TY - JOUR
T1 - Bioinspired Ultrafast Underwater Grippers
AU - Zang, Jingyuan
AU - Zhao, Dong
AU - Zhao, Jian
AU - Wan, Chao
N1 - Publisher Copyright:
© Jilin University 2026.
PY - 2026
Y1 - 2026
N2 - Waterwheel plant Aldrovanda vesiculosa is found to achieve trap closure in 20–100 ms underwater, which is ten times faster than that of the terrestrial plant Venus flytrap. Although a lot of bioinspired underwater grippers have been developed for rapid actuation, these devices are still limited by their closure responses (typically > 180 ms), which is considerably slower than that of the aquatic plant. Herein we proposed and demonstrated a new mechanism for Aldrovanda’s rapid closure through morphological observation, theoretical modeling, and numerical simulation. Inspired by this mechanism, we presented a centimeter-scale biomimetic underwater gripper, which achieves fast underwater closure in 70 ms—approaching the plant’s natural speed. A buckling dynamics model was additionally proposed for the high-precision prediction and control of the gripper’s core actuation. This new design principle would contribute to developing high-performance rapid underwater actuation systems.
AB - Waterwheel plant Aldrovanda vesiculosa is found to achieve trap closure in 20–100 ms underwater, which is ten times faster than that of the terrestrial plant Venus flytrap. Although a lot of bioinspired underwater grippers have been developed for rapid actuation, these devices are still limited by their closure responses (typically > 180 ms), which is considerably slower than that of the aquatic plant. Herein we proposed and demonstrated a new mechanism for Aldrovanda’s rapid closure through morphological observation, theoretical modeling, and numerical simulation. Inspired by this mechanism, we presented a centimeter-scale biomimetic underwater gripper, which achieves fast underwater closure in 70 ms—approaching the plant’s natural speed. A buckling dynamics model was additionally proposed for the high-precision prediction and control of the gripper’s core actuation. This new design principle would contribute to developing high-performance rapid underwater actuation systems.
KW - Aldrovanda vesiculosa
KW - Biomimetic gripper
KW - Bistable structure
KW - Rapid grasping
KW - Underwater operation
UR - https://www.scopus.com/pages/publications/105044491371
U2 - 10.1007/s42235-026-00959-x
DO - 10.1007/s42235-026-00959-x
M3 - Article
AN - SCOPUS:105044491371
SN - 1672-6529
JO - Journal of Bionic Engineering
JF - Journal of Bionic Engineering
ER -