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A Preliminary Study to Design and Evaluate Pneumatically Controlled Soft Robotic Actuators for a Repetitive Hand

Claire Rieger1, Jaydip Desai1

  • 1Department of Biomedical Engineering, Wichita State University, Wichita, KS 67260, USA.

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Summary

This study introduces a novel soft robotic glove with a steel layer to aid post-stroke hand recovery. The glove assists finger flexion and re-extension, showing promising results for patients with hand paresis.

Keywords:
microcontrollerpneumaticrange of motionrehabilitationroboticssoft actuatorsunity

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Area of Science:

  • Biomedical Engineering
  • Rehabilitation Robotics
  • Neuroscience

Background:

  • Stroke-induced cortical infarction frequently causes isolated hand paresis, limiting finger flexion and extension.
  • Current soft robotic glove designs exist, but a unique self-actuating therapy solution is needed.
  • Restoring hand function is critical for stroke survivors' independence and quality of life.

Purpose of the Study:

  • To propose and evaluate a novel soft robotic glove design for self-actuated hand therapy in post-stroke individuals.
  • To assess the glove's efficacy in assisting finger flexion and re-extension.
  • To investigate the impact of a resistive steel layer on glove performance.

Main Methods:

  • Development of a unique soft robotic glove incorporating a resistive flexible steel layer for self-actuation.
  • Pneumatic assisted flexion trials to measure finger extension range.
  • Passive assisted testing on 10 human participants to evaluate active finger flexion range and blocked tip force.

Main Results:

  • Consistently achieved average peak flexion of 75° or greater for each finger during pneumatic assisted flexion.
  • Participants achieved 80.75% (steel-lined) and 87.07% (unlined) of normal active finger flexion range during passive assisted testing.
  • The addition of the steel layer reduced blocked tip force by an average of 18.13% across all five fingers.

Conclusions:

  • The novel soft robotic glove demonstrates significant potential for assisting hand function recovery after stroke.
  • The design facilitates self-actuated therapy, enabling users to regain active finger flexion and extension.
  • Further human subject testing is warranted to validate the glove's therapeutic benefits for post-stroke hand impairments.