Chirality-dependent flutter of Typha blades in wind

被引:0
|
作者
Zi-Long Zhao
Zong-Yuan Liu
Xi-Qiao Feng
机构
[1] AML,Department of Engineering Mechanics
[2] Institute of Biomechanics and Medical Engineering,undefined
[3] Tsinghua University,undefined
[4] Center for Nano and Micro Mechanics,undefined
[5] Tsinghua University,undefined
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Cattail or Typha, an emergent aquatic macrophyte widely distributed in lakes and other shallow water areas, has slender blades with a chiral morphology. The wind-resilient Typha blades can produce distinct hydraulic resistance for ecosystem functions. However, their stem may rupture and dislodge in excessive wind drag. In this paper, we combine fluid dynamics simulations and experimental measurements to investigate the aeroelastic behavior of Typha blades in wind. It is found that the chirality-dependent flutter, including wind-induced rotation and torsion, is a crucial strategy for Typha blades to accommodate wind forces. Flow visualization demonstrates that the twisting morphology of blades provides advantages over the flat one in the context of two integrated functions: improving wind resistance and mitigating vortex-induced vibration. The unusual dynamic responses and superior mechanical properties of Typha blades are closely related to their biological/ecosystem functions and macro/micro structures. This work decodes the physical mechanisms of chirality-dependent flutter in Typha blades and holds potential applications in vortex-induced vibration suppression and the design of, e.g., bioinspired flight vehicles.
引用
收藏
相关论文
共 50 条
  • [1] Chirality-dependent flutter of Typha blades in wind
    Zhao, Zi-Long
    Liu, Zong-Yuan
    Feng, Xi-Qiao
    SCIENTIFIC REPORTS, 2016, 6
  • [2] Chirality-Dependent Reprogramming of Macrophages
    Han, Jing
    Liu, Huihui
    Chen, Junyu
    Jia, Ke
    Sun, Jiameng
    Nie, Zongxiu
    ACS NANO, 2024, 18 (30) : 19597 - 19607
  • [3] Chirality-dependent resistivity in carbon nanotubes
    Suzuura, H
    Ando, T
    MOLECULAR CRYSTALS AND LIQUID CRYSTALS, 2000, 340 (340): : 731 - 736
  • [4] Chirality-dependent optical dipole potential
    Kazemi, Seyedeh Hamideh
    Mahmoudi, Mohammad
    PHYSICA SCRIPTA, 2020, 95 (03)
  • [5] Chirality-Dependent Reprogramming of Macrophages by Chiral Nanozymes
    Zhang, Yu
    Cui, Tingting
    Yang, Jie
    Huang, Ying
    Ren, Jinsong
    Qu, Xiaogang
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2023, 62 (34)
  • [6] New evidence for chirality-dependent growth of CNTs
    Sealy, Cordelia
    NANO TODAY, 2012, 7 (02) : 68 - 69
  • [7] Chirality-Dependent Hall Effect in Weyl Semimetals
    Yang, Shengyuan A.
    Pan, Hui
    Zhang, Fan
    PHYSICAL REVIEW LETTERS, 2015, 115 (15)
  • [8] Chirality-Dependent Friction of Bulk Molecular Solids
    Yang, Dian
    Cohen, Adam E.
    LANGMUIR, 2014, 30 (33) : 9972 - 9976
  • [9] Chirality-dependent roughness of magnetic domain walls
    Yu, Ji-Sung
    Kim, Dae-Yun
    Moon, Joon
    Lee, Seong-Hyub
    Chang, Jun-Young
    Kim, Duck-Ho
    Min, Byoung-Chul
    Choe, Sug-Bong
    APPLIED PHYSICS LETTERS, 2022, 121 (17)
  • [10] Chirality-Dependent Amino Acid Modulation of RNA Folding
    Nicholson, David A.
    Sengupta, Abhigyan
    Nesbitt, David J.
    JOURNAL OF PHYSICAL CHEMISTRY B, 2020, 124 (51): : 11561 - 11572