Muscle Fatigue and Fatigue-Related Biomechanical Changes During a Cyclic Lifting Task
暂无分享,去创建一个
U Della Croce | M Posch | P Bonato | U. Croce | P. Bonato | M. Posch | S. Roy | G. Ebenbichler | J. Kollmitzer | S H Roy | J Kollmitzer | Gerold R Ebenbichler | S Lehr | U. Della Croce | S. Roy | S. Lehr | Martin Posch
[1] W C Hutton,et al. Has the lumbar spine a margin of safety in forward bending? , 1986, Clinical biomechanics.
[2] P. Dolan,et al. Recent advances in lumbar spinal mechanics and their clinical significance. , 1995, Clinical biomechanics.
[3] Carlo J. De Luca,et al. The Use of Surface Electromyography in Biomechanics , 1997 .
[4] C Frigo,et al. Three-dimensional model for studying the dynamic loads on the spine during lifting. , 1990, Clinical biomechanics.
[5] M Solomonow,et al. The Ligamento‐Muscular Stabilizing System of the Spine , 1998, Spine.
[6] R. W. Norman,et al. Quantification of erector spinae muscle fatigue during prolonged, dynamic lifting tasks , 2004, European Journal of Applied Physiology and Occupational Physiology.
[7] C J De Luca,et al. Rank‐ordered regulation of motor units , 1996, Muscle & nerve.
[8] Paolo Bonato,et al. Comparison of time-frequency-based techniques for estimating instantaneous frequency parameters of nonstationary processes , 1999, Optics & Photonics.
[9] G. Borg. Psychophysical scaling with applications in physical work and the perception of exertion. , 1990, Scandinavian journal of work, environment & health.
[10] C J De Luca,et al. Fatigue, recovery, and low back pain in varsity rowers. , 1980, Medicine and science in sports and exercise.
[11] L. Oddsson,et al. Sensory-motor control of the lower back: implications for rehabilitation. , 2001, Medicine and science in sports and exercise.
[12] Leon Cohen,et al. Positive time-frequency distribution functions , 1985, IEEE Trans. Acoust. Speech Signal Process..
[13] M Knaflitz,et al. Time-frequency methods applied to muscle fatigue assessment during dynamic contractions. , 1999, Journal of electromyography and kinesiology : official journal of the International Society of Electrophysiological Kinesiology.
[14] Serge H. Roy,et al. Modeling of surface myoelectric signals. II. Model-based signal interpretation , 1999, IEEE Transactions on Biomedical Engineering.
[15] C. D. De Luca,et al. Effects of muscle fiber type and size on EMG median frequency and conduction velocity. , 1995, Journal of applied physiology.
[16] J R Potvin,et al. Trunk Muscle Co‐contraction Increases During Fatiguing, Isometric, Lateral Bend Exertions: Possible Implications for Spine Stability , 1998, Spine.
[17] Paolo Bonato,et al. Time-frequency parameters of the surface myoelectric signal for assessing muscle fatigue during cyclic dynamic contractions , 2001, IEEE Transactions on Biomedical Engineering.
[18] P J Sparto,et al. Estimation of Trunk Muscle Forces and Spinal Loads During Fatiguing Repetitive Trunk Exertions , 1998, Spine.
[19] R. Merletti,et al. Modeling of surface myoelectric signals--Part II: Model-based signal interpretation. , 1999, IEEE transactions on bio-medical engineering.
[20] Bruce Abernethy,et al. Toward a Quantitative Definition of Manual Lifting Postures , 1997, Hum. Factors.
[21] M. Panjabi. The stabilizing system of the spine. Part II. Neutral zone and instability hypothesis. , 1992, Journal of spinal disorders.
[22] M. Knaflitz,et al. Analysis of myoelectric signals recorded during dynamic contractions , 1996 .
[23] K. Harms-Ringdahl,et al. Ratings of Perceived Thigh and Back Exertion in Forest Workers During Repetitive Lifting Using Squat and Stoop Techniques , 1994, Spine.
[24] Les E. Atlas,et al. Construction of positive time-frequency distributions , 1994, IEEE Trans. Signal Process..
[25] D G Disler,et al. Dynamic Evaluation of Exercising Leg Muscle in Healthy Subjects with Echo Planar MR Imaging: Work Rate and Total Work Determine Rate of T2 Change , 1995, Journal of magnetic resonance imaging : JMRI.
[26] O. D. Schipplein,et al. The Effects of Quadriceps Fatigue on the Technique of Lifting , 1993, Spine.
[27] M. Panjabi,et al. The Intersegmental and Multisegmental Muscles of the Lumbar Spine: A Biomechanical Model Comparing Lateral Stabilizing Potential , 1991, Spine.
[28] Paolo Bonato,et al. Reliability of EMG time-frequency measures of fatigue during repetitive lifting. , 2002, Medicine and science in sports and exercise.
[29] R W Norman,et al. Lumbar spine loads during the lifting of extremely heavy weights. , 1991, Medicine and science in sports and exercise.
[30] P. Dolan,et al. Repetitive lifting tasks fatigue the back muscles and increase the bending moment acting on the lumbar spine. , 1998, Journal of biomechanics.
[31] J. Kelsey,et al. An epidemiologic study of lifting and twisting on the job and risk for acute prolapsed lumbar intervertebral disc , 1984, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[32] M. Adams,et al. Can the Lumbar Spine Be Crushed in Heavy Lifting? , 1982, Spine.
[33] C. D. De Luca. Use of the surface EMG signal for performance evaluation of back muscles , 1993, Muscle & nerve.
[34] P J Sparto,et al. Wavelet analysis of electromyography for back muscle fatigue detection during isokinetic constant-torque exertions. , 1999, Spine.
[35] S. Simon,et al. The Effect of Fatigue on Multijoint Kinematics and Load Sharing During a Repetitive Lifting Test , 1997, Spine.
[36] Carlo J. De Luca,et al. Use of the surface EMG signal for performance evaluation of back muscles , 1993 .
[37] Jun Yu,et al. Time-frequency analysis of myoelectric signals during dynamic contractions: a comparative study , 2000, IEEE Transactions on Biomedical Engineering.
[38] M. Adams,et al. Bending and compressive stresses acting on the lumbar spine during lifting activities. , 1994, Journal of biomechanics.
[39] J. Cholewicki,et al. Mechanical stability of the in vivo lumbar spine: implications for injury and chronic low back pain. , 1996, Clinical biomechanics.
[40] W S Marras,et al. Biomechanical risk factors for occupationally related low back disorders. , 1995, Ergonomics.
[41] M Solomonow,et al. Biomechanics of increased exposure to lumbar injury caused by cyclic loading: Part 1. Loss of reflexive muscular stabilization. , 1999, Spine.
[42] M. Panjabi,et al. Spinal Stability and Intersegmental Muscle Forces: A Biomechanical Model , 1989, Spine.
[43] M. Panjabi. The stabilizing system of the spine. Part I. Function, dysfunction, adaptation, and enhancement. , 1992, Journal of spinal disorders.
[44] M. Knaflitz,et al. EMG assessment of back muscle function during cyclical lifting. , 1998, Journal of electromyography and kinesiology : official journal of the International Society of Electrophysiological Kinesiology.
[45] P M King,et al. A critical review of functional capacity evaluations. , 1998, Physical therapy.
[46] Thomas S. Buchanan,et al. BIOMECHANICS OF HUMAN MOVEMENT , 2005 .
[47] Thomas R. Waters,et al. Applications manual for the revised NIOSH lifting equation , 1994 .
[48] S. McGill,et al. Intervertebral disc herniation: studies on a porcine model exposed to highly repetitive flexion/extension motion with compressive force. , 2001, Clinical biomechanics.
[49] N. Eie. Load capacity of the low back. , 1966, Journal of the Oslo city hospitals.
[50] K. Kerschan,et al. Effects of back extensor strength training versus balance training on postural control. , 2000, Medicine & Science in Sports & Exercise.
[51] C J De Luca,et al. pH-induced effects on median frequency and conduction velocity of the myoelectric signal. , 1991, Journal of applied physiology.
[52] S. Bouisset,et al. Biomechanical study of the programming of anticipatory postural adjustments associated with voluntary movement. , 1987, Journal of biomechanics.
[53] U. della Croce,et al. Changes in the surface EMG signal and the biomechanics of motion during a repetitive lifting task , 2002, IEEE Transactions on Neural Systems and Rehabilitation Engineering.