论文标题

扰动catenoid:非轴对称最小表面的稳定性和机械性能

Perturbing the catenoid: stability and mechanical properties of non-axisymmetric minimal surfaces

论文作者

Walzel, Friedrich, Requier, Alice, Boschi, Kevin, Farago, Jean, Fuchs, Philippe, Thalmann, Fabrice, Drenckhan, Wiebke, Muller, Pierre, Charitat, Thierry

论文摘要

在许多软物质系统中,自然而然地出现了最小的表面问题,这些软物质系统的自由能由表面或界面能量主导。特别有趣的是跨越特定几何边界的最小表面的形状,稳定性和机械应力。 “相结合”是最著名的示例,其中已知分析溶液描述了在两个平行的,同心圆形框架之间保持最小表面的形式和稳定性。在这里,我们通过在已知的catenoid溶液周围开发扰动方法,将此问题扩展到不同方向的非轴对称,平行的框架形状。我们表明,扰动理论的预测与肥皂膜和有限元模拟(表面Evolver)的实验非常吻合。结合理论,实验和模拟,我们深入分析了最小表面的形状,稳定性和机械性能如何取决于椭圆形和三叶三叶草形框架的类型和方向。在完全排列的非轴对称框架的极限下,我们的预测与Alimov等人建立的最新理论相吻合(M. M. Alimov,A。V. Bazilevsky和K. G. Kornev,流体物理学,2021,33,052104)。此外,我们向非轴对称框架之间最小表面的最小表面能力提供了证据,尽管完全液体,以传递机械扭矩。这些力可能很有趣,可以利用软物质系统的机械自组装或作为高度敏感的力俘虏。

Minimal surface problems arise naturally in many soft matter systems whose free energies are dominated by surface or interface energies. Of particular interest are the shapes, stability and mechanical stresses of minimal surfaces spanning specific geometric boundaries. The "catenoid" is the best-known example where an analytical solution is known which describes the form and stability of a minimal surface held between two parallel, concentric circular frames. Here we extend this problem to non-axisymmetric, parallel frame shapes of different orientations, by developing a perturbation approach around the known catenoid solution. We show that the predictions of the perturbation theory are in good agreement with experiments on soap films and finite element simulations (Surface Evolver). Combining theory, experiment and simulation, we analyse in depth how the shapes, stability and mechanical properties of the minimal surfaces depend on the type and orientation of elliptical and three-leaf clover shaped frames. In the limit of perfectly aligned non-axisymmetric frames, our predictions show excellent agreement with a recent theory established by Alimov et al (M. M. Alimov, A. V. Bazilevsky and K. G. Kornev, Physics of Fluids, 2021, 33, 052104). Moreover, we put in evidence the intriguing capacity of minimal surfaces between non-axisymmetric frames to transmit a mechanical torque despite being completely liquid. These forces could be interesting to exploit for mechanical self-assembly of soft matter systems or as highly sensitive force captors.

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