TY - JOUR
T1 - Design and Performance Verification of Bionic Octopus Sucker Sealing Structure for Solenoid Valves
AU - Wang, Zhihong
AU - Zhang, Xinbin
AU - Mu, Zhengzhi
AU - Guan, Xiang
AU - Liu, Junchi
AU - Pan, Zhipeng
AU - Wang, Junchong
AU - Ye, Xiangrui
AU - Qi, Zhenghai
AU - Dong, Jianyang
AU - Yao, Yongming
AU - Zhou, Liucheng
N1 - Publisher Copyright:
© 2025 by the authors.
PY - 2025/7
Y1 - 2025/7
N2 - Aiming at the problem of the insufficient sealing performance of the solenoid valve poppet under a high working load and inspired by the multilevel groove structure of the octopus sucker and the adaptive sealing mechanism, a bionics-based design scheme for an annular groove sealing structure is proposed. By extracting the microscopic groove morphology features of the octopus sucker, we designed a multilayer rectangular cross-section groove structure at the annular interface, combined the designed structure with the Abaqus cohesive model to simulate the interface stripping behavior, and verified its mechanical properties by the pull-out test. The results show that the bionic groove structure significantly improves the bearing capacity of the sealing ring by enhancing the interface contact stress distribution and delaying the crack extension. Under the same working condition, the bionic structure increases the pull-out force by 46.1% compared with the traditional planar sealing ring. This study provides bionic theoretical support and an engineering practice reference for the design of sealing structures in complex working conditions, such as the solenoid valve poppet.
AB - Aiming at the problem of the insufficient sealing performance of the solenoid valve poppet under a high working load and inspired by the multilevel groove structure of the octopus sucker and the adaptive sealing mechanism, a bionics-based design scheme for an annular groove sealing structure is proposed. By extracting the microscopic groove morphology features of the octopus sucker, we designed a multilayer rectangular cross-section groove structure at the annular interface, combined the designed structure with the Abaqus cohesive model to simulate the interface stripping behavior, and verified its mechanical properties by the pull-out test. The results show that the bionic groove structure significantly improves the bearing capacity of the sealing ring by enhancing the interface contact stress distribution and delaying the crack extension. Under the same working condition, the bionic structure increases the pull-out force by 46.1% compared with the traditional planar sealing ring. This study provides bionic theoretical support and an engineering practice reference for the design of sealing structures in complex working conditions, such as the solenoid valve poppet.
KW - annular groove structure
KW - bionic sealing technology
KW - octopus sucker morphology
KW - pull-out test
KW - solenoid valve poppet
UR - https://www.scopus.com/pages/publications/105011416649
U2 - 10.3390/biomimetics10070425
DO - 10.3390/biomimetics10070425
M3 - 文章
AN - SCOPUS:105011416649
SN - 2313-7673
VL - 10
JO - Biomimetics
JF - Biomimetics
IS - 7
M1 - 425
ER -