Modified mean curvature flow of entire locally Lipschitz radial graphs in hyperbolic space
Patrick A Allmann, Longzhi Lin, Jingyong Zhu
Abstract
Open-access reader
Patrick A Allmann, Longzhi Lin, Jingyong Zhu
Abstract
Open-access reader
Abstract The Asymptotic Plateau Problem asks for the existence of smooth complete hypersurfaces of constant mean curvature with prescribed asymptotic boundary at infinity in the hyperbolic space . The modified mean curvature flow (MMCF) was firstly introduced by Xiao and the second author a few years back in [15], and it provides a tool using geometric flow to find such hypersurfaces with constant mean curvature in . Similar to the usual mean curvature flow, the MMCF is the natural negative L2‐gradient flow of the area‐volume functional associated to a hypersurface Σ. In this paper, we prove that the MMCF starting from an entire locally Lipschitz continuous radial graph exists and stays radially graphic for all time. In general one cannot expect the convergence of the flow as it can be seen from the flow starting from a horosphere (whose asymptotic boundary is degenerate to a point).
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Abstract The Asymptotic Plateau Problem asks for the existence of smooth complete hypersurfaces of constant mean curvature with prescribed asymptotic boundary at infinity in the hyperbolic space . The modified mean curvature flow (MMCF) was firstly introduced by Xiao and the second author a few years back in [15], and it provides a tool using geometric flow to find such hypersurfaces with constant mean curvature in . Similar to the usual mean curvature flow, the MMCF is the natural negative L2‐gradient flow of the area‐volume functional associated to a hypersurface Σ. In this paper, we prove that the MMCF starting from an entire locally Lipschitz continuous radial graph exists and stays radially graphic for all time. In general one cannot expect the convergence of the flow as it can be seen from the flow starting from a horosphere (whose asymptotic boundary is degenerate to a point).
Key concepts: Mean curvature flow, Mathematics, Hypersurface, Mean curvature, Lipschitz continuity, Hyperbolic space, Mathematical analysis, Curvature