A Tactile Sensor Based on Magnetic Sensing: Design and Mechanism

Jing Li*, Hao Qin, Zhenzhen Song, Lutao Hou, Hongkai Li*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

1 Citation (Scopus)

Abstract

Tactile sensors act a crucial part in the field of artificial intelligence systems and the field of flexible electronics. Recently, conventional tactile sensors with pressure monitoring have been well developed, while the responsive mechanisms of the magnetic flexible materials for the tactile sensors remain unclear. Here, we introduce a magnetic tactile sensor (MTS) using the configuration of a giant magnetoresistance (GMR) sensor, a flexible magnetic film, and four connected columns that can be capable of detecting both shear force and normal pressure. The millimeter lever columns as the connection layer enable to deform under pressure and shear forces reliably and continuously. Combined magnetic with mechanical perspectives, two theoretical models are proposed to explain the deformation mechanisms of the connection layer under a magnetic field, which establish a correlation among mechanical deformation, the relative reluctance change, and shear force/pressure. The tactile sensor shows shear perception with a sensitivity of 0.2 N1 (0-0.05 N) and pressure monitoring with a sensitivity of 0.0087 kPa1 (0-5 kPa). Furthermore, the experiments testify to the application potential of the MTS in various fields such as manipulator and human posture detection.

Original languageEnglish
Article number1005509
Pages (from-to)1-9
Number of pages9
JournalIEEE Transactions on Instrumentation and Measurement
Volume73
DOIs
Publication statusPublished - 2024

Keywords

  • Magnetic
  • sensitivity
  • shear force
  • tactile sensor
  • theoretical model

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