A Wirelessly Powered 4-Channel Neurostimulator for Reconstructing Walking Trajectory

Sensors (Basel). 2022 Sep 22;22(19):7198. doi: 10.3390/s22197198.

Abstract

A wirelessly powered four-channel neurostimulator was developed for applying selective Functional Electrical Stimulation (FES) to four peripheral nerves to control the ankle and knee joints of a rat. The power of the neurostimulator was wirelessly supplied from a transmitter device, and the four nerves were connected to the receiver device, which controlled the ankle and knee joints in the rat. The receiver device had functions to detect the frequency of the transmitter signal from the transmitter coil. The stimulation site of the nerves was selected according to the frequency of the transmitter signal. The rat toe position was controlled by changing the angles of the ankle and knee joints. The joint angles were controlled by the stimulation current applied to each nerve independently. The stimulation currents were adjusted by the Proportional Integral Differential (PID) and feed-forward control method through a visual feedback control system, and the walking trajectory of a rat's hind leg was reconstructed. This study contributes to controlling the multiple joints of a leg and reconstructing functional motions such as walking using the robotic control technology.

Keywords: implantable device; neurostimulation; wireless powering.

MeSH terms

  • Animals
  • Ankle
  • Ankle Joint
  • Electric Stimulation Therapy* / methods
  • Knee Joint / physiology
  • Rats
  • Walking / physiology