昆虫外骨骼中速率无关阻尼的因果模型。

IF 2.8 2区 生物学 Q2 BIOLOGY
Journal of Experimental Biology Pub Date : 2025-07-01 Epub Date: 2025-07-07 DOI:10.1242/jeb.249940
Arion Pons
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引用次数: 0

摘要

在昆虫运动中,能量从肌肉传递到运动是一个有许多耗散源的过程。一个重要但研究不足的来源是昆虫外骨骼本身的结构阻尼:胸部和四肢。实验证据表明,外骨骼阻尼显示频率(或速率)独立性,但由于缺乏模拟该阻尼时域行为的方法,对其性质和含义的调查受到阻碍。在这里,通过应用数学和地震分析的协同和扩展结果,我们提供了这些方法。我们证明了现有的外骨骼速率无关阻尼模型等效于一个重要的时间奇异积分:希尔伯特变换。然而,这些模型都是非因果的,违背了时间的方向性。我们推导了这些现有的外骨骼阻尼模型的独特因果模拟,以及它们在时间上的Hadamard有限部分积分的近似,并提供了模拟它们的方法。这些方法在当前昆虫生物力学的几个问题上得到了验证。最后,我们首次证明,这些速率无关的阻尼模型显示出反直觉的能量特性——在某些情况下,延伸到违反能量守恒。这项工作解决了理解昆虫外骨骼动力学的关键方法僵局,并为速率无关阻尼的微观结构起源提供了新的见解,以及为解决现有模型中违反因果关系和能量守恒所需的方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Causal models of rate-independent damping in insect exoskeleta.

In insect locomotion, the transmission of energy from muscles to motion is a process within which there are many sources of dissipation. One significant but understudied source is the structural damping within the insect exoskeleton itself: the thorax and limbs. Experimental evidence suggests that exoskeletal damping shows frequency (or rate) independence, but investigation into its nature and implications has been hampered by a lack methods for simulating the time-domain behaviour of this damping. Here, synergising and extending results across applied mathematics and seismic analysis, I provide these methods. Existing models of exoskeletal rate-independent damping are equivalent to an important singular integral in time: the Hilbert transform. However, these models are strongly noncausal, violating the directionality of time. I derive the unique causal analogue of these existing exoskeletal damping models, as well as an accessible approximation to them, as Hadamard finite-part integrals in time, and provide methods for simulating them. These methods are demonstrated on several current problems in insect biomechanics. Finally, I demonstrate, for the first time, that these rate-independent damping models show counterintuitive energetic properties - in certain cases, extending to violation of conservation of energy. This work resolves a key methodological impasse in the understanding of insect exoskeletal dynamics and offers new insights into the micro-structural origins of rate-independent damping as well as the directions required to resolve violations of causality and the conservation of energy in existing models.

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来源期刊
CiteScore
5.50
自引率
10.70%
发文量
494
审稿时长
1 months
期刊介绍: Journal of Experimental Biology is the leading primary research journal in comparative physiology and publishes papers on the form and function of living organisms at all levels of biological organisation, from the molecular and subcellular to the integrated whole animal.
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