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通过灵活的纤毛翅膀实现类似多米诺骨牌的空气凤梨水分运输。

Domino-like water transport on Tillandsia through flexible trichome wings.

机构信息

Department of Mechanical Engineering, Center of Biofluid and Biomimic Research, Pohang University of Science and Technology (POSTECH), 77 Cheongam-ro, Nam-gu, Pohang-si, Gyeongsangbuk-do, 37673, Korea.

Department of Integrative Biosciences & Biotechnology, Center of Biofluid and Biomimic Research, Pohang University of Science and Technology (POSTECH), 77 Cheongam-ro, Nam-gu, Pohang-si, Gyeongsangbuk-do, 37673, Korea.

出版信息

New Phytol. 2021 Sep;231(5):1906-1922. doi: 10.1111/nph.17336. Epub 2021 Apr 16.

Abstract

Tillandsia usneoides in epiphytic bromeliads takes up water through absorptive trichomes on the shoot surface under extreme environmental conditions. Although previous studies revealed the way by which T. usneoides absorbs water and prevents water loss, its water transport remains unclear. We characterized structures of trichome wings of T. usneoides. Wing length-to-thickness ratio of 136 and trichome interval (d)-to-wing length (l) ratio (d/l) smaller than 1 caused the water film to flatten the wings sequentially, resulting in domino-like water transport. A hinge-like linkage between wing and outer ring cells and the wing size longer than the elastocapillary length (L ) brought about this unique reconfiguration, which is the flattening and recovery of wings. Tillandsia usneoides transported water rapidly on the surface as the water film propagated on the exterior trichomes with flexible wings and the transport distance at the macroscopic scale grew as t with x = 0.68 ± 0.04, unlike the conventional scaling of t . Empirical and theoretical investigations proved our assumption that external water transport with the domino-like effect predominated over internal vascular transport. Biomimetic trichome wings simulated the domino-like water transport, highlighting the important role of flexible wing arrays.

摘要

厚鳞柯在极端环境条件下,通过茎表面的吸收性刚毛从附生的凤梨科植物中吸收水分。虽然先前的研究揭示了 T. usneoides 吸收水分和防止水分流失的方式,但它的水分运输仍然不清楚。我们描述了 T. usneoides 刚毛翅的结构。136 的翅长-厚比和小于 1 的刚毛间距 (d)-翅长 (l) 比 (d/l) 导致水膜依次使翅变平,从而产生类似多米诺骨牌的水传输。翅和外环细胞之间的铰链状连接以及比弹性毛细长度 (L) 长的翅尺寸导致了这种独特的重新配置,即翅的变平和恢复。T. usneoides 在外层刚毛上快速运输水,因为水膜在柔性翅上传播,并且在宏观尺度上的运输距离随着 t 的增加而以 x = 0.68 ± 0.04 的速度增长,与传统的 t 比例不同。实证和理论研究证明了我们的假设,即具有多米诺骨牌效应的外部水传输优先于内部血管传输。仿生刚毛翅模拟了类似多米诺骨牌的水传输,突出了柔性翅阵列的重要作用。

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