International Journal of Occupational Safety and Ergonomics · 2012 · 13 citations · 32 references
Upright PostureNeuromuscular CoordinationMovement BiomechanicsUpper ExtremityMotor ControlSensorimotor RehabilitationKinesiologyApplied PhysiologyElbow DisordersPhysical MedicineHealth SciencesPhysical FitnessGrip Endurance TimeGrip EnduranceMusculoskeletal FunctionRehabilitationHand TherapyForearm RotationApplied NeuromechanicsExercise PhysiologyElectromyographyMvc GripMusculoskeletal InteractionHuman MovementAthletic TrainingMedicine
This experiment was designed to know the effect of upper limb postural deviations on grip strength and grip endurance time. A full factorial design of experiment, i.e., 3 (0°, 45°, 90° abduction angles of upper arm) × 3 (45°, 90°, 135° angles of elbow flexion) × 3 (0°, -60° prone, +60° supine angles of forearm rotation) was used to find the effect of 27 combinations of postures on maximum voluntary contraction (MVC) grip strength and grip endurance time. The results showed that none of the main factors were significant on MVC grip, although there was a change in MVC grip. Grip endurance time significantly decreased with an increase in upper arm abduction. Also, grip endurance significantly increased with the elbow flexion angle and decreased with forearm rotation from neutral. These data will help designers and engineers to improve the workplace and tools to reduce the risk of injuries.
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Muscles across the elbow joint: A biomechanical analysis
K. N. An, F C Hui, B.F. Morrey et al. · Journal of Biomechanics · 1981 · 614 citations
The effects of posture on forearm muscle loading during gripping
Jeremy P.M. Mogk, Peter J. Keir · Ergonomics · 2003 · 222 citations