Stability of the blood lactate-heart rate relationship in competitive athletes

被引:39
作者
Foster, C [1 ]
Fitzgerald, DJ [1 ]
Spatz, P [1 ]
机构
[1] Univ Wisconsin, Dept Exercise & Sport Sci, La Crosse, WI 54601 USA
关键词
aerobic threshold; anaerobic threshold; lactate; sports training;
D O I
10.1097/00005768-199904000-00014
中图分类号
G8 [体育];
学科分类号
04 ; 0403 ;
摘要
Introduction: The identification of the HR (or RPE) associated with blood lactate concentrations of 2.5 mmol.L-1 (aerobic threshold) (AerT) and 4.0 mmol.L-1 (anaerobic threshold) (AnT) is a common method for defining training intensities. It is often assumed that the HR at AerT and AnT changes' with changes in fitness, much as the power output (Watts:W) associated with AerT and AnT is known to change. Methods: We studied speed skaters (N = 13, 7 male, 6 female) during spring (deconditioned) and fall (conditioned) evaluations, using cycle ergometry (stage duration = 5 min) to determine W, HR, and RPE at AerT, AnT, and at maximal exercise (3000 (female) and 5000 (male) m cycle time trials). Results: In the spring vs fall evaluations, the power output at AerT was 127 +/- 12 vs 162 +/- 9 W (P < 0.05), at AnT was 216 +/- 14 vs 230 +/- 13 W (P < 0.05), and at maximal exercise was 341 +/- 15 vs 364 +/- 19 W (P < 0.05); HR at AerT was 129 +/- 6 vs 130 +/- 7 bpm (P > 0.05), at AnT was 162 +/- 7 vs 164 +/- 7 bpm (P > 0.05), and at maximal exercise was 196 +/- 6 vs 198 +/- 5 bpm (P > 0.05); RPE at AerT was 2.7 +/- 0.9 vs 2.6 +/- 0.8 (P > 0.05), at AnT was 5.3 +/- 1.0 vs 5.3 +/- 0.9 (P > 0.05). Conclusions: These data suggest that although power output at AerT, AnT, and maximal exercise changes significantly with conditioning, there is no systematic change in the associated values for HR and/or RPE used as practical markers of training intensity. Accordingly, a single well-conducted evaluation may allow evaluation of appropriate training markers that may be longitudinally stable.
引用
收藏
页码:578 / 582
页数:5
相关论文
共 28 条
[21]  
SJODIN B, 1985, SPORTS MED, V2, P83
[22]   THE TRANSITION FROM AEROBIC TO ANAEROBIC METABOLISM [J].
SKINNER, JS ;
MCLELLAN, TH .
RESEARCH QUARTERLY FOR EXERCISE AND SPORT, 1980, 51 (01) :234-248
[23]   A SIMPLIFIED APPROACH TO ESTIMATING THE MAXIMAL LACTATE STEADY-STATE [J].
SNYDER, AC ;
WOULFE, T ;
WELSH, R ;
FOSTER, C .
INTERNATIONAL JOURNAL OF SPORTS MEDICINE, 1994, 15 (01) :27-31
[24]  
SVEDENHAG J, 1985, Canadian Journal of Applied Sport Sciences, V10, P127
[25]  
SWENSEN TC, IN PRESS MED SCI SPO
[26]   LONGITUDINAL ASSOCIATIONS BETWEEN ANAEROBIC THRESHOLD AND DISTANCE RUNNING PERFORMANCE [J].
TANAKA, K ;
WATANABE, H ;
KONISHI, Y ;
MITSUZONO, R ;
SUMIDA, S ;
TANAKA, S ;
FUKUDA, T ;
NAKADOMO, F .
EUROPEAN JOURNAL OF APPLIED PHYSIOLOGY AND OCCUPATIONAL PHYSIOLOGY, 1986, 55 (03) :248-252
[27]   INDIVIDUAL ANAEROBIC THRESHOLD AND MAXIMUM LACTATE STEADY-STATE [J].
URHAUSEN, A ;
COEN, B ;
WEILER, B ;
KINDERMANN, W .
INTERNATIONAL JOURNAL OF SPORTS MEDICINE, 1993, 14 (03) :134-139
[28]   ENDURANCE TRAINING REGIMEN BASED UPON ARTERIAL BLOOD LACTATE - EFFECTS ON ANAEROBIC THRESHOLD [J].
YOSHIDA, T ;
SUDA, Y ;
TAKEUCHI, N .
EUROPEAN JOURNAL OF APPLIED PHYSIOLOGY, 1982, 49 (02) :223-230