de Kater Esther P, Sakes Aimée, Bloemberg Jette, Jager David J, Breedveld Paul
Department of BioMechanical Engineering, Bio-Inspired Technology Group, Faculty of Mechanical, Maritime, and Materials Engineering, Delft University of Technology, Delft, Netherlands.
Department of Electronic and Mechanical Support Division, Faculty of Electrical Engineering, Mathematics and Computer Science, Delft University of Technology, Delft, Netherlands.
Front Bioeng Biotechnol. 2021 Nov 9;9:782037. doi: 10.3389/fbioe.2021.782037. eCollection 2021.
Tissue transport is a challenge during Minimally Invasive Surgery (MIS) with the current suction-based instruments as the increasing length and miniaturisation of the outer diameter requires a higher pressure. Inspired by the wasp ovipositor, a slender and bendable organ through which eggs can be transported, a flexible transport mechanism for tissue was developed that does not require a pressure gradient. The flexible shaft of the mechanism consists of ring magnets and cables that can translate in a similar manner as the valves in the wasp ovipositor. The designed transport mechanism was able to transport 10wt% gelatine tissue phantoms with the shaft in straight and curved positions and in vertical orientation against gravity. The transport rate can be increased by increasing the rotational velocity of the cam. A rotational velocity of 25 RPM resulted in a transport rate of 0.8 mm/s and increasing the rotation velocity of the cam to 80 RPM increased the transport rate to 2.3 mm/s though the stroke efficiency decreased by increasing the rotational velocity of the cam. The transport performance of the flexible transport mechanism is promising. This means of transportation could in the future be an alternative for tissue transport during MIS.
在微创手术(MIS)中,使用当前基于吸力的器械进行组织输送是一项挑战,因为外径的不断增加和小型化需要更高的压力。受黄蜂产卵器的启发,黄蜂产卵器是一种细长且可弯曲的器官,通过它可以输送卵,开发了一种不需要压力梯度的组织柔性输送机制。该机制的柔性轴由环形磁铁和电缆组成,它们可以以与黄蜂产卵器中的瓣膜类似的方式平移。所设计的输送机制能够在轴处于直线和弯曲位置以及垂直方向对抗重力的情况下输送10wt%的明胶组织模型。通过提高凸轮的旋转速度可以提高输送速率。25转/分钟的旋转速度导致输送速率为0.8毫米/秒,将凸轮的旋转速度提高到80转/分钟,输送速率提高到2.3毫米/秒,不过通过提高凸轮的旋转速度,行程效率会降低。柔性输送机制的输送性能很有前景。这种输送方式未来可能成为微创手术中组织输送的一种替代方法。