Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
8185094 | Nuclear Physics B | 2018 | 10 Pages |
Abstract
Non-perturbative Renormalization Group (NPRG) technique is applied to a stochastical model of a non-conserved scalar order parameter near its critical point, subject to turbulent advection. The compressible advecting flow is modeled by a random Gaussian velocity field with zero mean and correlation function ãÏ
jÏ
iãâ¼(Pjiâ¥+αPjiâ¥)/kd+ζ. Depending on the relations between the parameters ζ, α and the space dimensionality d, the model reveals several types of scaling regimes. Some of them are well known (model A of equilibrium critical dynamics and linear passive scalar field advected by a random turbulent flow), but there is a new nonequilibrium regime (universality class) associated with new nontrivial fixed points of the renormalization group equations. We have obtained the phase diagram (d, ζ) of possible scaling regimes in the system. The physical point d=3, ζ=4/3 corresponding to three-dimensional fully developed Kolmogorov's turbulence, where critical fluctuations are irrelevant, is stable for αâ²2.26. Otherwise, in the case of “strong compressibility” αâ³2.26, the critical fluctuations of the order parameter become relevant for three-dimensional turbulence. Estimations of critical exponents for each scaling regime are presented.
Related Topics
Physical Sciences and Engineering
Mathematics
Mathematical Physics
Authors
M. HnatiÄ, G. Kalagov, M. Nalimov,