Scaling laws of diffusion and time intermittency generated by coherent structures in atmospheric turbulence

被引:17
|
作者
Paradisi, P. [1 ]
Cesari, R. [2 ]
Donateo, A. [2 ]
Contini, D. [2 ]
Allegrini, P. [3 ,4 ]
机构
[1] Ist Sci & Tecnol Informaz A Faedo ISTI CNR, I-56124 Pisa, Italy
[2] Ist Sci Atmosfera & Clima, Lecce Unit, I-73100 Lecce, Italy
[3] Ist Fisiol Clin IFC CNR, I-56124 Pisa, Italy
[4] Scuola Super Sant Anna, Ctr EXTREME, I-56127 Pisa, Italy
关键词
FRACTIONAL DIFFUSION; ANOMALOUS DIFFUSION; RENEWAL PROCESSES; SURFACE-RENEWAL; RANDOM-WALKS; FICKS LAW; MODULATION; FLUCTUATIONS; EVENTS; MEMORY;
D O I
10.5194/npg-19-113-2012
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
We investigate the time intermittency of turbulent transport associated with the birth-death of self-organized coherent structures in the atmospheric boundary layer. We apply a threshold analysis on the increments of turbulent fluctuations to extract sequences of rapid acceleration events, which is a marker of the transition between self-organized structures. The inter-event time distributions show a power-law decay psi(tau) similar to 1/tau(mu), with a strong dependence of the power-law index mu on the threshold. A recently developed method based on the application of event-driven walking rules to generate different diffusion processes is applied to the experimental event sequences. At variance with the power-law index mu estimated from the inter-event time distributions, the diffusion scaling H, defined by < X-2 > similar to t(2H), is independent from the threshold. From the analysis of the diffusion scaling it can also be inferred the presence of different kind of events, i.e. genuinely transition events and spurious events, which all contribute to the diffusion process but over different time scales. The great advantage of event-driven diffusion lies in the ability of separating different regimes of the scaling H. In fact, the greatest H, corresponding to the most anomalous diffusion process, emerges in the long time range, whereas the smallest H can be seen in the short time range if the time resolution of the data is sufficiently accurate. The estimated diffusion scaling is also robust under the change of the definition of turbulent fluctuations and, under the assumption of statistically independent events, it corresponds to a self-similar point process with a well-defined power-law index mu(D) similar to 2.1, where D denotes that mu(D) is derived from the diffusion scaling. We argue that this renewal point process can be associated to birth and death of coherent structures and to turbulent transport near the ground, where the contribution of turbulent coherent structures becomes dominant.
引用
收藏
页码:113 / 126
页数:14
相关论文
共 50 条
  • [1] Scaling laws of diffusion and time intermittency generated by coherent structures in atmospheric turbulence (vol 19, pg 113, 2012)
    Paradisi, P.
    Cesari, R.
    Donateo, A.
    Contini, D.
    Allegrini, P.
    NONLINEAR PROCESSES IN GEOPHYSICS, 2012, 19 (06) : 685 - 685
  • [2] Scaling laws of turbulence intermittency in the atmospheric boundary layer: the role of stability
    Paradisi, Paolo
    Cesari, Rita
    Allegrini, Paolo
    4TH INTERNATIONAL CONFERENCE ON MATHEMATICAL MODELING IN PHYSICAL SCIENCES (IC-MSQUARE2015), 2015, 633
  • [3] SCALING LAWS AND INTERMITTENCY IN PHASE TURBULENCE
    ZALESKI, S
    LALLEMAND, P
    JOURNAL DE PHYSIQUE LETTRES, 1985, 46 (17): : L793 - L797
  • [5] Scaling laws and intermittency in highly compressible turbulence
    Kritsuk, Alexel G.
    Padoan, Paolo
    Wagner, Rick
    Norman, Michael L.
    TURBULENCE AND NONLINEAR PROCESSES IN ASTROPHYSICAL PLASMAS, 2007, 932 : 393 - +
  • [6] Intermittency and scaling laws for wall bounded turbulence
    Benzi, R
    Amati, G
    Casciola, CM
    Toschi, F
    Piva, R
    PHYSICS OF FLUIDS, 1999, 11 (06) : 1284 - 1286
  • [7] Coherent Structures and Intermittency in Plasma Turbulence
    Das, Arnita
    Kaw, Predhiman
    Sen, Abhijit
    FRONTIERS IN MODERN PLASMA PHYSICS, 2008, 1061 : 14 - 23
  • [8] New perspectives in turbulence: Scaling laws, asymptotics, and intermittency
    Barenblatt, GI
    Chorin, AJ
    SIAM REVIEW, 1998, 40 (02) : 265 - 291
  • [9] Intermittency, coherent structures and dissipation in plasma turbulence
    Wan, M.
    Matthaeus, W. H.
    Roytershteyn, V.
    Parashar, T. N.
    Wu, P.
    Karimabadi, H.
    PHYSICS OF PLASMAS, 2016, 23 (04)
  • [10] Scaling Laws and Intermittency in Cryogenic Turbulence Using SHREK Experiment
    Kharche, Swapnil
    Bon-Mardion, Michel
    Moro, Jean-Paul
    Peinke, Joachim
    Rousset, Bernard
    Girard, Alain
    PROGRESS IN TURBULENCE VIII, 2019, 226 : 179 - 184