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理解昆虫群的热力学性质。

Understanding the thermodynamic properties of insect swarms.

机构信息

Rothamsted Research, Harpenden, Hertfordshire, AL5 2JQ, UK.

出版信息

Sci Rep. 2021 Jul 22;11(1):14979. doi: 10.1038/s41598-021-94582-x.

Abstract

Sinhuber et al. (Sci Rep 11:3773, 2021) formulated an equation of state for laboratory swarms of the non-biting midge Chironomus riparius that holds true when the swarms are driven through thermodynamic cycles by the application external perturbations. The findings are significant because they demonstrate the surprising efficacy of classical equilibrium thermodynamics for quantitatively characterizing and predicting collective behaviour in biology. Nonetheless, the equation of state obtained by Sinhuber et al. (2021) is anomalous, lacking a physical analogue, making its' interpretation problematic. Moreover, the dynamical processes underlying the thermodynamic cycling were not identified. Here I show that insect swarms are equally well represented as van der Waals gases and I attribute the possibility of thermodynamic cycling to insect swarms consisting of several overlapping sublayers. This brings about a profound change in the understanding of laboratory swarms which until now have been regarded as consisting of non-interacting individuals and lacking any internal structure. I show how the effective interactions can be attributed to the swarms' internal structure, the external perturbations and to the presence of intrinsic noise. I thereby show that intrinsic noise which is known to be crucial for the emergence of the macroscopic mechanical properties of insect swarms is also crucial for the emergence of their thermodynamic properties as encapsulated by their equation of state.

摘要

辛胡贝尔等人(Sci Rep 11:3773, 2021)提出了一个非吸血摇蚊(Chironomus riparius)实验室群体的状态方程,当通过施加外部扰动使群体经历热力学循环时,该方程成立。这一发现意义重大,因为它证明了经典平衡热力学在定量描述和预测生物学中集体行为方面的惊人效果。然而,辛胡贝尔等人(2021)获得的状态方程是异常的,缺乏物理类比,使得其解释存在问题。此外,热力学循环所基于的动力学过程尚未确定。我在这里表明,昆虫群体同样可以表示为范德华气体,并且我将热力学循环的可能性归因于由几个重叠子层组成的昆虫群体。这带来了对实验室群体的理解的深刻变化,到目前为止,实验室群体被认为是由非相互作用的个体组成的,并且缺乏任何内部结构。我展示了如何将有效的相互作用归因于群体的内部结构、外部扰动以及固有噪声的存在。因此,我表明,已知对于昆虫群体宏观力学性质的出现至关重要的固有噪声对于其热力学性质的出现也是至关重要的,这些热力学性质被封装在它们的状态方程中。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fb45/8298516/b39e111d883e/41598_2021_94582_Fig1_HTML.jpg

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