scholarly article | Q13442814 |
P356 | DOI | 10.1080/0264041031000102097 |
P953 | full work available online at | http://www.tandfonline.com/doi/pdf/10.1080/0264041031000102097 |
P698 | PubMed publication ID | 14579871 |
P5875 | ResearchGate publication ID | 9039007 |
P50 | author | Louis Passfield | Q44680000 |
Greg Atkinson | Q48393558 | ||
Richard Davison | Q54488200 | ||
P2093 | author name string | Asker Jeukendrup | |
P2860 | cites work | American Journal of Physiology | Q2160146 |
Medicine and Science in Sports and Exercise | Q15761936 | ||
Determinants of post-exercise glycogen synthesis during short-term recovery | Q28180658 | ||
Preferred pedalling cadence in professional cycling | Q28209202 | ||
Comparing cycling world hour records, 1967-1996: modeling with empirical data | Q30585154 | ||
Low-fat diet alters intramuscular substrates and reduces lipolysis and fat oxidation during exercise | Q31919585 | ||
Hyperhydration: tolerance and cardiovascular effects during uncompensable exercise-heat stress | Q33175647 | ||
Oxidation of carbohydrate feedings during prolonged exercise: current thoughts, guidelines and directions for future research | Q33952497 | ||
The bioenergetics of World Class Cycling | Q34172456 | ||
Physiology of professional road cycling | Q34248379 | ||
Characteristics of track cycling | Q34294595 | ||
Physiological and performance characteristics of male professional road cyclists | Q34294606 | ||
Adaptations to training in endurance cyclists: implications for performance | Q34294626 | ||
Improving cycling performance: how should we spend our time and money | Q34294645 | ||
Carbohydrate-loading and exercise performance. An update | Q34438617 | ||
Optimisation of sprinting performance in running, cycling and speed skating | Q40659796 | ||
Racing cyclist power requirements in the 4000-m individual and team pursuits | Q40787098 | ||
Use of blood lactate measurements for prediction of exercise performance and for control of training. Recommendations for long-distance running | Q41179178 | ||
Equation of motion of a cyclist | Q41739019 | ||
Addition of protein and amino acids to carbohydrates does not enhance postexercise muscle glycogen synthesis | Q43678647 | ||
Energy expenditure during bicycling | Q43693085 | ||
Kinetics of VO(2) in professional cyclists | Q43877129 | ||
Determinants of VO(2) kinetics at high power outputs during a ramp exercise protocol | Q43877132 | ||
Day to day variation in time trial cycling performance | Q43923698 | ||
The influence of pacing strategy on VO2 and supramaximal kayak performance | Q44016959 | ||
Exercise intensity during off-road cycling competitions | Q44221179 | ||
Peak power output predicts maximal oxygen uptake and performance time in trained cyclists | Q46167151 | ||
Assessment of the reproducibility of performance testing on an air-braked cycle ergometer. | Q46211279 | ||
Effects of different interval-training programs on cycling time-trial performance | Q46574907 | ||
Impaired high-intensity cycling performance time at low levels of dehydration | Q46740410 | ||
Influence of body size on oxygen consumption during bicycling | Q47199167 | ||
Role of osmolality and plasma volume during rehydration in humans | Q48941330 | ||
Exercise metabolism at different time intervals after a meal | Q51611912 | ||
Substrate usage during prolonged exercise following a preexercise meal | Q51637506 | ||
Inspiratory muscle fatigue in trained cyclists: effects of inspiratory muscle training | Q51718863 | ||
Inverse relationship between VO2max and economy/efficiency in world-class cyclists | Q52026769 | ||
Correlates of simulated hill climb cycling performance. | Q52081038 | ||
Validation of a Mathematical Model for Road Cycling Power | Q52238803 | ||
Air friction and rolling resistance during cycling. | Q52337714 | ||
Modeling road-cycling performance | Q52346185 | ||
Factors affecting speed in human-powered vehicles | Q52371020 | ||
Mathematical model of cycling performance | Q52392813 | ||
Lactate Kinetics and Individual Anaerobic Threshold* | Q52435126 | ||
Physiological profiles of elite off-road and road cyclists | Q53358324 | ||
High efficiency of type I muscle fibers improves performance | Q54031835 | ||
An oral essential amino acid-carbohydrate supplement enhances muscle protein anabolism after resistance exercise | Q54063913 | ||
The effect of tyre pressure on the economy of cycling | Q54238253 | ||
Energy cost and efficiency of riding aerodynamic bicycles | Q54253917 | ||
Breakdown of high-energy phosphate compounds and lactate accumulation during short supramaximal exercise. | Q54616550 | ||
Maximizing postexercise muscle glycogen synthesis: carbohydrate supplementation and the application of amino acid or protein hydrolysate mixtures. | Q55034007 | ||
Muscle glycogen synthesis after exercise: effect of time of carbohydrate ingestion. | Q55060512 | ||
Muscle glycogen utilization during prolonged strenuous exercise when fed carbohydrate. | Q55060795 | ||
Influence of exercise intensity on the on- and off-transient kinetics of pulmonary oxygen uptake in humans | Q56552759 | ||
Glycerol hyperhydration improves cycle time trial performance in hot humid conditions | Q57577436 | ||
Reliability of Mean Power Recorded During Indoor and Outdoor Self-Paced 40 km Cycling Time-Trials | Q59380597 | ||
Peak power predicts performance power during an outdoor 16.1-km cycling time trial | Q59380608 | ||
The effect of pedaling frequency on glycogen depletion rates in type I and type II quadriceps muscle fibers during submaximal cycling exercise | Q67545165 | ||
Effect of pre-exercise fructose ingestion on endurance performance in fed men | Q68137559 | ||
Carbohydrate-protein complex increases the rate of muscle glycogen storage after exercise | Q68147933 | ||
Influence of liquid and solid meals on muscle glycogen resynthesis, plasma fuel hormone response, and maximal physical working capacity | Q68162145 | ||
Determinants of endurance in well-trained cyclists | Q68468509 | ||
Liver Glycogen in Man –- the Effect of Total Starvation or a Carbohydrate-Poor Diet Followed by Carbohydrate Refeeding | Q69641679 | ||
Study on food intake and energy expenditure during extreme sustained exercise: the Tour de France | Q69651491 | ||
Use of the doubly labeled water technique in humans during heavy sustained exercise | Q70161559 | ||
Effect of Exercise-Diet Manipulation on Muscle Glycogen and Its Subsequent Utilization During Performance* | Q71084361 | ||
A new validated endurance performance test | Q71449115 | ||
Cycling cadence alters exercise hemodynamics | Q71450552 | ||
The effects of pre-exercise starch ingestion on endurance performance | Q71657833 | ||
Diet, Muscle Glycogen and Physical Performance | Q71861994 | ||
Physiological effects of constant versus variable power during endurance cycling | Q73096825 | ||
Carbohydrate-electrolyte feedings improve 1 h time trial cycling performance | Q73177478 | ||
Changes in cycling efficiency and performance after endurance exercise | Q73192812 | ||
Pacing strategies during a cycling time trial with simulated headwinds and tailwinds | Q73202028 | ||
Carbohydrate and fluid intake affect the saliva flow rate and IgA response to cycling | Q73324829 | ||
Determination of optimal pacing strategy in track cycling with an energy flow model | Q73433500 | ||
Influence of different racing positions on metabolic cost in elite cyclists | Q73502080 | ||
Are world-class cyclists really more efficient? | Q73610449 | ||
A model for optimizing cycling performance by varying power on hills and in wind | Q73619414 | ||
Exercise intensity during competition time trials in professional road cycling | Q73702750 | ||
Effect of cycling experience, aerobic power, and power output on preferred and most economical cycling cadences | Q73729713 | ||
Intensity of exercise during road race pro-cycling competition | Q73745126 | ||
Effect of cadence, cycling experience, and aerobic power on delta efficiency during cycling | Q74336192 | ||
Pacing strategy in simulated cycle time-trials is based on perceived rather than actual distance | Q74492675 | ||
Glucose kinetics during prolonged exercise in highly trained human subjects: effect of glucose ingestion | Q74525966 | ||
Influence of fatigue on the efficiency of men during exhausting runs | Q77071033 | ||
DETECTING THE THRESHOLD OF ANAEROBIC METABOLISM IN CARDIAC PATIENTS DURING EXERCISE | Q77080037 | ||
Physiological Differences Between Professional and Elite Road Cyclists | Q77164523 | ||
The effects of replacing a portion of endurance training by explosive strength training on performance in trained cyclists | Q77575992 | ||
Carbohydrate intake during prolonged cycling minimizes effect of glycemic index of preexercise meal | Q77648885 | ||
Changes in blood volume and oxygenation level in a working muscle during a crank cycle | Q77734010 | ||
Breathing pattern in highly competitive cyclists during incremental exercise | Q77799632 | ||
Hormonal and metabolic responses to maintained hyperglycemia during prolonged exercise | Q78010206 | ||
P433 | issue | 9 | |
P407 | language of work or name | English | Q1860 |
P921 | main subject | Orthopedics and sports medicine | Q72419165 |
P304 | page(s) | 767-787 | |
P577 | publication date | 2003-09-01 | |
P13046 | publication type of scholarly work | review article | Q7318358 |
P1433 | published in | Journal of Sports Sciences | Q15761931 |
P1476 | title | Science and cycling: current knowledge and future directions for research | |
P478 | volume | 21 |
Q53775316 | 10 weeks of heavy strength training improves performance-related measurements in elite cyclists |
Q33718046 | 33 Ironman triathlons in 33 days-a case study |
Q38221372 | Adaptation to heat and exercise performance under cooler conditions: a new hot topic. |
Q51963397 | An empirical basis for route choice in cycling. |
Q83165069 | Consistency of perceptual and metabolic responses to a laboratory-based simulated 4,000-m cycling time trial |
Q79405850 | Constant versus variable-intensity during cycling: effects on subsequent running performance |
Q80985377 | Cycling performance and mechanical variables using a new prototype chainring |
Q48093327 | Cycling performance is superior for time-to-exhaustion versus time-trial in endurance laboratory tests |
Q34750608 | Describing and understanding pacing strategies during athletic competition |
Q47170277 | Distance, Duration, and Velocity in Cycle Commuting: Analyses of Relations and Determinants of Velocity |
Q36888928 | Distribution of power output during cycling: impact and mechanisms. |
Q46959960 | Effect of age on 16.1-km time-trial performance. |
Q43230079 | Effect of heavy strength training on thigh muscle cross-sectional area, performance determinants, and performance in well-trained cyclists. |
Q48153307 | Effect of short-term heat acclimation with permissive dehydration on thermoregulation and temperate exercise performance. |
Q48311438 | Effects of 10 days of separate heat and hypoxic exposure on heat acclimation and temperate exercise performance |
Q50247086 | Effects of acute and 2-week administration of oral salbutamol on exercise performance and muscle strength in athletes |
Q46843448 | Effects of daytime ingestion of melatonin on short-term athletic performance. |
Q50232360 | Effects of long-term training cessation in young top-level road cyclists |
Q39107430 | Effects of starting strategy on 5-min cycling time-trial performance |
Q59799689 | Estimating duration-distance relations in cycle commuting in the general population |
Q51545179 | In-season strength maintenance training increases well-trained cyclists' performance |
Q51526053 | Influence of exercise in normal and hot ambient conditions on the pharmacokinetics of inhaled terbutaline in trained men. |
Q82298066 | Influence of road incline and body position on power–cadence relationship in endurance cycling |
Q50855179 | Laboratory predictors of uphill cycling performance in trained cyclists. |
Q37488191 | Lactate threshold concepts: how valid are they? |
Q55003978 | Multi Directional Repeated Sprint Is a Valid and Reliable Test for Assessment of Junior Handball Players. |
Q41900984 | Pacing in a self-paced world record attempt in 24-h road cycling |
Q44193355 | Physiological Correlates of Emotion-Regulation During Prolonged Cycling Performance |
Q36311130 | Physiological Demands of Simulated Off-Road Cycling Competition |
Q36473327 | Positive Pacing Strategies Are Utilized by Elite Male and Female Para-cyclists in Short Time Trials in the Velodrome |
Q46618827 | Power–cadence relationship in endurance cycling |
Q46787830 | Progression of changes in left ventricular function during four days of simulated multi-stage cycling |
Q50886618 | Reference values and improvement of aerodynamic drag in professional cyclists |
Q59807607 | Repeatability and predictive value of lactate threshold concepts in endurance sports |
Q92701853 | Self-Selected Pacing during a 24 h Track Cycling World Record |
Q38774226 | Size Exponents for Scaling Maximal Oxygen Uptake in Over 6500 Humans: A Systematic Review and Meta-Analysis. |
Q51031932 | Strength training improves cycling performance, fractional utilization of VO2max and cycling economy in female cyclists |
Q51779551 | The effect of an even-pacing strategy on exercise tolerance in well-trained cyclists. |
Q41863633 | The effect of cycling cadence on subsequent 10km running performance in well-trained triathletes |
Q36693036 | The physiology of mountain biking |
Q36098126 | The science of cycling: factors affecting performance - part 2. |
Q51915081 | Variable versus constant power strategies during cycling time-trials: prediction of time savings using an up-to-date mathematical model |
Search more.