Self-organization in foliated phase space: Construction of a scale hierarchy by adiabatic invariants of magnetized particles

被引:23
|
作者
Yoshida, Z. [1 ]
Mahajan, S. M. [2 ]
机构
[1] Univ Tokyo, Grad Sch Frontier Sci, Kashiwa, Chiba 2778561, Japan
[2] Univ Texas Austin, Inst Fus Studies, Austin, TX 78712 USA
来源
关键词
SINGULAR CASIMIR ELEMENTS; IRREVERSIBLE-PROCESSES; RECIPROCAL RELATIONS; RADIAL DIFFUSION; CHARGED-PARTICLE; EQUILIBRIUM; PLASMA; ELECTRONS;
D O I
10.1093/ptep/ptu104
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Adiabatic invariants foliate phase space, and impart a macro-scale hierarchy by separating microscopic variables. On a macroscopic leaf, long-scale ordered structures are created while maximizing entropy. A plasma confined in a magnetosphere is invoked to unveil the organizing principle-in the vicinity of a magnetic dipole, the plasma self-organizes to a state with a steep density gradient. The resulting nontrivial structure has maximum entropy in an appropriate, constrained phase space. One could view such a phase space as a leaf foliated in terms of Casimir invariants-adiabatic invariants measuring the number of quasi-particles (macroscopic representation of periodic motions) are identified as the relevant Casimir invariants. The density clump is created in response to the inhomogeneity of the energy levels (frequencies) of the quasi-particles.
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页数:14
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    [J]. ADVANCES IN PHYSICS-X, 2016, 1 (01): : 2 - 19
  • [2] Self-organization and nonequilibrium structures in the phase space
    Novikov, V.
    Kruchinin, S.
    Bogolubov, N. N.
    Adamenko, S.
    [J]. INTERNATIONAL JOURNAL OF MODERN PHYSICS B, 2008, 22 (13): : 2025 - 2045
  • [3] Self-organization of particles in the superionic phase of lanthanum trifluoride
    V. F. Krivorotov
    [J]. Technical Physics, 2013, 58 : 80 - 87
  • [4] Self-organization of particles in the superionic phase of lanthanum trifluoride
    Krivorotov, V. F.
    [J]. TECHNICAL PHYSICS, 2013, 58 (01) : 80 - 87
  • [5] Formation and self-organization of nanometer-scale Au particles on graphite by vacuum deposition in iodine vapor
    Honda, K
    Yamada, N
    Sano, M
    Yoshimura, S
    [J]. JOURNAL OF MATERIALS RESEARCH, 1999, 14 (03) : 968 - 974
  • [6] Formation and self-organization of nanometer-scale Au particles on graphite by vacuum deposition in iodine vapor
    Katsuya Honda
    Nobusuke Yamada
    Masahito Sano
    Susumu Yoshimura
    [J]. Journal of Materials Research, 1999, 14 : 968 - 974
  • [7] Statistical mechanics with non-integrable topological constraints: Self-organization in knotted phase space
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    [J]. JOURNAL OF MATHEMATICAL PHYSICS, 2020, 61 (10)
  • [8] Self-Organization of Detonation-Diamond Particles on a Substrate in Carbon Condensation from the Vapor–Gas Phase
    V. A. Plotnikov
    B. F. Dem’yanov
    S. V. Makarov
    A. I. Zyryanova
    [J]. Technical Physics Letters, 2019, 45 : 359 - 363
  • [9] Teaching Complexity Theory through Student Construction of a Course Wiki: The Self-Organization of a Scale-Free Network
    May, Christopher J.
    Burgard, Michelle
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    [J]. COMPLEXITY, 2011, 16 (03) : 41 - 48
  • [10] Self-Organization of Detonation-Diamond Particles on a Substrate in Carbon Condensation from the Vapor-Gas Phase
    Plotnikov, V. A.
    Dem'yanov, B. F.
    Makarov, S. V.
    Zyryanova, A. I.
    [J]. TECHNICAL PHYSICS LETTERS, 2019, 45 (04) : 359 - 363