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首页> 外文期刊>Journal of the Royal Society Interface >Turbulence-induced resonance vibrations cause pollen release in wind-pollinated Plantago lonceolata L. (Plantaginaceae)
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Turbulence-induced resonance vibrations cause pollen release in wind-pollinated Plantago lonceolata L. (Plantaginaceae)

机译:湍流引起的共振振动导致风铃授粉的车前草(Plantaginaceae)的花粉释放。

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In wind pollination, the release of pollen from anthers into airflows determines the quantity and timing of pollen available for pollination. Despite the ecological and evolutionary importance of pollen release, wind-stamen interactions are poorly understood, as are the specific forces that deliver pollen grains into airflows. We present empirical evidence that atmospheric turbulence acts directly on stamens in the cosmopolitan, wind-pollinated weed, Plantago Ianceolata, causing resonant vibrations that release episodic bursts of pollen grains. In laboratory experiments, we show that stamens have mechanical properties corresponding to theoretically predicted ranges for turbulence-driven resonant vibrations. The mechanical excitation of stamens at their characteristic resonance frequency caused them to resonate, shedding pollen vigorously. The characteristic natural frequency of the stamens increased over time with each shedding episode due to the reduction in anther mass, which increased the mechanical energy required to trigger subsequent episodes. Field observations of a natural population under turbulent wind conditions were consistent with these laboratory results and demonstrated that pollen is released from resonating stamens excited by small eddies whose turnover periods are similar to the characteristic resonance frequency measured in the laboratory. Turbulence-driven vibration of stamens at resonance may be a primary mechanism for pollen shedding in wind-pollinated angiosperms. The capacity to release pollen in wind can be viewed as a primary factor clistinguishing animal- from wind-pollinated plants, and selection on traits such as the damping ratio and flexural rigidity may be of consequence in evolutionary transitions between pollination systems.
机译:在风粉授粉中,花粉从花药中释放到气流中决定了可用于授粉的花粉的数量和时间。尽管花粉释放具有生态学和进化上的重要性,但人们对风-雄蕊之间的相互作用以及将花粉粒传递到气流中的特殊作用力知之甚少。我们提供的经验证据表明,大气湍流直接作用于大都会风化杂草车前草中的雄蕊上,引起共振振动,释放出花粉粒的间歇性爆发。在实验室实验中,我们显示出雄蕊的机械性能与湍流驱动的共振振动的理论预测范围相对应。雄蕊在其固有的共振频率下受到机械激发,引起共振,并剧烈释放花粉。由于花药质量的减少,每次脱落时,雄蕊的特征性自然频率随时间增加,这增加了触发后续发作所需的机械能。在湍急的风条件下对自然种群的野外观察与这些实验室结果一致,并表明花粉是从由小涡旋激发的共振雄蕊释放的,这些旋涡的周转周期与实验室测得的特征共振频率相似。雄蕊在共振时由湍流驱动的振动可能是风铃被子植物中花粉脱落的主要机制。在风中释放花粉的能力可以看作是从风中授粉的植物中区分动物的主要因素,选择诸如阻尼比和抗弯刚度等特性可能是授粉系统之间进化过渡的结果。

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