Octopus-Inspired Biomimetic Annular Sealing Grooves: Design and Performance Optimization Under Extreme Conditions.

IF 3.9 3区 医学 Q1 ENGINEERING, MULTIDISCIPLINARY
Zhipeng Pan, Shijun Xu, Xiang Guan, Zhihong Wang, Zhenghai Qi, Xiangrui Ye, Jianyang Dong, Yongming Yao, Zhengzhi Mu
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引用次数: 0

Abstract

This study introduces an innovative annular sealing groove design inspired by the hierarchical structure of octopus suckers, addressing the limitations of conventional seals under extreme conditions in aerospace engineering. Using finite element analysis, eight bionic configurations with varying groove parameters (width, depth, number) were systematically evaluated under cryogenic (-196.25 °C) and high-pressure (2 MPa) scenarios. Results show that the optimized bionic6 configuration (seven grooves, 0.4 mm width, 0.4 mm depth) achieved a 21.71% improvement in average von Mises stress compared to the original design, demonstrating enhanced leakage resistance. Parameter interaction analysis revealed groove number as the most significant factor affecting performance, followed by width, while depth showed minimal influence. The hierarchical groove architecture effectively mimicked the multi-level sealing mechanism of octopus suckers, reducing leakage paths and improving adaptability to irregular surfaces. This work bridges biological inspiration and engineering application, providing a scalable solution for extreme environments. The identified optimal parameters lay a theoretical foundation for designing high-performance seals in aerospace, cryogenic storage, and advanced manufacturing.

章鱼仿生环形密封槽:极端条件下的设计和性能优化。
本研究以章鱼吸盘的分层结构为灵感,提出了一种创新的环形密封槽设计,解决了航空航天工程中传统密封在极端条件下的局限性。在低温(-196.25°C)和高压(2 MPa)条件下,采用有限元分析方法对8种不同凹槽参数(宽度、深度、数量)的仿生形态进行了系统评价。结果表明,优化后的仿生结构(7个凹槽,宽度0.4 mm,深度0.4 mm)比原始设计的平均von Mises应力提高了21.71%,并增强了抗泄漏能力。参数交互作用分析表明,槽数是影响性能最显著的因素,其次是宽度,深度影响最小。分层槽结构有效地模仿了章鱼吸盘的多级密封机制,减少了泄漏路径,提高了对不规则表面的适应性。这项工作连接了生物学灵感和工程应用,为极端环境提供了可扩展的解决方案。确定的最优参数为设计航空航天、低温储存和先进制造领域的高性能密封奠定了理论基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biomimetics
Biomimetics Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
3.50
自引率
11.10%
发文量
189
审稿时长
11 weeks
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