Remote sensing of cloud sides of deep convection: towards a three-dimensional retrieval of cloud particle size profiles
Author:
Zinner T.,Marshak A.,Lang S.,Martins J. V.,Mayer B.
Abstract
Abstract. The cloud scanner sensor is a central part of a recently proposed satellite remote sensing concept – the three-dimensional (3-D) cloud and aerosol interaction mission (CLAIM-3D) combining measurements of aerosol characteristics in the vicinity of clouds and profiles of cloud microphysical characteristics. Such a set of collocated measurements will allow new insights in the complex field of cloud-aerosol interactions affecting directly the development of clouds and precipitation, especially in convection. The cloud scanner measures radiance reflected or emitted by cloud sides at several wavelengths to derive a profile of cloud particle size and thermodynamic phase. For the retrieval of effective size a Bayesian approach was adopted and introduced in a preceding paper. In this paper the potential of the approach, which has to account for the complex three-dimensional nature of cloud geometry and radiative transfer, is tested in realistic cloud observing situations. In a fully simulated environment realistic cloud resolving modelling provides complex 3-D structures of ice, water, and mixed phase clouds, from the early stage of convective development to mature deep convection. A three-dimensional Monte Carlo radiative transfer is used to realistically simulate the aspired observations. A large number of cloud data sets and related simulated observations provide the database for an experimental Bayesian retrieval. An independent simulation of an additional cloud field serves as a synthetic test bed for the demonstration of the capabilities of the developed retrieval techniques.
Publisher
Copernicus GmbH
Reference49 articles.
1. Albrecht, B A.: Aerosols, cloud microphysics and fractional cloudiness, Science, 245, 1227–1230, 1989. 2. Anderson, G., Clough, S., Kneizys, F., Chetwynd, J., and Shettle, E.: AFGL atmospheric constituent profiles, Tech. Rep. AFGL-TR-86-0110, AirForce Geophys. Lab., 1986. 3. Andreae, M O., Rosenfeld, D., Artaxo, P., Costa, A A., Frank, G P., Longo, K M., and Silva-Dias, M. A F.: Smoking rain clouds over the Amazon, Science, 303, 1337–1342, 2004. 4. Antyufeev, V S.: Solution of the generalized transport equation with a peak-shaped indicatrix by the Monte Carlo method, Russ. J. Numer. Anal. Math. Model., 11, 113–137, 1996. 5. Baker, M B., Corbin, R G., and Latham, J.: The influence of entrainment on the evolution of cloud droplet spectra: I. A model of inhomogeneous mixing, Q. J. Roy. Meteorol. Soc., 106, 581–598, 1980.
Cited by
1 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
1. Tropospheric clouds in Antarctica;Reviews of Geophysics;2012-01-12
|
|