Geometry-dependent Ekman layer approximations on curved domains: L^{\infty} convergence

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Hauptverfasser: Jia, Yifei, Du, Yi, Guo, Lihui
Format: Preprint
Veröffentlicht: 2025
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author Jia, Yifei
Du, Yi
Guo, Lihui
author_facet Jia, Yifei
Du, Yi
Guo, Lihui
contents The Ekman boundary layer is a fundamental concept in fluid dynamics that describes fluid motion near boundaries affected by Earth's rotation. Most theoretical studies have simplified their analysis by assuming a planar boundary surface, resulting in limited exploration of structures with general smooth boundary conditions. Investigating the impact of boundary geometry in the Ekman boundary layer is essential, as initially suggested by J.L. Lions and further examined in Masmoudi's study [Comm. Pure Appl. Math. 53 (2000), 432-483] under small amplitude periodic boundary conditions. This paper clarifies how boundary geometry influences flow fields and characterizes its effects on near-boundary layer flow. We construct a class of multi-scale approximate solutions based on the boundary's geometric features and establish their convergence in the L^{\infty} framework. Our findings do not require a small-amplitude assumption, only an upper bound on the Gaussian curvature of the boundary surface. Notably, when the boundary is planar, our approach aligns with existing studies. Additionally, in the vanishing-viscosity limit, we derive a limiting-state system dependent on boundary geometric parameters. These contributions extend the theoretical understanding of boundary-layer interactions to general curved geometries and have possible applications in atmospheric, oceanic, and other geophysical flow contexts.
format Preprint
id arxiv_https___arxiv_org_abs_2512_18579
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Geometry-dependent Ekman layer approximations on curved domains: L^{\infty} convergence
Jia, Yifei
Du, Yi
Guo, Lihui
Mathematical Physics
Dynamical Systems
Fluid Dynamics
76U05, 76D10
The Ekman boundary layer is a fundamental concept in fluid dynamics that describes fluid motion near boundaries affected by Earth's rotation. Most theoretical studies have simplified their analysis by assuming a planar boundary surface, resulting in limited exploration of structures with general smooth boundary conditions. Investigating the impact of boundary geometry in the Ekman boundary layer is essential, as initially suggested by J.L. Lions and further examined in Masmoudi's study [Comm. Pure Appl. Math. 53 (2000), 432-483] under small amplitude periodic boundary conditions. This paper clarifies how boundary geometry influences flow fields and characterizes its effects on near-boundary layer flow. We construct a class of multi-scale approximate solutions based on the boundary's geometric features and establish their convergence in the L^{\infty} framework. Our findings do not require a small-amplitude assumption, only an upper bound on the Gaussian curvature of the boundary surface. Notably, when the boundary is planar, our approach aligns with existing studies. Additionally, in the vanishing-viscosity limit, we derive a limiting-state system dependent on boundary geometric parameters. These contributions extend the theoretical understanding of boundary-layer interactions to general curved geometries and have possible applications in atmospheric, oceanic, and other geophysical flow contexts.
title Geometry-dependent Ekman layer approximations on curved domains: L^{\infty} convergence
topic Mathematical Physics
Dynamical Systems
Fluid Dynamics
76U05, 76D10
url https://arxiv.org/abs/2512.18579