TY - JOUR
T1 - Liquid-Amplified Electrostatically Driven Octopus Sucker-Inspired Suction Cup
AU - Sun, Yu
AU - Tang, Lingjun
AU - Wang, Ling
AU - Guo, Qingkai
AU - Lv, Yuxin
AU - Yang, Laihao
N1 - Publisher Copyright:
© 2024 The Author(s). Advanced Intelligent Systems published by Wiley-VCH GmbH.
PY - 2025/1
Y1 - 2025/1
N2 - Adhesion and detachment technologies play a crucial role in various fields, including industrial robot handling, transfer printing, medical applications, and crawling robot locomotion. Traditional pneumatic suction cups rely on bulky and noisy vacuum sources and need for preloading while electrostatic adhesion-detachment devices generally cannot provide enough adhesion force. To address these shortcomings, a liquid-amplified electrostatically driven suction cup is proposed inspired by octopus's sucker, including a negative pressure chamber with a wrinkle-like membrane and a sealing ring. The negative pressure chamber generates the active adhesion force enhanced by the wrinkle-like membrane, increasing the adhesion strength tenfold compared to pure electrostatic adhesion. The suction cup proposed herein has a remarkable capacity to generate an adhesion force of 56.4 times its weight, without preloading. Additionally, it can adapt to different materials, not only the dry but also the oil-contaminated ones. This presented liquid-amplified electrostatically driven suction cup can offer enhanced adhesion performance for applications in challenging environments.
AB - Adhesion and detachment technologies play a crucial role in various fields, including industrial robot handling, transfer printing, medical applications, and crawling robot locomotion. Traditional pneumatic suction cups rely on bulky and noisy vacuum sources and need for preloading while electrostatic adhesion-detachment devices generally cannot provide enough adhesion force. To address these shortcomings, a liquid-amplified electrostatically driven suction cup is proposed inspired by octopus's sucker, including a negative pressure chamber with a wrinkle-like membrane and a sealing ring. The negative pressure chamber generates the active adhesion force enhanced by the wrinkle-like membrane, increasing the adhesion strength tenfold compared to pure electrostatic adhesion. The suction cup proposed herein has a remarkable capacity to generate an adhesion force of 56.4 times its weight, without preloading. Additionally, it can adapt to different materials, not only the dry but also the oil-contaminated ones. This presented liquid-amplified electrostatically driven suction cup can offer enhanced adhesion performance for applications in challenging environments.
KW - liquid-amplified electrostatically driven
KW - octopus-inspired
KW - suction cups
KW - wrinkle-like membrane
UR - https://www.scopus.com/pages/publications/85196171124
U2 - 10.1002/aisy.202400279
DO - 10.1002/aisy.202400279
M3 - 文章
AN - SCOPUS:85196171124
SN - 2640-4567
VL - 7
JO - Advanced Intelligent Systems
JF - Advanced Intelligent Systems
IS - 1
M1 - 2400279
ER -