Chen Qianyi, Schott Dingena, Jovanova Jovana
Faculty of Mechanical Engineering, Delft University of Technology, Delft, 2628 CD, The Netherlands.
Sci Rep. 2024 Oct 30;14(1):26148. doi: 10.1038/s41598-024-74379-4.
Soft robotics has significant interest within the industrial applications due to its advantages in flexibility and adaptability. Nevertheless, its potential is challenged by low stiffness and limited deformability, particularly in large-scale application scenarios such as underwater and offshore engineering. The integration of smart materials and morphing structures presents a promising avenue for enhancing the capabilities of soft robotic systems, especially in large deformation and variations in stiffness. In this study, we propose a multiple smart materials based mechanically intelligent structure devised through a model-based design framework. Specifically, the intelligent structure incorporates smart hydrogel and shape memory polymer (SMP). Employing the finite element method (FEM), we simulated the complex interactions among smart material to analyze the performance characteristics of the intelligent structure. The results demonstrate that, utilizing smart hydrogel and shape memory polymer (SMP) can effectively attain large deformation and exhibit variable stiffness due to the shape memory effect. Besides, the shape-morphing structures exhibit customized behaviours including bending, curling, and elongation, all while reducing reliance on external power sources. In conclusion, utilizing multiple smart materials within the model-based design framework offers an efficient approach for developing mechanically intelligent structure capable of complex deformations and variable stiffness, thereby providing support for underwater or offshore engineering applications.
软机器人技术因其在灵活性和适应性方面的优势而在工业应用中备受关注。然而,其潜力受到低刚度和有限变形能力的挑战,特别是在水下和海洋工程等大规模应用场景中。智能材料与变形结构的结合为增强软机器人系统的能力提供了一条有前景的途径,尤其是在大变形和刚度变化方面。在本研究中,我们提出了一种基于多种智能材料的机械智能结构,该结构通过基于模型的设计框架设计而成。具体而言,该智能结构包含智能水凝胶和形状记忆聚合物(SMP)。我们采用有限元方法(FEM)模拟了智能材料之间的复杂相互作用,以分析智能结构的性能特征。结果表明,利用智能水凝胶和形状记忆聚合物(SMP)由于形状记忆效应能够有效地实现大变形并呈现可变刚度。此外,形状变形结构表现出定制行为,包括弯曲、卷曲和伸长,同时减少了对外部电源的依赖。总之,在基于模型的设计框架内使用多种智能材料为开发能够进行复杂变形和可变刚度的机械智能结构提供了一种有效方法,从而为水下或海洋工程应用提供支持。