English

Time correlations and 1/f behavior in backscattering radar reflectivity measurements from cirrus cloud ice fluctuations

Statistical Mechanics 2015-06-24 v2 Chaotic Dynamics Atmospheric and Oceanic Physics Computational Physics

Abstract

The state of the atmosphere is governed by the classical laws of fluid motion and exhibits correlations in various spatial and temporal scales. These correlations are crucial to understand the short and long term trends in climate. Cirrus clouds are important ingredients of the atmospheric boundary layer. To improve future parameterization of cirrus clouds in climate models, it is important to understand the cloud properties and how they change within the cloud. We study correlations in the fluctuations of radar signals obtained at isodepths of winter and fall cirrus clouds. In particular we focus on three quantities: (i) the backscattering cross-section, (ii) the Doppler velocity and (iii) the Doppler spectral width. They correspond to the physical coefficients used in Navier Stokes equations to describe flows, i.e. bulk modulus, viscosity, and thermal conductivity. In all cases we find that power-law time correlations exist with a crossover between regimes at about 3 to 5 min. We also find that different type of correlations, including 1/f behavior, characterize the top and the bottom layers and the bulk of the clouds. The underlying mechanisms for such correlations are suggested to originate in ice nucleation and crystal growth processes.

Keywords

Cite

@article{arxiv.cond-mat/0301197,
  title  = {Time correlations and 1/f behavior in backscattering radar reflectivity measurements from cirrus cloud ice fluctuations},
  author = {K. Ivanova and T. P. Ackerman and E. E. Clothiaux and P. Ch. Ivanov and H. E. Stanley and M. Ausloos},
  journal= {arXiv preprint arXiv:cond-mat/0301197},
  year   = {2015}
}

Comments

33 pages, 9 figures; to appear in the Journal of Geophysical Research - Atmospheres