Standard

Renormalization group analysis of a self-organized critical system: intrinsic anisotropy vs random environment. / Антонов, Николай Викторович; Какинь, Полина Игоревна; Лебедев, Никита Михайлович; Лучин, Александр Юрьевич.

в: Journal of Physics A: Mathematical and Theoretical, Том 56, № 37, 375002, 23.08.2023.

Результаты исследований: Научные публикации в периодических изданияхстатьяРецензирование

Harvard

APA

Vancouver

Author

BibTeX

@article{304bc055d0c04cc0b3337f8e159d5110,
title = "Renormalization group analysis of a self-organized critical system: intrinsic anisotropy vs random environment",
abstract = "We study a self-organized critical system coupled to an isotropic random fluid environment. The former is described by a strongly anisotropic continuous (coarse-grained) model introduced by Hwa and Kardar (1989 Phys. Rev. Lett. 62 1813; 1992 Phys. Rev. A 45 7002); the latter is described by the stirred Navier-Stokes equation due to Forster et al (1977 Phys. Rev. A 16 732). The full problem of two coupled stochastic equations is represented as a field-theoretic model, which is shown to be multiplicatively renormalizable. The corresponding renormalization group (RG) equations possess a semi-infinite curve of fixed points in the four-dimensional space of the model parameters. The whole curve is infrared attractive for realistic values of parameters; its endpoint corresponds to the purely isotropic regime where the original Hwa-Kardar nonlinearity becomes irrelevant. There, one is left with a simple advection of a passive scalar field by the external environment. The main critical dimensions are calculated to leading (one-loop) order (first terms in the ϵ=4-d expansion); some of them are exact in all orders. These dimensions remain the same along that curve, which makes it reasonable to interpret it as a single universality class. However, the correction exponents do vary along the curve. It is therefore not clear whether the curve survives in all orders of the RG expansion or shrinks to a single point when the higher-order corrections are taken into account.",
keywords = "disordered systems., non-equilibrium behavior, renormalization group, self-organized criticality",
author = "Антонов, {Николай Викторович} and Какинь, {Полина Игоревна} and Лебедев, {Никита Михайлович} and Лучин, {Александр Юрьевич}",
year = "2023",
month = aug,
day = "23",
doi = "10.1088/1751-8121/acef7c",
language = "English",
volume = "56",
journal = "Journal of Physics A: Mathematical and Theoretical",
issn = "1751-8113",
publisher = "IOP Publishing Ltd.",
number = "37",

}

RIS

TY - JOUR

T1 - Renormalization group analysis of a self-organized critical system: intrinsic anisotropy vs random environment

AU - Антонов, Николай Викторович

AU - Какинь, Полина Игоревна

AU - Лебедев, Никита Михайлович

AU - Лучин, Александр Юрьевич

PY - 2023/8/23

Y1 - 2023/8/23

N2 - We study a self-organized critical system coupled to an isotropic random fluid environment. The former is described by a strongly anisotropic continuous (coarse-grained) model introduced by Hwa and Kardar (1989 Phys. Rev. Lett. 62 1813; 1992 Phys. Rev. A 45 7002); the latter is described by the stirred Navier-Stokes equation due to Forster et al (1977 Phys. Rev. A 16 732). The full problem of two coupled stochastic equations is represented as a field-theoretic model, which is shown to be multiplicatively renormalizable. The corresponding renormalization group (RG) equations possess a semi-infinite curve of fixed points in the four-dimensional space of the model parameters. The whole curve is infrared attractive for realistic values of parameters; its endpoint corresponds to the purely isotropic regime where the original Hwa-Kardar nonlinearity becomes irrelevant. There, one is left with a simple advection of a passive scalar field by the external environment. The main critical dimensions are calculated to leading (one-loop) order (first terms in the ϵ=4-d expansion); some of them are exact in all orders. These dimensions remain the same along that curve, which makes it reasonable to interpret it as a single universality class. However, the correction exponents do vary along the curve. It is therefore not clear whether the curve survives in all orders of the RG expansion or shrinks to a single point when the higher-order corrections are taken into account.

AB - We study a self-organized critical system coupled to an isotropic random fluid environment. The former is described by a strongly anisotropic continuous (coarse-grained) model introduced by Hwa and Kardar (1989 Phys. Rev. Lett. 62 1813; 1992 Phys. Rev. A 45 7002); the latter is described by the stirred Navier-Stokes equation due to Forster et al (1977 Phys. Rev. A 16 732). The full problem of two coupled stochastic equations is represented as a field-theoretic model, which is shown to be multiplicatively renormalizable. The corresponding renormalization group (RG) equations possess a semi-infinite curve of fixed points in the four-dimensional space of the model parameters. The whole curve is infrared attractive for realistic values of parameters; its endpoint corresponds to the purely isotropic regime where the original Hwa-Kardar nonlinearity becomes irrelevant. There, one is left with a simple advection of a passive scalar field by the external environment. The main critical dimensions are calculated to leading (one-loop) order (first terms in the ϵ=4-d expansion); some of them are exact in all orders. These dimensions remain the same along that curve, which makes it reasonable to interpret it as a single universality class. However, the correction exponents do vary along the curve. It is therefore not clear whether the curve survives in all orders of the RG expansion or shrinks to a single point when the higher-order corrections are taken into account.

KW - disordered systems.

KW - non-equilibrium behavior

KW - renormalization group

KW - self-organized criticality

UR - https://www.mendeley.com/catalogue/2ca9806c-9403-3dfa-ad24-34c59f8b04e8/

U2 - 10.1088/1751-8121/acef7c

DO - 10.1088/1751-8121/acef7c

M3 - Article

VL - 56

JO - Journal of Physics A: Mathematical and Theoretical

JF - Journal of Physics A: Mathematical and Theoretical

SN - 1751-8113

IS - 37

M1 - 375002

ER -

ID: 108236928