The Relationship between Pedal Force and Crank Angular Velocity in Sprint Cycling.
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[1] O. Schmitt. The heat of shortening and the dynamic constants of muscle , 2017 .
[2] T. Noakes,et al. Relationship between vertical jump and maximal power output of legs and arms: Effects of ethnicity and sport , 2015, Scandinavian journal of medicine & science in sports.
[3] Silvia Conforto,et al. Feedback of mechanical effectiveness induces adaptations in motor modules during cycling , 2013, Front. Comput. Neurosci..
[4] Sylvain Dorel,et al. Adjustment of muscle coordination during an all-out sprint cycling task. , 2012, Medicine and science in sports and exercise.
[5] M. Bobbert. Why is the force-velocity relationship in leg press tasks quasi-linear rather than hyperbolic? , 2012, Journal of applied physiology.
[6] H. Vandewalle,et al. Interpretation of crank torque during an all-out cycling exercise at high pedal rate , 2010 .
[7] F. Hug,et al. Force-velocity relationship in cycling revisited: benefit of two-dimensional pedal forces analysis. , 2009, Medicine and science in sports and exercise.
[8] Gertjan Ettema,et al. The muscle force component in pedaling retains constant direction across pedaling rates. , 2009, Journal of applied biomechanics.
[9] R. James,et al. Isometric and isotonic muscle properties as determinants of work loop power output , 1996, Pflügers Archiv.
[10] E. Rejc,et al. Bilateral deficit and EMG activity during explosive lower limb contractions against different overloads , 2009, European Journal of Applied Physiology.
[11] Maarten F Bobbert,et al. Humans adjust control to initial squat depth in vertical squat jumping. , 2008, Journal of applied physiology.
[12] Pierre Samozino,et al. Why does power output decrease at high pedaling rates during sprint cycling? , 2007, Medicine and science in sports and exercise.
[13] James C. Martin,et al. Muscle Power: The Interaction of Cycle Frequency and Shortening Velocity , 2007, Exercise and sport sciences reviews.
[14] N. Ishii,et al. Steady-state force-velocity relation in human multi-joint movement determined with force clamp analysis. , 2007, Journal of biomechanics.
[15] E Van Praagh,et al. Torque and power-velocity relationships in cycling: relevance to track sprint performance in world-class cyclists. , 2005, International journal of sports medicine.
[16] S. D. R. Harridge,et al. Power output of the lower limb during variable inertial loading: a comparison between methods using single and repeated contractions , 2004, European Journal of Applied Physiology.
[17] J. R. Lacour,et al. Optimal velocity for maximal power production in non-isokinetic cycling is related to muscle fibre type composition , 2004, European Journal of Applied Physiology and Occupational Physiology.
[18] H. Monod,et al. Force-velocity relationship and maximal power on a cycle ergometer , 2004, European Journal of Applied Physiology and Occupational Physiology.
[19] H. Hatze,et al. A myocybernetic control model of skeletal muscle , 1977, Biological Cybernetics.
[20] H. Monod,et al. Maximal power and torque-velocity relationship on a cycle ergometer during the acceleration phase of a single all-out exercise , 2004, European Journal of Applied Physiology and Occupational Physiology.
[21] M. Bobbert,et al. Forward Dynamics of Two-Dimensional Skeletal Models , 2004 .
[22] A. Macaluso,et al. Comparison between young and older women in explosive power output and its determinants during a single leg-press action after optimisation of load , 2003, European Journal of Applied Physiology.
[23] A J Knoek van Soest,et al. The merits of a parallel genetic algorithm in solving hard optimization problems. , 2003, Journal of biomechanical engineering.
[24] R. R. Neptune,et al. Muscle Activation and Deactivation Dynamics: The Governing Properties in Fast Cyclical Human Movement Performance? , 2001, Exercise and sport sciences reviews.
[25] Georges Dalleau,et al. Force/velocity and power/velocity relationships in squat exercise , 2001, European Journal of Applied Physiology.
[26] A. V. van Soest,et al. Which factors determine the optimal pedaling rate in sprint cycling? , 2000, Medicine and science in sports and exercise.
[27] R R Neptune,et al. The association between negative muscle work and pedaling rate. , 1999, Journal of biomechanics.
[28] Alain Belli,et al. Optimal pedalling velocity characteristics during maximal and submaximal cycling in humans , 1999, European Journal of Applied Physiology and Occupational Physiology.
[29] M. Francaux,et al. Measurement of the power output during the acceleration phase of all-out arm cranking exercise. , 1997, International journal of sports medicine.
[30] K M Baldwin,et al. Determinants of work produced by skeletal muscle: potential limitations of activation and relaxation. , 1997, The American journal of physiology.
[31] H. Vandewalle,et al. Torque-velocity relationship during cycle ergometer sprints with and without toe clips , 1997, European Journal of Applied Physiology and Occupational Physiology.
[32] F. Zajac,et al. Muscle coordination of maximum-speed pedaling. , 1997, Journal of biomechanics.
[33] B Donne,et al. Effect of variation in seat tube angle at different seat heights on submaximal cycling performance in man. , 1997, Journal of sports sciences.
[34] F E Zajac,et al. A state-space analysis of mechanical energy generation, absorption, and transfer during pedaling. , 1996, Journal of biomechanics.
[35] M L Hull,et al. A theoretical basis for interpreting the force applied to the pedal in cycling. , 1993, Journal of biomechanics.
[36] A. Schwab,et al. The influence of the biarticularity of the gastrocnemius muscle on vertical-jumping achievement. , 1993, Journal of biomechanics.
[37] A. Beelen,et al. Effect of fatigue on maximal power output at different contraction velocities in humans. , 1991, Journal of applied physiology.
[38] W. Herzog,et al. Optimal design parameters of the bicycle-rider system for maximal muscle power output. , 1990, Journal of biomechanics.
[39] W S Levine,et al. An optimal control model for maximum-height human jumping. , 1990, Journal of biomechanics.
[40] L Stark,et al. Estimated mechanical properties of synergistic muscles involved in movements of a variety of human joints. , 1988, Journal of biomechanics.
[41] M L Hull,et al. A mechanically decoupled two force component bicycle pedal dynamometer. , 1988, Journal of biomechanics.
[42] V Lombardi,et al. A velocity‐dependent shortening depression in the development of the force‐velocity relation in frog muscle fibres. , 1986, The Journal of physiology.
[43] M. Bobbert,et al. A model of the human triceps surae muscle-tendon complex applied to jumping. , 1986, Journal of biomechanics.
[44] N L Jones,et al. Power output and fatigue of human muscle in maximal cycling exercise. , 1983, Journal of applied physiology: respiratory, environmental and exercise physiology.
[45] A. Sargeant,et al. Maximum leg force and power output during short-term dynamic exercise. , 1981, Journal of applied physiology: respiratory, environmental and exercise physiology.
[46] V. Edgerton,et al. Muscle architecture and force-velocity characteristics of cat soleus and medial gastrocnemius: implications for motor control. , 1980, Journal of neurophysiology.
[47] K. Edman,et al. Depression of mechanical performance by active shortening during twitch and tetanus of vertebrate muscle fibres. , 1980, Acta physiologica Scandinavica.
[48] V. Edgerton,et al. HINDLIMB MUSCLE FIBER POPULATIONS OF FIVE MAMMALS , 1973 .
[49] S. Ebashi,et al. Calcium ion and muscle contraction. , 1968, Progress in biophysics and molecular biology.