Kinetics and kinematics analysis of incremental cycling to exhaustion
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[1] Richard R Neptune,et al. Biomechanical Determinants of Pedaling Energetics: Internal and External Work Are Not Independent , 2002, Exercise and sport sciences reviews.
[2] A. J. van den Bogert,et al. ON OPTIMAL FILTERING FOR INVERSE DYNAMICS ANALYSIS , 1996 .
[3] T J Walters,et al. Determinants of endurance in well-trained cyclists. , 1988, Journal of applied physiology.
[4] P. Leva. Adjustments to Zatsiorsky-Seluyanov's segment inertia parameters. , 1996 .
[5] M L Hull,et al. The influence of pedaling rate on bilateral asymmetry in cycling. , 1999, Journal of biomechanics.
[6] Felipe P Carpes,et al. Physiological and electromyographic responses during 40-km cycling time trial: relationship to muscle coordination and performance. , 2008, Journal of science and medicine in sport.
[7] Duane Knudson,et al. Significant and meaningful effects in sports biomechanics research , 2009, Sports biomechanics.
[8] L Passfield,et al. Changes in cycling efficiency and performance after endurance exercise. , 2000, Medicine and science in sports and exercise.
[9] F Diefenthaeler,et al. Cadence and workload effects on pedaling technique of well-trained cyclists. , 2008, International journal of sports medicine.
[10] Richard E A van Emmerik,et al. Changes in muscle and joint coordination in learning to direct forces. , 2008, Human movement science.
[11] Jean-Marc Drouet,et al. Changes of pedaling technique and muscle coordination during an exhaustive exercise. , 2009, Medicine and science in sports and exercise.
[12] F. Zajac. Understanding muscle coordination of the human leg with dynamical simulations. , 2002, Journal of biomechanics.
[13] W Herzog,et al. Length dependence of active force production in skeletal muscle. , 1999, Journal of applied physiology.
[14] T. Moritani,et al. Neuromuscular, metabolic, and kinetic adaptations for skilled pedaling performance in cyclists. , 1998, Medicine and science in sports and exercise.
[15] M. Amann,et al. Influence of testing protocol on ventilatory thresholds and cycling performance. , 2004, Medicine and science in sports and exercise.
[16] H. Hoshikawa,et al. CONTRIBUTION OF THE ANKLE, KNEE, AND HIP JOINTS TO MECHANICAL ENERGY IN CYCLING , 2007 .
[17] Alec H. Black,et al. Kinematic and kinetic changes during an incremental exercise test on a bicycle ergometer , 1994 .
[18] D. Sanderson,et al. Gastrocnemius and soleus muscle length, velocity, and EMG responses to changes in pedalling cadence. , 2006, Journal of electromyography and kinesiology : official journal of the International Society of Electrophysiological Kinesiology.
[19] N. Brown,et al. Joint-specific power production and fatigue during maximal cycling. , 2009, Journal of biomechanics.
[20] A. Belli,et al. Relationship between the increase of effectiveness indexes and the increase of muscular efficiency with cycling power , 2006, European Journal of Applied Physiology.
[21] Rodrigo Rico Bini,et al. Fatigue effects on the coordinative pattern during cycling: kinetics and kinematics evaluation. , 2010, Journal of electromyography and kinesiology : official journal of the International Society of Electrophysiological Kinesiology.
[22] M L Hull,et al. Multivariable optimization of cycling biomechanics. , 1989, Journal of biomechanics.
[23] David J. Sanderson,et al. Influence of cadence, power output and hypoxia on the joint moment distribution during cycling , 2007, European Journal of Applied Physiology.
[24] D J Sanderson,et al. Is a joint moment-based cost function associated with preferred cycling cadence? , 2000, Journal of biomechanics.
[25] W Herzog,et al. Maximal muscle power output in cycling: a modelling approach. , 1996, Journal of sports sciences.
[26] P. Komi,et al. The Stretch-Shortening Cycle , 2006, Sports medicine.
[27] M L Hull,et al. On the relation between joint moments and pedalling rates at constant power in bicycling. , 1986, Journal of biomechanics.
[28] Alfredo Santalla,et al. Inverse relationship between VO2max and economy/efficiency in world-class cyclists. , 2002, Medicine and science in sports and exercise.
[29] A. Belli,et al. Influence of fatigue on EMG/force ratio and cocontraction in cycling. , 2000, Medicine and science in sports and exercise.
[30] R. Patterson,et al. Bicycle pedalling forces as a function of pedalling rate and power output. , 1990, Medicine and science in sports and exercise.
[31] Raoul F Reiser,et al. Influence of Hip Orientation on Wingate Power Output and Cycling Technique , 2002, Journal of strength and conditioning research.
[32] M. Hull,et al. A method for determining lower extremity muscle-tendon lengths during flexion/extension movements. , 1990, Journal of biomechanics.
[33] D. Sanderson,et al. The effect of prolonged cycling on pedal forces , 2003, Journal of sports sciences.
[34] M L Hull,et al. A mechanically decoupled two force component bicycle pedal dynamometer. , 1988, Journal of biomechanics.
[35] K. Williams. The relationship between mechanical and physiological energy estimates. , 1985, Medicine and science in sports and exercise.
[36] Greg Atkinson,et al. Analysis of repeated measurements in physical therapy research: multiple comparisons amongst level means and multi-factorial designs , 2002 .
[37] R R Neptune,et al. The association between negative muscle work and pedaling rate. , 1999, Journal of biomechanics.
[38] Hirofumi Tanaka,et al. Age-predicted maximal heart rate revisited. , 2001, Journal of the American College of Cardiology.
[39] P R Cavanagh,et al. Knee flexor moments during propulsion in cycling--a creative solution to Lombard's Paradox. , 1985, Journal of biomechanics.