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Probability Distribution Function of a Forced Passive Tracer in the Lower Stratosphere

Probability Distribution Function of a Forced Passive Tracer in the Lower Stratosphere
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摘要 The probability distribution function (PDF) of a passive tracer, forced by a "mean gradient", is studied. First, we take two theoretical approaches, the Lagrangian and the conditional closure formalisms, to study the PDFs of such an externally forced passive tracer. Then, we carry out numerical simulations for an idealized random flow on a sphere and for European Center for Medium-Range Weather Forecasts (ECMWF) stratospheric winds to test whether the mean-gradient model can be applied to studying stratospheric tracer mixing in midlatitude surf zones, in which a weak and poleward zonal-mean gradient is maintained by tracer leakage through polar and tropical mixing barriers, and whether the PDFs of tracer fluctuations in midlatitudes are consistent with the theoretical predictions. The numerical simulations show that when diffusive dissipation is balanced by the mean-gradient forcing, the PDF in the random flow and the Southern-Hemisphere PDFs in ECMWF winds show time-invariant exponential tails, consistent with theoretical predictions. In the Northern Hemisphere, the PDFs exhibit non-Gaussian tails. However, the PDF tails are not consistent with theoretical expectations. The long-term behavior of the PDF tails of the forced tracer is compared to that of a decaying tracer. It is found that the PDF tails of the decaying tracer are time-dependent, and evolve toward flatter than exponential. The probability distribution function (PDF) of a passive tracer, forced by a "mean gradient", is studied. First, we take two theoretical approaches, the Lagrangian and the conditional closure formalisms, to study the PDFs of such an externally forced passive tracer. Then, we carry out numerical simulations for an idealized random flow on a sphere and for European Center for Medium-Range Weather Forecasts (ECMWF) stratospheric winds to test whether the mean-gradient model can be applied to studying stratospheric tracer mixing in midlatitude surf zones, in which a weak and poleward zonal-mean gradient is maintained by tracer leakage through polar and tropical mixing barriers, and whether the PDFs of tracer fluctuations in midlatitudes are consistent with the theoretical predictions. The numerical simulations show that when diffusive dissipation is balanced by the mean-gradient forcing, the PDF in the random flow and the Southern-Hemisphere PDFs in ECMWF winds show time-invariant exponential tails, consistent with theoretical predictions. In the Northern Hemisphere, the PDFs exhibit non-Gaussian tails. However, the PDF tails are not consistent with theoretical expectations. The long-term behavior of the PDF tails of the forced tracer is compared to that of a decaying tracer. It is found that the PDF tails of the decaying tracer are time-dependent, and evolve toward flatter than exponential.
作者 胡永云
出处 《Advances in Atmospheric Sciences》 SCIE CAS CSCD 2007年第2期163-180,共18页 大气科学进展(英文版)
基金 This work is supported by the National Natural Science Foundation of China (NSFC) under Grants Nos. 40575031 and 40533016 by the Ministry of Education of China under Grant No. 106002.
关键词 chaotic mixing probability distribution function STRATOSPHERE TURBULENCE passive tracer chaotic mixing, probability distribution function, stratosphere, turbulence, passive tracer
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  • 1Allen, D. R, and Coauthors, 1999: Observations of middle atmosphere CO from the UARS ISAMS during the early northern winter 1991/1992. J. Atmos. Sci, 56, 563-583.
  • 2Balkovsky, E, and A. Fouxon, 1999: Universal longtime properties of Lagrangian statistics in Batchelor regime and their application to passive scalar problem. Phys. Rev. E, 60, 4164-4174.
  • 3Castaing, B, and Coauthors, 1989: Scaling of hard thermal turbulence in Rayleigh-Benard convection. Journal of Fluid Mechanics, 204, 1-30.
  • 4Chertkov, M, G. Falkovich, I. Kolokolov, and I. Lebedev, 1995: Statistics of a passive scalar advected by a large-scale two-dimensional velocity field: analytic solution. Phys. Rev. E, 51, 5609-5627.
  • 5Ching, E. S. C, 1996: General formula for stationary or statistically homogeneous probability density functions. Phys. Rev. E, 53, 5899-5903.
  • 6Ching E. S. C:, and R. H. Kraichnan, 1998: Exact results for conditional means of a passive scalar in certain statistically homogeneous flows. Journal of Statistical Physics, 93, 787-795.
  • 7Edouard, S, B. Legras, F. Lefevre, and R. Eymard, 1996: The effect of small-scale inhomogeneities on ozone depletion in the Arctic. Nature, 384, 444-447.
  • 8Eswaran, V, and S. B. Pope, 1988: Direct numerical simulations of the turbulent mixing of a passive scalar. Physics of Fluids A, 31(3), 506-520.
  • 9Gollub J. P, J. Clarke, M. Gharib, B. Lane, and O. N. Mesquite, 1991: Fluctuations and transport in a stirred fluid with a mean gradient. Phys. Rev. Lett, 67, 3507-3510.
  • 10Haynes, P, and E. Shuckburgh, 2000: Effective Diffusivity as a diagnostic of atmospheric transport, Part Ⅰ: stratosphere. J. Geophys. Res, 105, 2,2777-2,2794.

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