Aix Marseille University, CNRS, ISM, Marseille, France.
Bioinspir Biomim. 2022 Nov 21;18(1). doi: 10.1088/1748-3190/ac9fb6.
Designing resilient actuators is a challenge for industry, in part because an index for resilience has yet to be established. In this work, several definitions of resilience are analysed and, on the basis of this, an index quantifying resilience for actuators is proposed. This index does indeed allow for the resilience computation of a wide range of manufactured and biological actuators to be compared. The two manufactured actuators chosen as iconic models are a hydraulic cylinder and a bio-inspired McKibben muscle, and these are shown not to be resilient by design. In addition, two biological actuators likely to be resilient were also analysed. The pulvinus resilience index shows that it is partly resilient depending on damage location. But the most promising is the skeletal muscle, which has been shown to be highly resilient. Finally, the bio-inspired roots of resilience are discussed: resilience may originate from multi-scale structural design.
设计具有弹性的执行器对工业界来说是一项挑战,部分原因是尚未建立弹性指标。在这项工作中,分析了几种弹性定义,并在此基础上提出了一个用于执行器的弹性量化指标。该指标确实可以对各种制造和生物执行器的弹性进行计算和比较。选择的两个具有代表性的制造执行器模型是液压缸和仿生 McKibben 肌肉,结果表明它们在设计上不具有弹性。此外,还分析了两个可能具有弹性的生物执行器。旋叶的弹性指标表明,它在一定程度上是有弹性的,具体取决于损伤位置。但最有希望的是骨骼肌,它表现出很高的弹性。最后,讨论了弹性的仿生根源:弹性可能源于多尺度结构设计。