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A FEM-Experimental Approach for the Development of a Conceptual Linear Actuator Based on Tendrils Free Coiling

机译:基于Tendril自由绕线的概念线性执行器开发的有限元实验方法

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摘要

Within the vastness of the plant species, certain living systems show tendril structures whose motion is of particular interest for biomimetic engineers. Tendrils sense and coil around suitable grips, and by shortening in length, they erect the remaining plant body. To achieve contraction, tendrils rotate along their main axis and shift from a linear to a double-spring geometry. This phenomenon is denoted as the free-coiling phase. In this work, with the aim of understanding the fundamentals of the mechanics behind the free coiling, a reverse-engineering approach based on the finite element method was firstly applied. The model consisted of an elongated cylinder with suitable material properties, boundary, and loading conditions, in order to reproduce the kinematics of the tendril. The simulation succeeded in mimicking coiling faithfully and was therefore used to validate a tentative linear actuator model based on the plant's working principle. More in detail, exploiting shape memory alloy materials to obtain large reversible deformations, the main tendril features were implemented into a nickel-titanium spring-based testing model. The results of the experimental tests confirmed the feasibility of the idea in terms of both functioning principles and actual performance. It can be concluded that the final set-up can be used as a base for a prototype design of a new kind of a linear actuator.
机译:在广阔的植物物种中,某些生物系统显示出卷须结构,其运动是仿生工程师特别感兴趣的。卷须感测并缠绕适当的握柄,并通过缩短长度来竖立剩余的植物体。为了实现收缩,卷须沿着其主轴旋转,并从线性几何变为双弹簧几何。这种现象称为自由卷曲阶段。在这项工作中,为了理解自由盘绕背后的力学原理,首先采用了基于有限元方法的逆向工程方法。该模型由具有合适材料特性,边界和载荷条件的细长圆柱体组成,以重现卷须的运动学特征。该仿真成功地忠实地模拟了线圈,因此被用于根据工厂的工作原理验证暂定线性执行器模型。更详细地讲,通过利用形状记忆合金材料获得大的可逆变形,将主要卷须特征实现到基于镍钛弹簧的测试模型中。实验测试的结果从功能原理和实际性能两方面都证实了该想法的可行性。可以得出结论,最终的设置可以用作新型线性执行器原型设计的基础。

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