Encoding spatiotemporal asymmetry in artificial cilia with a ctenophore-inspired soft-robotic platform.

IF 3.1 3区 计算机科学 Q1 ENGINEERING, MULTIDISCIPLINARY
David J Peterman, Margaret L Byron
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引用次数: 0

Abstract

A remarkable variety of organisms use metachronal coordination (i.e. numerous neighboring appendages beating sequentially with a fixed phase lag) to swim or pump fluid. This coordination strategy is used by microorganisms to break symmetry at small scales where viscous effects dominate and flow is time-reversible. Some larger organisms use this swimming strategy at intermediate scales, where viscosity and inertia both play important roles. However, the role of individual propulsor kinematics-especially across hydrodynamic scales-is not well-understood, though the details of propulsor motion can be crucial for the efficient generation of flow. To investigate this behavior, we developed a new soft robotic platform using magnetoactive silicone elastomers to mimic the metachronally coordinated propulsors found in swimming organisms. Furthermore, we present a method to passively encode spatially asymmetric beating patterns in our artificial propulsors. We investigated the kinematics and hydrodynamics of three propulsor types, with varying degrees of asymmetry, using Particle Image Velocimetry and high-speed videography. We find that asymmetric beating patterns can move considerably more fluid relative to symmetric beating at the same frequency and phase lag, and that asymmetry can be passively encoded into propulsors via the interplay between elastic and magnetic torques. Our results demonstrate that nuanced differences in propulsor kinematics can substantially impact fluid pumping performance. Our soft robotic platform also provides an avenue to explore metachronal coordination at the meso-scale, which in turn can inform the design of future bioinspired pumping devices and swimming robots.

用栉水母启发的软机器人平台编码人工纤毛的时空不对称性。
多种多样的生物利用元协调(即众多相邻附肢以固定的相位滞后顺序跳动)来游泳或泵送流体。在粘性效应占主导地位、流动具有时间可逆性的小尺度范围内,微生物利用这种协调策略来打破对称性。一些较大的生物体在中间尺度上使用这种游动策略,此时粘度和惯性都发挥重要作用。然而,单个推进器运动学的作用--尤其是在流体动力尺度上的作用--还没有得到很好的理解,尽管推进器运动的细节对于有效地产生流动至关重要。为了研究这种行为,我们开发了一种新型软机器人平台,使用磁活性硅树脂弹性体来模仿游泳生物中的元协调推进器。此外,我们还提出了一种在人造推进器中被动编码空间不对称跳动模式的方法。我们利用粒子图像测速仪和高速摄像技术研究了具有不同程度不对称的三种推进器的运动学和流体力学。我们发现,在频率和相位滞后相同的情况下,非对称跳动模式比对称跳动模式能移动更多的流体,而且非对称可以通过弹性和磁力矩之间的相互作用被动地编码到推进器中。我们的研究结果表明,推进器运动学的细微差别会对流体泵送性能产生重大影响。我们的软机器人平台还为探索中观尺度的元协调提供了一个途径,这反过来又能为未来生物启发的泵设备和游泳机器人的设计提供信息。
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来源期刊
Bioinspiration & Biomimetics
Bioinspiration & Biomimetics 工程技术-材料科学:生物材料
CiteScore
5.90
自引率
14.70%
发文量
132
审稿时长
3 months
期刊介绍: Bioinspiration & Biomimetics publishes research involving the study and distillation of principles and functions found in biological systems that have been developed through evolution, and application of this knowledge to produce novel and exciting basic technologies and new approaches to solving scientific problems. It provides a forum for interdisciplinary research which acts as a pipeline, facilitating the two-way flow of ideas and understanding between the extensive bodies of knowledge of the different disciplines. It has two principal aims: to draw on biology to enrich engineering and to draw from engineering to enrich biology. The journal aims to include input from across all intersecting areas of both fields. In biology, this would include work in all fields from physiology to ecology, with either zoological or botanical focus. In engineering, this would include both design and practical application of biomimetic or bioinspired devices and systems. Typical areas of interest include: Systems, designs and structure Communication and navigation Cooperative behaviour Self-organizing biological systems Self-healing and self-assembly Aerial locomotion and aerospace applications of biomimetics Biomorphic surface and subsurface systems Marine dynamics: swimming and underwater dynamics Applications of novel materials Biomechanics; including movement, locomotion, fluidics Cellular behaviour Sensors and senses Biomimetic or bioinformed approaches to geological exploration.
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