- Access by Xinjiang University
Critical fluctuations and anomalous transport in soft Yukawa-Langevin systems
Phys. Rev. E 80, 046404 – Published 16 October, 2009
DOI: https://doi.org/10.1103/PhysRevE.80.046404
Abstract
Simulation of a Langevin-dynamics model demonstrates emergence of critical fluctuations and anomalous grain transport which have been observed in experiments on “soft” quasi-two-dimensional dusty plasma clusters. Our model does not contain external drive or plasma interactions that serve to drive the system away from thermodynamic equilibrium. The grains are confined by an external potential, interact via static Yukawa forces, and are subject to stochastic heating and dissipation from neutrals. One remarkable feature is emergence of leptokurtic probability distributions of grain displacements on time scales , where is the time at which the standard deviation approaches the mean intergrain distance . Others are development of humps in the distributions on multiples of , anomalous Hurst exponents, and transitions from leptokurtic toward Gaussian displacement distributions on time scales . The latter is a signature of intermittency, here interpreted as a transition from bursty transport associated with hopping on intermediate time scales to vortical flows on longer time scales. These intermittency features are quantitatively modeled by a single-particle Itô-Langevin stochastic equation with a nonlinear drift term.
Article Text
References (34)
- V. E. Fortov et al., Phys. Rep. 421, 1 (2005).
- K. Christensen and N. R. Moloney, Complexity and Criticality (Imperial College Press, London, 2005).
- C. Reichhardt and C. J. Olson Reichhardt, Phys. Rev. E 75, 051407 (2007).
- B. Liu, J. Goree, and Y. Feng, Phys. Rev. E 78, 046403 (2008).
- W.-T. Juan and L. I, Phys. Rev. Lett. 80, 3073 (1998).
- W.-T. Juan, M.-H. Chen, and L. I, Phys. Rev. E 64, 016402 (2001).
- Y.-J. Lai and L. I, Phys. Rev. Lett. 89, 155002 (2002).
- W.-Y. Woon and L. I, Phys. Rev. Lett. 92, 065003 (2004).
- Y.-J. Lai, W.-Y. Woo, and I. Lin, Plasma Phys. Controlled Fusion 46, B449 (2004).
- C.-L. Chan et al., Plasma Phys. Controlled Fusion 47, A273 (2005).
- S. Ratynskaia et al., Phys. Plasmas 12, 022302 (2005).
- S. Ratynskaia, K. Rypdal, C. Knapek, S. Khrapak, A. V. Milovanov, A. Ivlev, J. J. Rasmussen, and G. E. Morfill, Phys. Rev. Lett. 96, 105010 (2006).
- B. Liu and J. Goree, Phys. Rev. E 75, 016405 (2007).
- B. Liu and J. Goree, Phys. Rev. Lett. 100, 055003 (2008).
- K. Rypdal, B. Kozelov, S. Ratynskaia, B. Klumov, C. Knapek, and M. Rypdal, New J. Phys. 10, 093018 (2008).
- C. A. Knapek, A. V. Ivlev, B. A. Klumov, G. E. Morfill, and D. Samsonov, Phys. Rev. Lett. 98, 015001 (2007).
- D. Frenkel and B. Smit, Understanding Molecular Simulation (Academic, New York, 2002).
- B. A. Klumov, M. Rubin-Zuzic, and G. E. Morfill, JETP Lett. 84, 542 (2007).
- B. A. Klumov and G. E. Morfill, JETP Lett. 85, 498 (2007).
- B. A. Klumov and G. E. Morfill, JETP Lett. 87, 409 (2008).
- B. A. Klumov and G. E. Morfill, JETP 107, 908 (2008).
- C. Reichhardt and C. J. Olson Reichhardt, Phys. Rev. Lett. 90, 095504 (2003).
- R. Zangi and S. A. Rice, Phys. Rev. Lett. 92, 035502 (2004).
- U. Frisch, Turbulence: The Legacy of A. N. Kolmogorov (Cambridge University Press, Cambridge, 1995).
- P. Hartmann, Z. Donkó, P. M. Bakshi, G. J. Kalman, and S. Kyrkos, IEEE Trans. Plasma Sci. 35, 332 (2007).
- C. W. Gardiner, Handbook of Stochastic Methods (Springer, Berlin, 1983).
- G. Kaniadakis and P. Quarati, Physica A 237, 229 (1997).
- L. Borland, Phys. Lett. A 245, 67 (1998).
- C. Tsallis, J. Stat. Phys. 52, 479 (1988).
- A. R. Plastino and A. Plastino, Physica A 222, 347 (1995).
- L. Borland, Phys. Rev. E 57, 6634 (1998).
- C. Tsallis and D. J. Bukman, Phys. Rev. E 54, R2197 (1996).
- M. A. Fuentes and M. O. Caceres, Phys. Lett. A 372, 1236 (2008).
- M. Gitterman and V. Halpern, Phase Transitions: A Brief Account with Modern Applications (World Scientific, Singapore, 2004).