论文标题
动态颗粒侵入的建模中令人惊讶的简单性
Surprising simplicity in the modeling of dynamic granular intrusion
论文作者
论文摘要
颗粒状侵入(例如动态冲击或车轮运动)是复杂的多相现象,其中谷物表现出固体样和流体样特性以及弹出的气相相。尽管进行了数十年的建模努力,但在这种入侵中对物理学的统一描述尚不清楚。在这里,我们表明,基于摩擦流和无张力分离的简单概念的连续模型描述了自由表面附近的复杂颗粒侵入。该模型在各种实验中捕获了动力学,包括车轮运动,板侵入和跑步机器人。该模型表明,在这种情况下,三种影响(静态贡献和两个动态贡献)主要引起侵入力。这些效应的识别可以开发进一步的降低技术(动态电阻力理论),以快速建模任意形状的入侵者的颗粒球运动。我们提出的用于识别物理机制和相应减少订购关系的连续动机动机策略可能用于各种其他材料。
Granular intrusions, such as dynamic impact or wheel locomotion, are complex multiphase phenomena where the grains exhibit solid-like and fluid-like characteristics together with an ejected gas-like phase. Despite decades of modeling efforts, a unified description of the physics in such intrusions is as yet unknown. Here we show that a continuum model based on the simple notions of frictional flow and tension-free separation describes complex granular intrusions near free surfaces. This model captures dynamics in a variety of experiments including wheel locomotion, plate intrusions, and running legged robots. The model reveals that three effects (a static contribution and two dynamic ones) primarily give rise to intrusion forces in such scenarios. Identification of these effects enables the development of a further reduced-order technique (Dynamic Resistive Force Theory) for rapid modeling of granular locomotion of arbitrarily shaped intruders. The continuum-motivated strategy we propose for identifying physical mechanisms and corresponding reduced-order relations has potential use for a variety of other materials.