On the spectral distribution of kinetic energy in large-scale atmospheric flow

被引:2
|
作者
Wiin-Nielsen, A [1 ]
机构
[1] Niels Bohr Inst Astron Phys & Geophys, Dept Geophys, DK-2100 Copenhagen, Denmark
关键词
D O I
10.5194/npg-5-187-1998
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
A one-dimensional form of the equation of motion with forcing and dissipation is formulated in the spectral domain and used to make long term integrations from which the spectral distribution of the kinetic energy is determined. The forcing in the wave number domain is determined in advance and kept constant for the duration of the time integrations. The dissipation is proportional to the second derivative of the velocity. The applied equation is made nan-dimensional by selecting a length scale fi om which the time scale and the velocity scale may be determined. The resulting equation contains no parameters apart from the forcing. The integrations use a large number of spectral components and no approximation is made with respect to the non-linear interaction among the spectral components. Starting from an initial state in which all the velocity components are set to zero the equation is integrated for a long time to see if it reaches a steady state. The spectral distribution of the kinetic energy is determined in the steady state, and it is found that the distribution, in agreement with observational studies, may be approximated by a power law of the form n(-3) within certain wave number regions. The wave numbers for which the -3 power law applies is found between the region of maximum forcing and the dissipation range. The intensity of the maximum forcing is varied to see how the resulting steady state varies. In addition, the maximum number of spectral components is varied. However, the available computing power sets an upper limit to the number of components.
引用
收藏
页码:187 / 192
页数:6
相关论文
共 50 条
  • [41] Scale Analysis for Large-Scale Tropical Atmospheric Dynamics
    Yano, Jun-Ichi
    Bonazzola, Marine
    JOURNAL OF THE ATMOSPHERIC SCIENCES, 2009, 66 (01) : 159 - 172
  • [42] THE LARGE-SCALE DISTRIBUTION OF GALAXIES
    GELLER, MJ
    ASTRONOMY, COSMOLOGY AND FUNDAMENTAL PHYSICS, 1989, 155 : 83 - 103
  • [43] Control of Barents Sea Wintertime Cyclone Variability by Large-Scale Atmospheric Flow
    Madonna, Erica
    Hes, Gabriel
    Li, Camille
    Michel, Clio
    Siew, Peter Yu Feng
    GEOPHYSICAL RESEARCH LETTERS, 2020, 47 (19)
  • [44] To flow or not to flow. A perspective on large-scale stationary electrochemical energy storage
    Pokhriyal, Anukriti
    Rueda-Garcia, Daniel
    Gomez-Romero, Pedro
    SUSTAINABLE ENERGY & FUELS, 2023, 7 (23) : 5473 - 5482
  • [46] On the role of thermal expansion and compression in large-scale atmospheric energy and mass transports
    Nicholls, Melville E.
    Pielke, Roger A., Sr.
    ATMOSPHERIC CHEMISTRY AND PHYSICS, 2018, 18 (21) : 15975 - 16003
  • [47] Novel spectral partitioning method for large-scale distribution system feeder reconfiguration
    Zhang, Peng
    Guo, Yongji
    Dianli Xitong Zidonghue/Automation of Electric Power Systems, 2002, 26 (18): : 25 - 29
  • [48] SPECTRUM OF KINETIC ENERGY TRANSFER DUE TO LARGE-SCALE HORIZONTAL REYNOLDS STRESSES
    SALTZMAN, B
    FLEISHER, A
    TELLUS, 1960, 12 (01): : 110 - 111
  • [49] VARIATIONS OF KINETIC ENERGY OF LARGE-SCALE EDDY CURRENTS IN RELATION TO JET STREAM
    KAO, SK
    HURLEY, WP
    JOURNAL OF GEOPHYSICAL RESEARCH, 1962, 67 (11): : 4233 - &
  • [50] A Power Flow Method Computationally Efficient for Large-Scale Distribution Systems
    Santos, A. C.
    Nanni, M.
    Mansour, M. R.
    Delbem, A. C. B.
    London, J. B. A., Jr.
    Bretas, N. G.
    2008 IEEE/PES TRANSMISSION AND DISTRIBUTION CONFERENCE AND EXPOSITION: LATIN AMERICA, VOLS 1 AND 2, 2008, : 316 - +