) ArticleADS Google Scholar
Stevens, B. & Seifert, A. Understanding the macrophysical outcomes of microphysical choices in simulations of shallow cumulus convection. J. Meteorol. Soc. Jpn86A, 141–163 (2008) Article Google Scholar
Ayala, O., Rosa, B., Wang, L.-P. & Grabowski, W. Effects of turbulence on the geometric collision rate of sedimenting droplets. Part 1. Results from direct numerical simulation. N. J. Phys.10, 075015 (2008) Article Google Scholar
Stevens, B., Cotton, W. R., Feingold, G. & Moeng, C.-H. Large-eddy simulations of strongly precipitating, shallow, stratocumulus-topped boundary layers. J. Atmos. Sci.55, 3616–3638 (1998) ArticleADS Google Scholar
Ackerman, A. S., Kirkpatrick, M. P., Stevens, D. E. & Toon, O. B. The impact of humidity above stratiform clouds on indirect aerosol climate forcing. Nature432, 1014–1017 (2004) ArticleADSCAS Google Scholar
Bretherton, C., Blossey, P. & Uchida, J. Cloud droplet sedimentation, entrainment efficiency and subtropical stratocumulus albedo. Geophys. Res. Lett.34 10.1029/2006GL027648 (2007)
Stevens, B. On the growth of layers of non-precipitating cumulus convection. J. Atmos. Sci.64, 2916–2931 (2007) ArticleADS Google Scholar
Wood, R. Cancellation of aerosol indirect effects in marine stratocumulus through cloud thinning. J. Atmos. Sci.64, 2657–2669 (2007) ArticleADS Google Scholar
Koren, I., Kaufman, Y. J., Rosenfeld, D., Remer, L. A. & Rudich, Y. Aerosol invigoration and restructuring of Atlantic convective clouds. Geophys. Res. Lett.32, L14828 (2005) ArticleADS Google Scholar
Tao, W.-K. Cloud resolving modeling. J. Meteorol. Soc. Jpn85B, 305–330 (2007) Article Google Scholar
Khain, A. P., BenMoshe, N. & Pokrovsky, A. Factors determining the impact of aerosols on surface precipitation from clouds: an attempt at classification. J. Atmos. Sci.65, 1721–1748 (2008) ArticleADS Google Scholar
Kay, J. E. & Wood, R. Timescale analysis of aerosol sensitivity during homogeneous freezing and implications for upper tropospheric water vapor budgets. Geophys. Res. Lett.35, L10809 (2008) ArticleADS Google Scholar
Lee, S. S., Donner, L. J., Phillips, V. T. J. & Ming, Y. Examination of aerosol effects on precipitation in deep convective clouds during the 1997 ARM summer experiment. Q. J. R. Meteorol. Soc.134, 1201–1220 (2008) ArticleADS Google Scholar
Feingold, G., Stevens, B., Cotton, W. R. & Frisch, A. S. On the relationship between drop in-cloud residence time and drizzle production in stratocumulus clouds. J. Atmos. Sci.53, 1108–1122 (1996) ArticleADS Google Scholar
Wang, S., Wang, Q. & Feingold, G. Turbulence, condensation and liquid water transport in numerically simulated nonprecipitating stratocumulus clouds. J. Atmos. Sci.60, 262–278 (2003) ArticleADS Google Scholar
Small, J. D., Chuang, P. Y., Feingold, G. & Jiang, H. Can aerosol increase cloud lifetime? Geophys. Res. Lett. (in the press)
Lu, M.-L. & Seinfeld, J. Study of the aerosol indirect effect by large-eddy simulation of marine stratocumulus. J. Atmos. Sci.62, 3909–3932 (2005) ArticleADS Google Scholar
Sandu, I., Brenguier, J.-L. & Geoffroy, O. Aerosol impacts on the diurnal cycle of marine stratocumulus. J. Atmos. Sci.65, 2705–2718 (2008) ArticleADS Google Scholar
Han, Q., Rossow, W. B., Zeng, J. & Welch, R. Three different behaviors of liquid water path of water clouds in aerosol-cloud interactions. J. Atmos. Sci.59, 726–735 (2002) ArticleADS Google Scholar
Matsui, T. et al. Satellite-based assessment of marine low-cloud variability associated with aerosol, atmospheric stability and the diurnal cycle. J. Geophys. Res.111 10.1029/2005JD006097 (2006)
Houze, R. Mesoscale convective systems. Rev. Geophys.42 10.1029/2004RG000150 (2004)
Xue, H., Feingold, G. & Stevens, B. Aerosol effects on clouds, precipitation, and the organization of shallow cumulus convection. J. Atmos. Sci.65, 392–406 (2008) ArticleADS Google Scholar
Xue, H. & Feingold, G. Large eddy simulations of tradewind cumuli: investigation of aerosol indirect effects. J. Atmos. Sci.63, 1605–1622 (2006) ArticleADS Google Scholar
Ackerman, A. S. et al. Reduction of tropical cloudiness by soot. Science288, 1042–1047 (2000) ArticleADSCAS Google Scholar
Koren, I., Kaufman, Y. J., Remer, L. A. & Martins, J. V. Measurement of the effect of Amazon smoke on inhibition of cloud formation. Science303, 1342–1345 (2004) ArticleADSCAS Google Scholar
Feingold, G., Jiang, H. & Harrington, J. Y. On smoke suppression of clouds in Amazonia. Geophys. Res. Lett.32 10.1029/2004GL021369 (2005)
Lau, K.-M., Kim, M.-K. & Kim, K.-M. Asian summer monsoon anomalies induced by aerosol direct forcing: the role of the Tibetan Plateau. Clim. Dyn.26, 855–864 (2006) Article Google Scholar
Baker, M. & Charlson, R. J. Bistability of CCN concentrations and thermodynamics in the cloud-topped boundary layer. Nature345, 142–145 (1990)This paper postulated the existence of two stable states for shallow clouds that have since been verified by observation. ArticleADS Google Scholar
Latham, J. et al. Global temperature stabilization via controlled albedo enhancement of low-level maritime clouds. Phil. Trans. R. Soc. A366, 3969–3987 (2008) ArticleADS Google Scholar
Heliere, A., Lefebvre, A., Wehr, T., Bezy, J.-L. & Durand, Y. in Proc. Geosci. Remote Sensing Symp. 2007 4975–4978 (IEEE, 2007) Google Scholar
Henson, R. Satellite Observations to Benefit Science and Society: Recommended Missions for the Next Decade Committee on Earth Science and Applications from Space: A Community Assessment and Strategy for the Future 10 (US National Academies Press, 2008) Google Scholar
Jamison, L., Sommer, G. & Porche, I. R. High-Altitude Airships for the Future Force Army. Tech. Report TR-234 (RAND Corporation, 2005) Google Scholar
Wood, R., Mechoso, C., Bretherton, C., Huebert, B. & Weller, R. The VAMOS ocean-cloud-atmosphere-land study (VOCAL). U.S. CLIVAR Var.5, 1–5 (2007) Google Scholar
McComiskey, A. M. et al. An assessment of aerosol-cloud interactions in marine stratus clouds based on surface remote sensing. J. Geophys. Res.114 10.1029/2008JD011006 (2009)