Well-posedness of the Kolmogorov two-equation model of turbulence in optimal Sobolev spaces

IF 1.1 3区 数学 Q1 MATHEMATICS Journal of Evolution Equations Pub Date : 2023-10-24 DOI:10.1007/s00028-023-00914-x
Ophélie Cuvillier, Francesco Fanelli, Elena Salguero
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Abstract

In this paper, we study the well-posedness of the Kolmogorov two-equation model of turbulence in a periodic domain $$\mathbb {T}^d$$ , for space dimensions $$d=2,3$$ . We admit the average turbulent kinetic energy k to vanish in part of the domain, i.e. we consider the case $$k \ge 0$$ ; in this situation, the parabolic structure of the equations becomes degenerate. For this system, we prove a local well-posedness result in Sobolev spaces $$H^s$$ , for any $$s>1+d/2$$ . We expect this regularity to be optimal, due to the degeneracy of the system when $$k \approx 0$$ . We also prove a continuation criterion and provide a lower bound for the lifespan of the solutions. The proof of the results is based on Littlewood-Paley analysis and paradifferential calculus on the torus, together with a precise commutator decomposition of the nonlinear terms involved in the computations.
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最优Sobolev空间湍流的Kolmogorov双方程模型的适定性
本文研究了周期域$$\mathbb {T}^d$$中空间维为$$d=2,3$$的Kolmogorov湍流双方程模型的适定性。我们承认平均湍流动能k在部分区域内消失,即我们考虑$$k \ge 0$$;在这种情况下,方程的抛物线结构变得简并。对于该系统,我们证明了Sobolev空间$$H^s$$中对于任意$$s>1+d/2$$的局部适定性结果。我们期望这个规则是最优的,因为当$$k \approx 0$$。我们还证明了一个延拓准则,并给出了解的寿命的下界。结果的证明是基于Littlewood-Paley分析和环面上的准微分演算,以及计算中涉及的非线性项的精确换易子分解。
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来源期刊
CiteScore
2.30
自引率
7.10%
发文量
90
审稿时长
>12 weeks
期刊介绍: The Journal of Evolution Equations (JEE) publishes high-quality, peer-reviewed papers on equations dealing with time dependent systems and ranging from abstract theory to concrete applications. Research articles should contain new and important results. Survey articles on recent developments are also considered as important contributions to the field. Particular topics covered by the journal are: Linear and Nonlinear Semigroups Parabolic and Hyperbolic Partial Differential Equations Reaction Diffusion Equations Deterministic and Stochastic Control Systems Transport and Population Equations Volterra Equations Delay Equations Stochastic Processes and Dirichlet Forms Maximal Regularity and Functional Calculi Asymptotics and Qualitative Theory of Linear and Nonlinear Evolution Equations Evolution Equations in Mathematical Physics Elliptic Operators
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