Active Trunk Stiffness During Voluntary Isometric Flexion and Extension Exertions
- 1 February 2007
- journal article
- research article
- Published by SAGE Publications in Human Factors: The Journal of the Human Factors and Ergonomics Society
- Vol. 49 (1) , 100-109
- https://doi.org/10.1518/001872007779597993
Abstract
Objective: Compare muscle activity and trunk stiffness during isometric trunk flexion and extension exertions. Background: Elastic stiffness of the torso musculature is considered the primary stabilizing mechanism of the spine. Therefore, stiffness of the trunk during voluntary exertions provides insight into the stabilizing control of pushing and pulling tasks. Methods: Twelve participants maintained an upright posture against external flexion and extension loads applied to the trunk. Trunk stiffness, damping, and mass were determined from the dynamic relation between pseudorandom force disturbances and subsequent small-amplitude trunk movements recorded during the voluntary exertions. Muscle activity was recorded from rectus abdominus, external oblique, lumbar paraspinal, and internal oblique muscle groups. Results: Normalized electromyographic activity indicated greater antagonistic muscle recruitment during flexion exertions than during extension. Trunk stiffness was significantly greater during flexion exertions than during extension exertions despite similar levels of applied force. Trunk stiffness increased with exertion effort. Conclusion: Theoretical and empirical analyses reveal that greater antagonistic cocontraction is required to maintain spinal stability during trunk flexion exertions than during extension exertions. Measured differences in active trunk stiffness were attributed to antagonistic activity during flexion exertions with possible contributions from spinal kinematics and muscle lines of action. Application: When compared with trunk extension exertions, trunk flexion exertions such as pushing tasks require unique neuromuscular control that is not simply explained by differences in exertion direction. Biomechanical analyses of flexion tasks must consider the stabilizing muscle recruitment patterns when evaluating spinal compression and shear loads.Keywords
This publication has 40 references indexed in Scilit:
- Active trunk stiffness increases with co-contractionPublished by Elsevier ,2005
- Active stiffness of the ankle in response to inertial and elastic loadsJournal of Electromyography and Kinesiology, 2004
- Pushing and pulling in relation to musculoskeletal disorders: a review of risk factorsErgonomics, 1998
- An EMG-assisted model of trunk loading during free-dynamic liftingJournal of Biomechanics, 1995
- Mechanical loading on the low back in three methods of refuse collectingErgonomics, 1995
- Passive tissues help the back muscles to generate extensor moments during liftingJournal of Biomechanics, 1994
- Trunk muscle cocontraction: The effects of moment direction and moment magnitudeJournal of Orthopaedic Research, 1992
- Validation of a biodynamic model of pushing and pullingJournal of Biomechanics, 1991
- Kinetic Potential of the Lumbar Trunk Musculature About Three Orthogonal Orthopaedic Axes in Extreme PosturesSpine, 1991
- 1986 Volvo Award in Biomechanics: Partitioning of the L4 - L5 Dynamic Moment into Disc, Ligamentous, and Muscular Components During LiftingSpine, 1986