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基于 Hypostomus plecostomus 的软体吸盘吸附光滑组织:稳定的瓣下腔和刚度梯度材料提供了优异的吸附性能。

Hypostomus plecostomus-inspired soft sucker to adsorb slippery tissues: a stabilizing post-valvular cavity and stiffness gradient materials provide excellent adsorption performance.

机构信息

Key Laboratory of the Ministry of Education for Optoelectronic Measurement Technology and Instrument, Beijing Information Science & Technology University, Beijing 100192, People's Republic of China.

Beijing Laboratory of Optical Fiber Sensing and System, Beijing Information Science & Technology University, Beijing 100016, People's Republic of China.

出版信息

Bioinspir Biomim. 2024 Aug 27;19(5). doi: 10.1088/1748-3190/ad6f88.

Abstract

The hard suckers commonly used in surgical operations often cause adsorption extrusion damage to the biological tissue. To tackle this problem, from the perspective of bionics, through in-depth observation and research on the special sucker adsorption process and adsorption mechanism of hypostomus plecostomus (HP), this paper proposes a bionic soft hypostomus plecostomus sucker (BSHPS) with a variable stiffness gradient structure with a good adsorption performance on soft moist irregular biological tissues. The BSHPS comprises a lip disc, a pre-valvular cavity, and a post-valvular cavity. Through the volume changes of the pre- and post-valvular cavities, a pressure difference is generated between the inside and outside of the sucker, enabling the lip disc to remain sealed. The experiments were carried out by an automatic tensile force measurement system equipped with a vacuum pump, and the results showed that in slippery environment, the adsorption performance of the BSHPS is improved by a maximum of 61.9% compared to that in dry environment. On a biological tissue surface, the adsorption force is as high as 13.7765 N. The most important advantage of the proposed BSHPS is that it can be firmly adsorbed the surface of soft moist irregular biological tissues, effectively slowing down or avoiding adsorption extrusion damage to the biological tissue. Therefore, the BSHPS is expected to have good application prospects in modern surgical medicine.

摘要

在外科手术中常用的硬吸盘经常会对生物组织造成吸附挤压损伤。针对这一问题,本文从仿生学的角度出发,通过对 Hypostomus plecostomus(HP)吸盘特殊的吸附过程和吸附机制进行深入观察和研究,提出了一种具有变刚度梯度结构的仿生软 Hypostomus plecostomus 吸盘(BSHPS),该吸盘对柔软湿润的不规则生物组织具有良好的吸附性能。BSHPS 由唇盘、前瓣膜腔和后瓣膜腔组成。通过前、后瓣膜腔的体积变化,在吸盘内外产生压力差,使唇盘保持密封。实验通过配备真空泵的自动拉力测量系统进行,结果表明,在湿滑环境下,BSHPS 的吸附性能比干燥环境提高了 61.9%。在生物组织表面,吸附力高达 13.7765N。所提出的 BSHPS 的最重要优势是能够牢固地吸附在柔软湿润的不规则生物组织表面,有效减缓或避免对生物组织的吸附挤压损伤。因此,BSHPS 有望在现代外科学中具有良好的应用前景。

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