Buzz Pollination: Investigations of Pollen Expulsion using the Discrete Element Method

Caelen G Boucher-Bergstedt, Mark A Jankauski, Erick Johnson
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Abstract

Buzz pollination involves the release of pollen from, primarily, poricidal anthers through vibrations generated by certain bee species. Despite previous experimental and numerical studies, the intricacies of pollen dynamics within vibrating anthers remain elusive due to the challenges in observing these small-scale, opaque systems. This research employs the discrete element method (DEM) to simulate the pollen expulsion process in vibrating anthers. By exploring various frequencies and displacement amplitudes, a correlation between the maximum jerk of anther walls and the initial rate of pollen expulsion is observed under translating oscillations. This study highlights that while increased vibration intensity enhances pollen release, the rate of increase diminishes at higher intensities. Our findings also reveal the significant role of pollen-pollen interactions, which account for upwards of one-third of the total collisions. Comparisons between poricidal and pseudoporicidal anther geometries suggest that pore size and shape also influence expulsion rates. This research provides a foundation for more comprehensive models that can incorporate additional factors such as cohesion, adhesion, and Coulomb forces, paving the way for deeper insights into the mechanics of buzz pollination and its variability across different anther types and vibration parameters.
嗡嗡授粉:使用离散元素法研究花粉喷出情况
嗡嗡授粉是指某些蜜蜂物种通过振动将花粉从花药(主要是多孔花药)中释放出来。尽管以前进行过实验和数值研究,但由于观测这些小尺度、不透明系统的挑战,花粉在振动花药内动态的复杂性仍然难以捉摸。本研究采用离散元素法(DEM)模拟振动花药中的花粉排出过程。通过探索各种频率和位移振幅,观察到在平移振动下,花药壁的最大抽动与最初的花粉排出率之间存在相关性。这项研究强调,虽然振动强度的增加会促进花粉的释放,但强度越大,增加的速度越慢。我们的研究结果还揭示了花粉与花粉之间相互作用的重要作用,这种作用占总碰撞次数的三分之一以上。多孔性花药和假多孔性花药几何形状的比较表明,孔的大小和形状也会影响驱逐率。这项研究为建立更全面的模型奠定了基础,这些模型可纳入内聚力、粘着力和库仑力等其他因素,为深入了解嗡嗡授粉的力学原理及其在不同花药类型和振动参数之间的可变性铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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