论文标题
关于软材料机电行为的稳定性和分叉分析的教程
A tutorial on the stability and bifurcation analysis of the electromechanical behaviour of soft materials
论文作者
论文摘要
软材料,例如液体,聚合物,泡沫,凝胶,胶体,颗粒材料和大多数软生物材料,在我们的日常生活中起着重要作用。从机械的角度来看,由于其低弹性模量,软材料可以轻松实现大变形。同时,经常观察到表面不稳定性,包括皱纹,折痕,褶皱和山脊,等等。特别是,受到电刺激的软电介质可以实现明显的变形,这些变形通常伴随着不稳定性。尽管通常认为不稳定性会导致工程环境中的失败并带有负面的含义,但它们也可以用于各种应用,例如表面图案,巨大的致动菌株和能量收获。在生物学世界中,不稳定和分叉现象通常在重要事件之前,例如内吞作用,细胞融合等。稳定性和分叉分析(尤其是针对软材料)是具有挑战性的,并且通常在这一重要领域中出现强大的进入障碍。多学科的受众可能缺乏在一个或多个领域进行必要的建模甚至了解文献中的论文所需的背景。此外,将静电和大变形结合在一起带来了自己的挑战。在本文中,我们提供了有关软机电材料背景下稳定性和分叉分析的基础知识的教程。本文的目的是使用简单的示例,``轻轻地''带领读者,不熟悉稳定性分析或可变形媒体的静电,以发展了解已经存在并定位它们以启动有关该主题的最新研究的相关文献的能力。
Soft materials, such as liquids, polymers, foams, gels, colloids, granular materials, and most soft biological materials, play an important role in our daily lives. From a mechanical viewpoint, soft materials can easily achieve large deformations due to their low elastic moduli; meanwhile, surface instabilities, including wrinkles, creases, folds, and ridges, among others, are often observed. In particular, soft dielectrics subject to electrical stimuli can achieve significantly large deformations that are often accompanied by instabilities. While instabilities are often thought to cause failures in the engineering context and carry a negative connotation, they can also be harnessed for various applications such as surface patterning, giant actuation strain, and energy harvesting. In the biological world, instability and bifurcation phenomena often precede important events such as endocytosis, cell fusion, among others. Stability and bifurcation analysis (especially for soft materials) is challenging and often presents a formidable barrier to entry in this important field. A multidisciplinary audience may lack the background in one or more areas that are needed to carry out the requisite modeling or even understand papers in the literature. Furthermore, combining electrostatics together with large deformations brings its own challenges. In this article, we provide a tutorial on the basics of stability and bifurcation analysis in the context of soft electromechanical materials. The aim of the article is to use simple examples and ``gently" lead a reader, unfamiliar with either stability analysis or electrostatics of deformable media, to develop the ability to understand the pertinent literature that already exists and position them to embark on state-of-the-art research on this topic.