磁化
小型化
材料科学
计算机科学
平面的
磁场
声学
刚度
解耦(概率)
折叠(DSP实现)
磁力显微镜
扭矩
稳健性(进化)
磁铁
工作(物理)
铁磁性
触觉传感器
微磁学
机械工程
纳米技术
悬臂梁
生物医学工程
鉴别器
触觉技术
显微镜
作者
Yujie Huang,Huangzhe Dai,Chengqian Zhang,Daofan Tang,Xinxin Zhang,Haonan Sun,Annan Ding,Xuebin Ni,Yizhi Zhang,Chengfeng Pan,Peng Zhao
标识
DOI:10.1002/advs.202524321
摘要
ABSTRACT Magnetic tactile sensor with centripetally magnetization designs is capable of efficient 3D force decoupling sensing, which is essential for advancing robotic dexterity. Nevertheless, the miniaturization of sensors remains a challenge, primarily due to the complexities associated with precisely fabricating such planar magnetic structures. Here, we present a laser‐assisted folding and magnetization (LAFM) method to create centripetally magnetized films. Laser‐etched grooves enable controlled folding, achieving accurate magnetization alignment in films as small as 5 × 5 mm 2 , which are verified by root mean square errors (RMSEs) of less than 5 µT between the experimental and theoretical magnetic field values. This breakthrough enabled the compact 3D force sensor featuring high force resolution (tangential 3 mN, normal 9 mN), rapid response (34 ms), and long‐term stability (>2500 cycles, <1% deviation). When installed on a mobile manipulator, the sensor enables adaptive grasping of delicate objects during obstacle traversal. Its functionality is further enhanced by deploying an array of 16 units on a dexterous hand, which supports non‐destructive stiffness recognition across six representative materials and stable manipulation of variable‐mass or irregular objects. This work establishes a robust pathway for miniaturized tactile sensors and embodied intelligence, especially in robotic perception.
科研通智能强力驱动
Strongly Powered by AbleSci AI