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飞行昆虫中气味引导导航的数值研究:湍流、翼拍诱导流以及施密特数对气味羽流结构的影响

Numerical Investigation of Odor-Guided Navigation in Flying Insects: Impact of Turbulence, Wingbeat-Induced Flow, and Schmidt Number on Odor Plume Structures.

作者信息

Lei Menglong, Willis Mark A, Schmidt Bryan E, Li Chengyu

机构信息

Department of Mechanical Engineering, Villanova University, Villanova, PA 19085, USA.

Department of Biology, Case Western Reserve University, Cleveland, OH 44106, USA.

出版信息

Biomimetics (Basel). 2023 Dec 6;8(8):593. doi: 10.3390/biomimetics8080593.

Abstract

Odor-guided navigation is fundamental to the survival and reproductive success of many flying insects. Despite its biological importance, the mechanics of how insects sense and interpret odor plumes in the presence of complex flow fields remain poorly understood. This study employs numerical simulations to investigate the influence of turbulence, wingbeat-induced flow, and Schmidt number on the structure and perception of odor plumes by flying insects. Using an in-house computational fluid dynamics solver based on the immersed-boundary method, we solve the three-dimensional Navier-Stokes equations to model the flow field. The solver is coupled with the equations of motion for passive flapping wings to emulate wingbeat-induced flow. The odor landscape is then determined by solving the odor advection-diffusion equation. By employing a synthetic isotropic turbulence generator, we introduce turbulence into the flow field to examine its impact on odor plume structures. Our findings reveal that both turbulence and wingbeat-induced flow substantially affect odor plume characteristics. Turbulence introduces fluctuations and perturbations in the plume, while wingbeat-induced flow draws the odorant closer to the insect's antennae. Moreover, we demonstrate that the Schmidt number, which affects odorant diffusivity, plays a significant role in odor detectability. Specifically, at high Schmidt numbers, larger fluctuations in odor sensitivity are observed, which may be exploited by insects to differentiate between various odorant volatiles emanating from the same source. This study provides new insights into the complex interplay between fluid dynamics and sensory biology and behavior, enhancing our understanding of how flying insects successfully navigate using olfactory cues in turbulent environments.

摘要

气味引导的导航对于许多飞行昆虫的生存和繁殖成功至关重要。尽管其具有生物学重要性,但在复杂流场存在的情况下,昆虫如何感知和解释气味羽流的机制仍知之甚少。本研究采用数值模拟来研究湍流、翅膀拍动引起的气流以及施密特数对飞行昆虫气味羽流的结构和感知的影响。使用基于浸入边界法的内部计算流体动力学求解器,我们求解三维纳维 - 斯托克斯方程来模拟流场。该求解器与被动扑翼的运动方程耦合,以模拟翅膀拍动引起的气流。然后通过求解气味平流 - 扩散方程来确定气味场。通过使用合成各向同性湍流发生器,我们将湍流引入流场以检查其对气味羽流结构的影响。我们的研究结果表明,湍流和翅膀拍动引起的气流都对气味羽流特征有显著影响。湍流在羽流中引入波动和扰动,而翅膀拍动引起的气流将气味剂吸引到昆虫的触角附近。此外,我们证明,影响气味剂扩散率的施密特数在气味可检测性中起重要作用。具体而言,在高施密特数下,观察到气味敏感性有较大波动,昆虫可能利用这一点来区分来自同一来源的各种气味剂挥发物。这项研究为流体动力学与感官生物学和行为之间的复杂相互作用提供了新的见解,增进了我们对飞行昆虫如何在湍流环境中利用嗅觉线索成功导航的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/be01/10741642/dbe8dcb6e441/biomimetics-08-00593-g001.jpg

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