Energy system contribution during competitive cross-country skiing

Вклад энергетических систем во время соревновательной лыжной гонки по пересечённой местности
Thomas Losnegard
2019-05-10

V̇O2peakaerobic energy turnovercross-country skiingenergy system contributionintermittent high-intensity exercise
Abstract Energy system contribution during cross-country (XC) skiing races is dependent on several factors, including the race duration, track profile, and sub-techniques applied, and their subsequent effects on the use of the upper and lower body. This review provides a scientific synopsis of the interactions of energy system contributions from a physiological, technical, and tactical perspective. On average, the aerobic proportion of the total energy expended during XC skiing competitions is comparable to the values for other sports with similar racing times. However, during both sprint (≤ 1.8 km) and distance races (≥ 10 and 15 km, women and men, respectively) a high aerobic turnover interacts with subsequent periods of very high work rates at ~ 120 to 160% of V O 2peak during the uphill sections of the race. The repeated intensity fluctuations are possible due to the nature of skiing, which involves intermittent downhills where skiers can recover. Thus, the combination of high and sustained aerobic energy turnover and repeated work rates above V O 2peak , interspersed with short recovery periods, distinguishes XC skiing from most other endurance sports. The substantially increased average speed in races over recent decades, frequent competitions in mass starts and sprints, and the greater importance of short periods at high speeds in various sub-techniques, have demanded changes in the physiological, technical, and tactical abilities needed to achieve world-class level within the specific disciplines.
1
Aerobic energy contribution in cross-country skiing is comparable to that of other sports with similar race durations.
2
Repeated supramaximal efforts are enabled by intermittent downhill sections that provide brief recovery periods.
3
Rising race speeds, mass-start and sprint formats, and greater reliance on brief high-speed periods have increased physiological, technical, and tactical demands for world-class performance.
4
Sprint and distance races combine sustained high aerobic energy turnover with uphill work rates reaching approximately 120–160% of VO₂peak.
5
The interaction of aerobic endurance, repeated high-intensity efforts, and recovery distinguishes cross-country skiing from most other endurance sports.

competitive cross-country skiing races

the interaction and variation of aerobic and anaerobic energy-system contributions across race durations, terrain, sub-techniques, and recovery periods

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2019-05-10
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Thomas Losnegard
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