Emergent Kinematics and Flow Structure of Tension Driven Pulsing Xeniid Corals.

IF 2.2 4区 数学 Q2 BIOLOGY
Matea Santiago, Alexander Hoover, Laura A Miller
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引用次数: 0

Abstract

This work presents a three-dimensional fully-coupled fluid-structure interaction (FSI) model of a pulsing soft coral polyp where the movement of the tentacles is driven by a prescribed active tension during contraction with a passive expansion due to the elastic behavior of the tentacles. The resulting motion of the tentacles is emergent rather than prescribed. This approach allows one to determine how the coral's underlying morphology, mechanics, and neural activation affect its kinematics and the resulting fluid motion, which has implications for soft robotic design. More specifically, one can easily vary the maximum tension exerted by the coral, the elasticity of the model coral body, and the pulsation frequency to understand how altering neuromechanical parameters affects the flux above the coral and the energy required to pulse actively. When the parameters are tuned such that the emergent motion is similar to that measured for live coral, a large amount of upward flux is generated for a relatively low energy expenditure. Additionally, a circulation analysis reveals the generation of stopping and starting vortices with each pulse cycle, as seen in other Cnidarians such as jellyfish. We find that the relationship between kinematics, upward flux, circulation, and the polyp's active and passive material properties is highly complex. Our results suggest that the corals operate at or near an energetically favorable regime. This work further increases our understanding of how and when sessile organisms should expend energy to actively pulse to enhance nutrient exchange.

张力驱动脉动珊瑚的涌现运动学与流动结构。
本研究提出了一个脉冲软珊瑚息肉的三维全耦合流固相互作用(FSI)模型,其中触手的运动是由规定的主动张力驱动的,在收缩过程中,由于触手的弹性行为,触手的被动扩张。由此产生的触角运动是自发的,而不是规定的。这种方法可以确定珊瑚的潜在形态、力学和神经激活如何影响其运动学和由此产生的流体运动,这对软机器人设计具有重要意义。更具体地说,人们可以很容易地改变珊瑚施加的最大张力、模型珊瑚体的弹性和脉动频率,以了解改变神经力学参数如何影响珊瑚上方的通量和主动脉动所需的能量。当调整参数使涌现运动与对活珊瑚的测量相似时,以相对较低的能量消耗产生大量的向上通量。此外,循环分析揭示了每个脉冲周期产生的停止和开始漩涡,正如在其他刺胞动物如水母中看到的那样。我们发现运动学、上升通量、循环和息肉的主动和被动材料性质之间的关系是非常复杂的。我们的研究结果表明,珊瑚在能量有利的状态下或附近运作。这项工作进一步增加了我们对无根生物应该如何以及何时消耗能量来主动脉冲以增强营养交换的理解。
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来源期刊
CiteScore
3.90
自引率
8.60%
发文量
123
审稿时长
7.5 months
期刊介绍: The Bulletin of Mathematical Biology, the official journal of the Society for Mathematical Biology, disseminates original research findings and other information relevant to the interface of biology and the mathematical sciences. Contributions should have relevance to both fields. In order to accommodate the broad scope of new developments, the journal accepts a variety of contributions, including: Original research articles focused on new biological insights gained with the help of tools from the mathematical sciences or new mathematical tools and methods with demonstrated applicability to biological investigations Research in mathematical biology education Reviews Commentaries Perspectives, and contributions that discuss issues important to the profession All contributions are peer-reviewed.
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