Literature DB >> 10597847

Effect of precooling on high intensity cycling performance.

D Marsh1, G Sleivert.   

Abstract

OBJECTIVE: To examine the effects of precooling skin and core temperature on a 70 second cycling power test performed in a warm and humid environment (29 degrees C, 80% relative humidity).
METHODS: Thirteen male national and international level representative cyclists (mean (SD) age 24.1 (4.1) years; height 181.5 (6.2) cm; weight 75.5 (6.4) kg; maximal oxygen uptake (VO2peak) 66.1 (7.0) ml/kg/min) were tested in random order after either 30 minutes of precooling using cold water immersion or under control conditions (no precooling). Tests were separated by a minimum of two days. The protocol consisted of a 10 minute warm up at 60% of VO2peak followed by three minutes of stretching. This was immediately followed by the 70 second power test which was performed on a standard road bicycle equipped with 172.5 mm powermeter cranks and mounted on a stationary ergometer.
RESULTS: Mean power output for the 70 second performance test after precooling was significantly (p<0.005) increased by 3.3 (2.7)% from 581 (57) W to 603 (60) W. Precooling also significantly (p<0.05) decreased core, mean body, and upper and lower body skin temperature; however, by the start of the performance test, lower body skin temperature was no different from control. After precooling, heart rate was also significantly lower than control throughout the warm up (p<0.05). Ratings of perceived exertion were significantly higher than the control condition at the start of the warm up after precooling, but lower than the control condition by the end of the warm up (p<0.05). No differences in blood lactate concentration were detected between conditions.
CONCLUSIONS: Precooling improves short term cycling performance, possibly by initiating skin vasoconstriction which may increase blood availability to the working muscles. Future research is required to determine the physiological basis for the ergogenic effects of precooling on high intensity exercise.

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Year:  1999        PMID: 10597847      PMCID: PMC1756209          DOI: 10.1136/bjsm.33.6.393

Source DB:  PubMed          Journal:  Br J Sports Med        ISSN: 0306-3674            Impact factor:   13.800


  24 in total

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Authors:  D H Ruiz; J W Myrer; E Durrant; G W Fellingham
Journal:  J Athl Train       Date:  1993       Impact factor: 2.860

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Journal:  Med Sci Sports Exerc       Date:  1982       Impact factor: 5.411

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  24 in total

Review 1.  Methods, advantages, and limitations of body cooling for exercise performance.

Authors:  F E Marino
Journal:  Br J Sports Med       Date:  2002-04       Impact factor: 13.800

2.  Effect of wearing an ice cooling jacket on repeat sprint performance in warm/humid conditions.

Authors:  R Duffield; B Dawson; D Bishop; M Fitzsimons; S Lawrence
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Review 3.  Cooling athletes before competition in the heat: comparison of techniques and practical considerations.

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5.  Effects of pre-cooling procedures on intermittent-sprint exercise performance in warm conditions.

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6.  Cycling time to failure is better maintained by cold than contrast or thermoneutral lower-body water immersion in normothermia.

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7.  Warming up with an ice vest: core body temperature before and after cross-country racing.

Authors:  Iain Hunter; J Ty Hopkins; Douglas J Casa
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Review 8.  Precooling methods and their effects on athletic performance : a systematic review and practical applications.

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9.  Postexercise cooling rates in 2 cooling jackets.

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Journal:  J Athl Train       Date:  2010 Mar-Apr       Impact factor: 2.860

Review 10.  Sports and environmental temperature: From warming-up to heating-up.

Authors:  Sébastien Racinais; Scott Cocking; Julien D Périard
Journal:  Temperature (Austin)       Date:  2017-08-04
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