State Key Laboratory for Turbulence and Complex Systems, College of Engineering, Intelligent Biomimetic Design Lab, Peking University, Beijing, 100871, P. R. China.
Advanced Production Engineering, Engineering and Technology Institute Groningen, Faculty of Science and Engineering, University of Groningen, Groningen, 9747AG, The Netherlands.
Adv Sci (Weinh). 2022 Jun;9(17):e2104382. doi: 10.1002/advs.202104382. Epub 2022 Apr 7.
A soft gripper inspired by the glowing sucker octopus (Stauroteuthis syrtensis)' highly evolved grasping capability enabled by the umbrella-shaped dorsal and ventral membrane between each arm is presented here, comprising of a 3D-printed linkage mechanism used to actuate a modular mold silicone-casting soft suction disc to deform. The soft gripper grasp can lift objects using the suction generated by the pump in the soft disc. Moreover, the protruded funnel-shaped end of the deformed suctorial mouth can adapt to smooth and rough surfaces. Furthermore, when the gripper contacts the submerged target objects in a turbid environment, local suctorial mouth arrays on the suction disc are locked, causing the variable flow inside them, which can be detected as a tactile perception signal to the target objects instead of visual perception. Aided by the 3D-printed linkage mechanism, the soft gripper can grasp objects of different shapes and dimensions, including flat objects, objects beyond the grasping range, irregular objects, scattered objects, and a moving turtle. The results report the soft gripper's versatility and demonstrate the vast application potentials of self-adaptive grasping and sensing in various environments, including but are not limited to underwater, which is always a key challenge of grasping technology.
受发光章鱼(Stauroteuthis syrtensis)高度进化的抓握能力启发,一种柔软的夹具采用了每个臂之间的伞状背膜和腹膜,包括一个 3D 打印的联动机构,用于驱动一个模块化的模具硅胶铸造软吸盘变形。软夹具通过软盘中的泵产生的吸力来抓取物体。此外,变形吸盘的突出漏斗形嘴端可以适应光滑和粗糙的表面。此外,当夹具在混浊环境中接触到水下目标物体时,吸盘上的局部吸盘阵列会被锁定,导致内部的可变流动,这可以作为触觉感知信号被检测到目标物体,而不是视觉感知。在 3D 打印联动机构的辅助下,软夹具可以抓取不同形状和尺寸的物体,包括平面物体、超出抓取范围的物体、不规则物体、散落物体和移动的海龟。结果报告了软夹具的多功能性,并展示了自适应抓取和传感在各种环境中的广泛应用潜力,包括但不限于水下,这一直是抓取技术的关键挑战。