Muscle fatigue in interrupted stimulation: Effect of partial recovery on force and EMG dynamics.
暂无分享,去创建一个
J Mizrahi | Z Susak | E. Isakov | J. Mizrahi | O. Levin | Z. Susak | O Levin | E Isakov | A. Aviram | A Aviram
[1] B. Bigland-ritchie. EMG and fatigue of human voluntary and stimulated contractions. , 2008, Ciba Foundation symposium.
[2] D N Levine,et al. Motor units in cat soleus muscle: physiological, histochemical and morphological characteristics , 1974, The Journal of physiology.
[3] B. Massie,et al. Dissociation of [H+] from fatigue in human muscle detected by high time resolution 31P‐NMR , 1993, Muscle & nerve.
[4] M W Weiner,et al. Slow force recovery after long-duration exercise: metabolic and activation factors in muscle fatigue. , 1993, Journal of applied physiology.
[5] Eli Isakov,et al. EMG as an indicator of fatigue in isometrically FES-activated paralyzed muscles , 1994 .
[6] G. Inbar,et al. Relation between electromyogram and force in fatigue. , 1985, Journal of applied physiology.
[7] M W Weiner,et al. Effects of fatiguing exercise on high‐energy phosphates, force, and EMG: Evidence for three phases of recovery , 1987, Muscle & nerve.
[8] R. Lieber. Comparison between animal and human studies of skeletal muscle adaptation to chronic stimulation. , 1988, Clinical orthopaedics and related research.
[9] R. Merletti,et al. Electrically evoked myoelectric signals. , 1992, Critical reviews in biomedical engineering.
[10] M. Weiner,et al. Influence of human muscle length on energy transduction studied by 31P-NMR. , 1992, Journal of applied physiology.
[11] C. J. Luca. Myoelectrical manifestations of localized muscular fatigue in humans. , 1984 .
[12] T. Moritani,et al. Electromechanical changes during electrically induced and maximal voluntary contractions: Electrophysiologic responses of different muscle fiber types during stimulated contractions , 1985, Experimental Neurology.
[13] K. Edman,et al. Changes in force and stiffness induced by fatigue and intracellular acidification in frog muscle fibres. , 1990, The Journal of physiology.
[14] R. D'ambrosia,et al. The EMG-Force Model of Electrically Stimulated Muscle: Dependence on Control Strategy and Predominant Fiber Composition , 1987, IEEE Transactions on Biomedical Engineering.
[15] Michael J. O'Donovan,et al. Motor unit organization of human medial gastrocnemius. , 1979, The Journal of physiology.
[16] R. Johansson,et al. Contractile speed and EMG changes during fatigue of sustained maximal voluntary contractions. , 1983, Journal of neurophysiology.
[17] E Hultman,et al. Energy cost and fatigue during intermittent electrical stimulation of human skeletal muscle. , 1988, Journal of applied physiology.
[18] J. Mizrahi,et al. A musculotendon model of the fatigue profiles of paralyzed quadriceps muscle under FES , 1993, IEEE Transactions on Biomedical Engineering.
[19] William K. Durfee,et al. EMG As An Indicator Of Fatigue During Functional Electrical Stimulation , 1991, Proceedings of the Annual International Conference of the IEEE Engineering in Medicine and Biology Society Volume 13: 1991.
[20] C. Juel,et al. Muscle action potential propagation velocity changes during activity , 1988, Muscle & nerve.
[21] G. Rau,et al. Surface Electromyography in Relation to Force, Muscle Length and Endurance , 1973 .
[22] H P Clamann,et al. Activity of single motor units during isometric tension , 1970, Neurology.
[23] B. Bigland-ritchie,et al. Linear and non-linear surface EMG/force relationships in human muscles. An anatomical/functional argument for the existence of both. , 1983, American journal of physical medicine.
[24] J Mizrahi,et al. Recruitment, force and fatigue characteristics of quadriceps muscles of paraplegics isometrically activated by surface functional electrical stimulation. , 1990, Journal of biomedical engineering.
[25] S. Mann,et al. Ciba Foundation Symposium , 1997 .
[26] R. D'ambrosia,et al. The Myoelectric Signal of Electrically Stimulated Muscle During Recruitment: An Inherent Feedback Pareter for a Closed-Loop Control Scheme , 1986, IEEE Transactions on Biomedical Engineering.
[27] Mechanical properties of human ankle extensors after muscle potentiation. , 1992, Electroencephalography and clinical neurophysiology.
[28] T Moritani,et al. Intramuscular and surface electromyogram changes during muscle fatigue. , 1986, Journal of applied physiology.
[29] A. Baker,et al. Metabolic and nonmetabolic components of fatigue monitored with 31P‐NMR , 1994, Muscle & nerve.
[30] V. Edgerton,et al. Muscle architecture of the human lower limb. , 1983, Clinical orthopaedics and related research.
[31] H. Milner-Brown,et al. Muscle membrane excitation and impulse propagation velocity are reduced during muscle fatigue , 1986, Muscle & nerve.
[32] T L Munsat,et al. Effects of nerve stimulation on human muscle. , 1976, Archives of neurology.
[33] Y. Itzchak,et al. In vivo 31P NMR studies of paraplegics' muscles activated by functional electrical stimulation , 1993, Magnetic resonance in medicine.
[34] P H Veltink,et al. Fatigue during functional neuromuscular stimulation. , 1993, Progress in brain research.
[35] G. A. Robinson,et al. Immobilization‐induced changes in motor unit force and fatigability in the cat , 1991, Muscle & nerve.
[36] D. Jones,et al. Fibre areas and histochemical fibre types in the quadriceps muscle of paraplegic subjects , 1993, Journal of the Neurological Sciences.
[37] R. Stein,et al. Neural prostheses : replacing motor function after disease or disability , 1992 .
[38] H. Sjöholm,et al. Electromyogram, force and relaxation time during and after continuous electrical stimulation of human skeletal muscle in situ. , 1983, The Journal of physiology.
[39] S. Salmons,et al. Significance of impulse activity in the transformation of skeletal muscle type , 1976, Nature.