论文标题

与机械诱导的相变的编程主动粒度物质

Programming Active Cohesive Granular Matter with Mechanically Induced Phase Changes

论文作者

Li, Shengkai, Dutta, Bahnisikha, Cannon, Sarah, Daymude, Joshua J., Avinery, Ram, Aydin, Enes, Richa, Andréa W., Goldman, Daniel I., Randall, Dana

论文摘要

主动物理和群体机器人技术为研究和控制由内部来源驱动的合奏提供了强大的工具。在宏观上,控制群体通常会在微观上使用明显的记忆力,加工能力和协调性,例如,对于胶体机器人,这可能有助于与疾病作斗争,制造智能纺织品和设计纳米计算机。为了制定可以利用相互作用物理学并因此可以在范围内利用的原则,我们采用两管齐下的方法:一种自组织粒子系统的理论抽象和一个有意使用数字电子计算和通信的主动粘性粒状物质的实验机器人系统,使用最小的(或无)感应和控制,以测试理论上的预测。我们考虑聚合,分散和集体运输的问题。正如该理论所预测的那样,作为代表颗粒室吸引力的参数增加,机器人从分散阶段转变为一个聚集的相位,形成了密集的,紧凑的集体。当汇总时,集体可以在其环境中运输非机器人“杂质”,从而执行由过渡基础的物理学驱动的紧急任务。这些结果表明,算法设计与主动物质robophysics之间的富有成效的相互作用,可以导致新的非平衡物理和编程集体原理,而无需复杂的算法或能力。

Active matter physics and swarm robotics have provided powerful tools for the study and control of ensembles driven by internal sources. At the macroscale, controlling swarms typically utilizes significant memory, processing power, and coordination unavailable at the microscale, e.g., for colloidal robots, which could be useful for fighting disease, fabricating intelligent textiles, and designing nanocomputers. To develop principles that that can leverage physics of interactions and thus can be utilized across scales, we take a two-pronged approach: a theoretical abstraction of self-organizing particle systems and an experimental robot system of active cohesive granular matter that intentionally lacks digital electronic computation and communication, using minimal (or no) sensing and control, to test theoretical predictions. We consider the problems of aggregation, dispersion, and collective transport. As predicted by the theory, as a parameter representing interparticle attraction increases, the robots transition from a dispersed phase to an aggregated one, forming a dense, compact collective. When aggregated, the collective can transport non-robot "impurities" in their environment, thus performing an emergent task driven by the physics underlying the transition. These results point to a fruitful interplay between algorithm design and active matter robophysics that can result in new nonequilibrium physics and principles for programming collectives without the need for complex algorithms or capabilities.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源