Muscle response to pneumatic hand tool torque reaction forces
- 1 June 1989
- journal article
- research article
- Published by Taylor & Francis in Ergonomics
- Vol. 32 (6) , 655-673
- https://doi.org/10.1080/00140138908966140
Abstract
Surface electromyography was used for studying the effects of torque reaction force acting against the hand, on forearm muscle activity and grip force for five subjects operating right angle, air shut-off nutrunners. Four tools having increasing spindle torque were operated using short and long torque reaction times. Nutrunner spindle torque ranged between 30 Nm and 100 Nm. Short torque reaction time was considered 0·5 s while long torque reaction time was 2 s. Peak horizontal force was the greatest component of the reaction force acting against the hand and accounted for more than 97% of the peak resultant hand force. Peak hand force increased from 89 N for the smallest tool to 202 N for the largest tool. Forearm muscle rms EMG, scaled for grip force, indicated average flexor activity during the Torque-reaction phase was more than four times greater than the Pre-start and Post Shut-off phases, and two times greater than the Run-down phase. Flexor EMG activity during the Torque-reaction phase increased for increasing tool peak spindle torque. Average flexor rms EMG activity, scaled for grip force, during the Torque-reaction phase increased from 372 N for the 30 Nm nutrunner to 449 N for the 100 Nm nutrunner. Flexor rms EMG activity averaged during the Torque-reaction phase and scaled for grip force was 390N for long torque reaction times and increased to 440 N for short torque reaction times. Flexor rms EMG integrated over the torque reaction phase was 839 Ns for long torque reaction times and decreased to 312 Ns for short torque reaction times. The average latency between tool spindle torque onset and peak initial flexor rms EMG for long torque reaction times was 294 ms which decreased to 161 ms for short torque reaction times. The average latency between peak tool spindle torque, just prior to tool shut-off, and peak final rms EMG for long torque reaction times was 97 ms for flexors and 188 ms for extensors, which decreased for short torque reaction times to 47 ms for flexors and 116 ms for extensors. The results suggest that right angle nutrunner torque reaction forces can affect extrinsic hand muscles in the forearm, and hence grip exertions, by way of a reflex response. These effects may be controlled by designing hand tools that minimize torque reaction forces transmitted to the hand using mechanical advantages provided from increased handle lengths, torque reaction bars or torque absorbing suspension systems, or minimizing muscle responses to rapid torque build-up by reducing tool spindle rotation speed.Keywords
This publication has 14 references indexed in Scilit:
- Ergonomics and the effects of vibration in hand-intensive work.Scandinavian Journal of Work, Environment & Health, 1987
- Power hand tool vibration effects on grip exertionsErgonomics, 1987
- Loss of control biomechanics of the human arm-elbow systemJournal of Biomechanics, 1987
- Occupational factors and carpal tunnel syndromeAmerican Journal of Industrial Medicine, 1987
- Repetitive Trauma Disorders: Job Evaluation and DesignHuman Factors: The Journal of the Human Factors and Ergonomics Society, 1986
- A Quantitative Evaluation of the Frequency-Response Characteristics of Active Human Skeletal Muscle In VivoJournal of Biomechanical Engineering, 1979
- A methodology for documenting hand positions and forces during manual workJournal of Biomechanics, 1979
- Oscillation of the human ankle joint in response to applied sinusoidal torque on the footThe Journal of Physiology, 1977
- Frequency-response characteristics of the tonic stretch reflexes of biceps brachii muscle in intact manMedical & Biological Engineering & Computing, 1972
- The response of de‐efferented muscle spindle receptors to stretching at different velocitiesThe Journal of Physiology, 1963