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Published in: Sports Medicine 6/2002

01-05-2002 | Leading Article

Specific Aspects of Contemporary Triathlon

Implications for Physiological Analysis and Performance

Authors: David J. Bentley, Grégoire P. Millet, Verónica E. Vleck, Lars R. McNaughton

Published in: Sports Medicine | Issue 6/2002

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Abstract

Triathlon competitions are performed over markedly different distances and under a variety of technical constraints. In ’standard-distance’ triathlons involving 1.5km swim, 40km cycling and 10km running, a World Cup series as well as a World Championship race is available for ’elite’ competitors. In contrast, ’age-group’ triathletes may compete in 5-year age categories at a World Championship level, but not against the elite competitors. The difference between elite and age-group races is that during the cycle stage elite competitors may ’draft’ or cycle in a sheltered position; age-group athletes complete the cycle stage as an individual time trial. Within triathlons there are a number of specific aspects that make the physiological demands different from the individual sports of swimming, cycling and running. The physiological demands of the cycle stage in elite races may also differ compared with the age-group format. This in turn may influence performance during the cycle leg and subsequent running stage.
Wetsuit use and drafting during swimming (in both elite and age-group races) result in improved buoyancy and a reduction in frontal resistance, respectively. Both of these factors will result in improved performance and efficiency relative to normal pool-based swimming efforts. Overall cycling performance after swimming in a triathlon is not typically affected. However, it is possible that during the initial stages of the cycle leg the ability of an athlete to generate the high power outputs necessary for tactical position changes may be impeded. Drafting during cycling results in a reduction in frontal resistance and reduced energy cost at a given submaximal intensity. The reduced energy expenditure during the cycle stage results in an improvement in running, so an athlete may exercise at a higher percentage of maximal oxygen uptake. In elite triathlon races, the cycle courses offer specific physiological demands that may result in different fatigue responses when compared with standard time-trial courses. Furthermore, it is possible that different physical and physiological characteristics may make some athletes more suited to races where the cycle course is either flat or has undulating sections. An athlete’s ability to perform running activity after cycling, during a triathlon, may be influenced by the pedalling frequency and also the physiological demands of the cycle stage. The technical features of elite and age-group triathlons together with the physiological demands of longer distance events should be considered in experimental design, training practice and also performance diagnosis of triathletes.
Literature
1.
go back to reference O’Toole ML, Douglas PS, Hiller WDB. Applied physiology of a triathlon. Sports Med 1989; 8: 201–25PubMedCrossRef O’Toole ML, Douglas PS, Hiller WDB. Applied physiology of a triathlon. Sports Med 1989; 8: 201–25PubMedCrossRef
3.
go back to reference Margaritis I. Facteurs limitants de la performance en triathlon. Can J Appl Physiol 1996; 21: 1–15PubMedCrossRef Margaritis I. Facteurs limitants de la performance en triathlon. Can J Appl Physiol 1996; 21: 1–15PubMedCrossRef
4.
go back to reference Sleivert GG, Rowlands DS. Physical and physiological factors associated with success in the triathlon. Sports Med 1996; 22: 8–18PubMedCrossRef Sleivert GG, Rowlands DS. Physical and physiological factors associated with success in the triathlon. Sports Med 1996; 22: 8–18PubMedCrossRef
5.
go back to reference Chatard JC, Senegas X, Selles M, et al. Wet suit effect: a comparison between competitive swimmers and triathletes. Med Sci Sports Exerc 1995; 27: 580–6PubMed Chatard JC, Senegas X, Selles M, et al. Wet suit effect: a comparison between competitive swimmers and triathletes. Med Sci Sports Exerc 1995; 27: 580–6PubMed
6.
go back to reference Trappe TA, Pease DL, Trappe SW, et al. Physiological responses to swimming while wearing a wet suit. Int J Sports Med 1996; 17: 111–4PubMedCrossRef Trappe TA, Pease DL, Trappe SW, et al. Physiological responses to swimming while wearing a wet suit. Int J Sports Med 1996; 17: 111–4PubMedCrossRef
7.
go back to reference Wolff AH, Coleshaw SRK, Newstead CG, et al. Heat exchanges in wetsuits. J Appl Physiol 1985; 58: 770–7PubMed Wolff AH, Coleshaw SRK, Newstead CG, et al. Heat exchanges in wetsuits. J Appl Physiol 1985; 58: 770–7PubMed
8.
go back to reference Lowdon BJ, McKenzie D, Ridge BR. Effects of clothing and water temperature on swim performance. Aust J Sci Med Sports 1992; 24: 33–8 Lowdon BJ, McKenzie D, Ridge BR. Effects of clothing and water temperature on swim performance. Aust J Sci Med Sports 1992; 24: 33–8
9.
go back to reference Trappe TA, Starling RD, Jozsi AC, et al. Thermal responses to swimming in three water temperatures: influence of a wet suit. Med Sci Sports Exerc 1995; 27: 1014–21PubMedCrossRef Trappe TA, Starling RD, Jozsi AC, et al. Thermal responses to swimming in three water temperatures: influence of a wet suit. Med Sci Sports Exerc 1995; 27: 1014–21PubMedCrossRef
10.
go back to reference Costill DL, Kovaleski J, Porter D, et al. Energy expenditure during front crawl swimming: predicting success in middle-distance events. Int J Sports Med 1985; 6: 266–70PubMedCrossRef Costill DL, Kovaleski J, Porter D, et al. Energy expenditure during front crawl swimming: predicting success in middle-distance events. Int J Sports Med 1985; 6: 266–70PubMedCrossRef
11.
go back to reference Toussaint HM, Hollander AP. Energetics of competitive swimming: implications for training programmes. Sports Med 1994; 18: 384–405PubMedCrossRef Toussaint HM, Hollander AP. Energetics of competitive swimming: implications for training programmes. Sports Med 1994; 18: 384–405PubMedCrossRef
12.
go back to reference Chatard JC, Lavoie JM, Lacour JR. Analysis of determinants of swimming economy in front crawl. Eur J Appl Physiol 1990; 61: 88–92CrossRef Chatard JC, Lavoie JM, Lacour JR. Analysis of determinants of swimming economy in front crawl. Eur J Appl Physiol 1990; 61: 88–92CrossRef
13.
go back to reference Capelli C, Zamparo P, Cigalotto A, et al. Bioenergetics and biomechanics of front crawl swimming. J Appl Physiol 1995; 78: 674–9PubMed Capelli C, Zamparo P, Cigalotto A, et al. Bioenergetics and biomechanics of front crawl swimming. J Appl Physiol 1995; 78: 674–9PubMed
14.
go back to reference Toussaint HM, Bruinink L, Coster R, et al. Effect of a triathlon wet suit on drag during swimming. Med Sci Sports Exerc 1989; 21: 325–8PubMed Toussaint HM, Bruinink L, Coster R, et al. Effect of a triathlon wet suit on drag during swimming. Med Sci Sports Exerc 1989; 21: 325–8PubMed
15.
go back to reference Chatard JC, Millet G. Effects of wetsuit use in swimming event: practical recommendations. Sports Med 1996; 22: 70–5PubMedCrossRef Chatard JC, Millet G. Effects of wetsuit use in swimming event: practical recommendations. Sports Med 1996; 22: 70–5PubMedCrossRef
16.
go back to reference Cordain L, Kopriva R. Wetsuits, body density and swimming performance. Br J Sports Med 1991; 25: 31–3PubMedCrossRef Cordain L, Kopriva R. Wetsuits, body density and swimming performance. Br J Sports Med 1991; 25: 31–3PubMedCrossRef
17.
go back to reference de Lucas RD, Balikian P, Neiva CM, et al. The effects of wet suits on physiological and biomechanical indices during swimming. J Sci Med Sport 2000; 3: 1–8PubMedCrossRef de Lucas RD, Balikian P, Neiva CM, et al. The effects of wet suits on physiological and biomechanical indices during swimming. J Sci Med Sport 2000; 3: 1–8PubMedCrossRef
18.
19.
go back to reference Troup J. The effects of drafting on training and performance capacity. In: Troup J, editor. Studies by the International Center for Aquatic Research. Colorado Springs (CO): US Swimming Press, 1990: 107–11 Troup J. The effects of drafting on training and performance capacity. In: Troup J, editor. Studies by the International Center for Aquatic Research. Colorado Springs (CO): US Swimming Press, 1990: 107–11
20.
go back to reference Toussaint HM. Differences in propelling efficiency between competitive and triathlon swimmers. Med Sci Sports Exerc 1990; 22: 409–15PubMed Toussaint HM. Differences in propelling efficiency between competitive and triathlon swimmers. Med Sci Sports Exerc 1990; 22: 409–15PubMed
21.
go back to reference Landers GJ, Blanksby BA, Ackland TR, et al. Morphology and performance of world championship triathletes. Ann Hum Biol 2000; 27: 387–400PubMedCrossRef Landers GJ, Blanksby BA, Ackland TR, et al. Morphology and performance of world championship triathletes. Ann Hum Biol 2000; 27: 387–400PubMedCrossRef
22.
go back to reference Millet G, Chollet D, Chalies S, et al. Comparison of coordination in crawl between elite triathletes and elite swimmers. Int J Sports Med 2002; 23: 99–104PubMedCrossRef Millet G, Chollet D, Chalies S, et al. Comparison of coordination in crawl between elite triathletes and elite swimmers. Int J Sports Med 2002; 23: 99–104PubMedCrossRef
23.
go back to reference Craig ABJ, Pendergast DR. Relationships of stroke rate, distance per stroke, and velocity in competitive swimming. Med Sci Sports 1979; 11: 278–83PubMed Craig ABJ, Pendergast DR. Relationships of stroke rate, distance per stroke, and velocity in competitive swimming. Med Sci Sports 1979; 11: 278–83PubMed
24.
go back to reference Toussaint HM, Beek PJ. Biomechanics of competitive front crawl swimming. Sports Med 1992; 13: 8–24PubMedCrossRef Toussaint HM, Beek PJ. Biomechanics of competitive front crawl swimming. Sports Med 1992; 13: 8–24PubMedCrossRef
25.
go back to reference Chatard JC, Chollet D, Millet G. Performance and drag during drafting swimming in highly trained triathletes. Med Sci Sports Exerc 1998; 30: 1276–80PubMedCrossRef Chatard JC, Chollet D, Millet G. Performance and drag during drafting swimming in highly trained triathletes. Med Sci Sports Exerc 1998; 30: 1276–80PubMedCrossRef
26.
go back to reference Chollet D, Hue O, Auclair F, et al. The effects of drafting on stroking variations during swimming in elite male triathletes. Eur J Appl Physiol 2000; 82: 413–7PubMedCrossRef Chollet D, Hue O, Auclair F, et al. The effects of drafting on stroking variations during swimming in elite male triathletes. Eur J Appl Physiol 2000; 82: 413–7PubMedCrossRef
27.
go back to reference Millet G, Chollet D, Chatard JC. Effects of drafting behind a two-or a six-beat kick swimmer in elite female triathletes. Eur J Appl Physiol 2000; 82: 465–71PubMedCrossRef Millet G, Chollet D, Chatard JC. Effects of drafting behind a two-or a six-beat kick swimmer in elite female triathletes. Eur J Appl Physiol 2000; 82: 465–71PubMedCrossRef
28.
go back to reference Bassett DR, Flohr J, Duey WJ, et al. Metabolic responses to drafting during front crawl swimming. Med Sci Sports Exerc 1991; 23: 744–7PubMed Bassett DR, Flohr J, Duey WJ, et al. Metabolic responses to drafting during front crawl swimming. Med Sci Sports Exerc 1991; 23: 744–7PubMed
29.
go back to reference Finlay JB, Hartman AF, Weir RC. Post-swim orthostatic intolerance in a marathon swimmer. Med Sci Sports Exerc 1995; 27: 1231–7PubMed Finlay JB, Hartman AF, Weir RC. Post-swim orthostatic intolerance in a marathon swimmer. Med Sci Sports Exerc 1995; 27: 1231–7PubMed
30.
go back to reference Farber HW, Schaefer EJ, Franey R, et al. The endurance triathlon: metabolic changes after each event and during recovery. Med Sci Sports Exerc 1991; 23: 959–65PubMed Farber HW, Schaefer EJ, Franey R, et al. The endurance triathlon: metabolic changes after each event and during recovery. Med Sci Sports Exerc 1991; 23: 959–65PubMed
31.
go back to reference Kreider R, Boone T, Thompson W, et al. Cardiovascular and thermal responses of triathlon performance. Med Sci Sports Exerc 1988; 20: 385–90PubMedCrossRef Kreider R, Boone T, Thompson W, et al. Cardiovascular and thermal responses of triathlon performance. Med Sci Sports Exerc 1988; 20: 385–90PubMedCrossRef
32.
go back to reference Laursen PB, Rhodes EC, Langill RH. The effects of 3000-m swimming on subsequent 3-h cycling performance: implications for ultra endurance triathletes. Eur J Appl Physiol 2000; 83: 28–33PubMedCrossRef Laursen PB, Rhodes EC, Langill RH. The effects of 3000-m swimming on subsequent 3-h cycling performance: implications for ultra endurance triathletes. Eur J Appl Physiol 2000; 83: 28–33PubMedCrossRef
33.
go back to reference Pages T, Murtra B, Ibanez J, et al. Changes in blood ammonia and lactate levels during a triathlon race. J Sports Med Phys Fitness 1994; 34 (4): 351–6PubMed Pages T, Murtra B, Ibanez J, et al. Changes in blood ammonia and lactate levels during a triathlon race. J Sports Med Phys Fitness 1994; 34 (4): 351–6PubMed
34.
go back to reference Di Prampero PE, Cortili G, Mognoni P, et al. Equation of motion of a cyclist. J Appl Physiol 1979; 47: 201–6PubMed Di Prampero PE, Cortili G, Mognoni P, et al. Equation of motion of a cyclist. J Appl Physiol 1979; 47: 201–6PubMed
35.
go back to reference Swain DP. The influence of body mass in endurance bicycling. Med Sci Sports Exerc 1994; 26: 58–63PubMed Swain DP. The influence of body mass in endurance bicycling. Med Sci Sports Exerc 1994; 26: 58–63PubMed
36.
go back to reference Hausswirth C, Lehenaff D, Dreano P, et al. Effects of cycling alone or in a sheltered position on subsequent running performance during a triathlon. Med Sci Sports Exerc 1999; 31: 599–4PubMedCrossRef Hausswirth C, Lehenaff D, Dreano P, et al. Effects of cycling alone or in a sheltered position on subsequent running performance during a triathlon. Med Sci Sports Exerc 1999; 31: 599–4PubMedCrossRef
37.
go back to reference Hausswirth C, Vallier JM, Lehenaff D, et al. Effect of two drafting modalities in cycling on running performance. Med Sci Sports Exerc 2001; 33: 485–92PubMedCrossRef Hausswirth C, Vallier JM, Lehenaff D, et al. Effect of two drafting modalities in cycling on running performance. Med Sci Sports Exerc 2001; 33: 485–92PubMedCrossRef
38.
go back to reference McCole SD, Claney K, Conte JC, et al. Energy expenditure during bicycling. J Appl Physiol 1990; 68: 748–53PubMed McCole SD, Claney K, Conte JC, et al. Energy expenditure during bicycling. J Appl Physiol 1990; 68: 748–53PubMed
39.
go back to reference Padilla S, Mujika I, Orbananos J, et al. Exercise intensity during competition time trials in professional road cycling. Med Sci Sports Exerc 2000; 32 (4): 850–6PubMedCrossRef Padilla S, Mujika I, Orbananos J, et al. Exercise intensity during competition time trials in professional road cycling. Med Sci Sports Exerc 2000; 32 (4): 850–6PubMedCrossRef
40.
go back to reference Smith D, Lee H, Pickard R, et al. Power demands of the cycle leg during elite triathlon competition. 2nd International Congress on Triathlon; 1999 Mar; Paris, 30 Smith D, Lee H, Pickard R, et al. Power demands of the cycle leg during elite triathlon competition. 2nd International Congress on Triathlon; 1999 Mar; Paris, 30
41.
go back to reference Liedl MA, Swain DP, Branch JD. Physiological effects of constant versus variables power during endurance cycling. Med Sci Sports Exerc 1999; 31: 1472–7PubMedCrossRef Liedl MA, Swain DP, Branch JD. Physiological effects of constant versus variables power during endurance cycling. Med Sci Sports Exerc 1999; 31: 1472–7PubMedCrossRef
42.
go back to reference Palmer GS, Noakes TD, Hawley JA. Effects of steady state versus stochastic exercise on subsequent cycling performance. Med Sci Sports Exerc 1997; 29: 684–7PubMedCrossRef Palmer GS, Noakes TD, Hawley JA. Effects of steady state versus stochastic exercise on subsequent cycling performance. Med Sci Sports Exerc 1997; 29: 684–7PubMedCrossRef
43.
go back to reference Palmer GS, Borghouts LB, Noakes TD, et al. Metabolic and performance responses to constant-load vs variable intensity exercise in trained cyclists. J Appl Physiol 1999; 87: 1186–96PubMed Palmer GS, Borghouts LB, Noakes TD, et al. Metabolic and performance responses to constant-load vs variable intensity exercise in trained cyclists. J Appl Physiol 1999; 87: 1186–96PubMed
44.
go back to reference Ramsay RL, Davies PD, Sharp NCC. The effect of variable power output during cycling on subsequent run performance in triathletes. Med Sci Sports Exerc 2001; 33 Suppl. 5: 341 Ramsay RL, Davies PD, Sharp NCC. The effect of variable power output during cycling on subsequent run performance in triathletes. Med Sci Sports Exerc 2001; 33 Suppl. 5: 341
45.
go back to reference Bergh U, Sjodin B, Forsberg A, et al. The relationship between body mass and oxygen uptake during running in humans. Med Sci Sports Exerc 1991; 23: 205–11PubMed Bergh U, Sjodin B, Forsberg A, et al. The relationship between body mass and oxygen uptake during running in humans. Med Sci Sports Exerc 1991; 23: 205–11PubMed
46.
go back to reference Lucia A, Joyos H, Chicharro JL. Physiological response to professional road cycling: climbers vs time trialists. Int J Sports Med 2000; 21: 505–12PubMedCrossRef Lucia A, Joyos H, Chicharro JL. Physiological response to professional road cycling: climbers vs time trialists. Int J Sports Med 2000; 21: 505–12PubMedCrossRef
47.
go back to reference Lucia A, Hoyos J, Chicharro JL. Physiology of professional road cycling. Sports Med 2001; 31: 325–37PubMedCrossRef Lucia A, Hoyos J, Chicharro JL. Physiology of professional road cycling. Sports Med 2001; 31: 325–37PubMedCrossRef
48.
go back to reference Schabort EJ, Killian SC, St Clair Gibson A, et al. Prediction of triathlon race time from laboratory testing in national triathletes. Med Sci Sports Exerc 2000; 32: 844–9PubMedCrossRef Schabort EJ, Killian SC, St Clair Gibson A, et al. Prediction of triathlon race time from laboratory testing in national triathletes. Med Sci Sports Exerc 2000; 32: 844–9PubMedCrossRef
49.
go back to reference Coast JR, Cox RH, Welch HG. Optimal pedalling rate in prolonged bouts of cycle ergometry. Med Sci Sports Exerc 1986; 18: 225–30PubMed Coast JR, Cox RH, Welch HG. Optimal pedalling rate in prolonged bouts of cycle ergometry. Med Sci Sports Exerc 1986; 18: 225–30PubMed
50.
go back to reference Chavarren J, Calbert JAL. Cycling efficiency and pedalling frequency in road cyclists. Eur J Appl Physiol 1999; 80: 555–63CrossRef Chavarren J, Calbert JAL. Cycling efficiency and pedalling frequency in road cyclists. Eur J Appl Physiol 1999; 80: 555–63CrossRef
51.
go back to reference Marsh AP, Martin PE. The association between cycling experience and preferred and most economical cadences. Med Sci Sports Exerc 1993; 25: 1269–74PubMed Marsh AP, Martin PE. The association between cycling experience and preferred and most economical cadences. Med Sci Sports Exerc 1993; 25: 1269–74PubMed
52.
go back to reference Brisswalter J, Hausswirth C, Smith D, et al. Energetically optimal cadence vs freely chosen cadence during cycling: effect of exercise duration. Int J Sports Med 2000; 21: 60–4PubMedCrossRef Brisswalter J, Hausswirth C, Smith D, et al. Energetically optimal cadence vs freely chosen cadence during cycling: effect of exercise duration. Int J Sports Med 2000; 21: 60–4PubMedCrossRef
53.
go back to reference Neptune RR, Kautz SA, Hull ML. The effect of pedalling rate on coordination in cycling. J Biomech 1997; 30: 1051–8PubMedCrossRef Neptune RR, Kautz SA, Hull ML. The effect of pedalling rate on coordination in cycling. J Biomech 1997; 30: 1051–8PubMedCrossRef
54.
go back to reference Hull ML, Gonzalez HK, Redfield R. Optimization of pedaling rate in cycling using a muscle stress-based objective function. Int J Sport Biomech 1988; 4: 1–20 Hull ML, Gonzalez HK, Redfield R. Optimization of pedaling rate in cycling using a muscle stress-based objective function. Int J Sport Biomech 1988; 4: 1–20
55.
go back to reference Takaishi T, Yasuda Y, Moritani T. Neuromuscular fatigue during prolonged pedalling exercise at different pedalling rates. Eur J Appl Physiol 1994; 69: 154–8CrossRef Takaishi T, Yasuda Y, Moritani T. Neuromuscular fatigue during prolonged pedalling exercise at different pedalling rates. Eur J Appl Physiol 1994; 69: 154–8CrossRef
56.
go back to reference Vercruyssen F, Hausswirth C, Smith D, et al. Effet de la durée de l’exercice sur le choix d’une cadence optimale de pédalage chez des triathletes. Can J Appl Physiol 2001; 26: 44–54PubMed Vercruyssen F, Hausswirth C, Smith D, et al. Effet de la durée de l’exercice sur le choix d’une cadence optimale de pédalage chez des triathletes. Can J Appl Physiol 2001; 26: 44–54PubMed
57.
go back to reference Lepers R, Millet GY, Maffiuletti NA, et al. Effect of pedalling rates on physiological response during endurance cycling. Eur J Appl Physiol 2001; 85: 392–5PubMedCrossRef Lepers R, Millet GY, Maffiuletti NA, et al. Effect of pedalling rates on physiological response during endurance cycling. Eur J Appl Physiol 2001; 85: 392–5PubMedCrossRef
58.
go back to reference Lucia A, Hoyos J, Chicharro JL. Preferred pedalling cadence in professional cycling. Med Sci Sports Exerc 2001; 33: 1361–6PubMedCrossRef Lucia A, Hoyos J, Chicharro JL. Preferred pedalling cadence in professional cycling. Med Sci Sports Exerc 2001; 33: 1361–6PubMedCrossRef
59.
go back to reference Lepers R, Hausswirth C, Maffiuletti N, et al. Evidence of neuromuscular fatigue after prolonged cycling exercise. Med Sci Sports Exerc 2000; 32: 1880–6PubMedCrossRef Lepers R, Hausswirth C, Maffiuletti N, et al. Evidence of neuromuscular fatigue after prolonged cycling exercise. Med Sci Sports Exerc 2000; 32: 1880–6PubMedCrossRef
60.
go back to reference Millet GP, Vleck VE. Physiological and biomechanical adaptations to the cycle to run transition inOlympic triathlon: review and practical recommendations for training. Br J Sports Med 2000; 34: 384–90PubMedCrossRef Millet GP, Vleck VE. Physiological and biomechanical adaptations to the cycle to run transition inOlympic triathlon: review and practical recommendations for training. Br J Sports Med 2000; 34: 384–90PubMedCrossRef
61.
go back to reference Hue O, Le Gallais D, Chollet D, et al. The influence of prior cycling on biomechanical and cardiorespiratory response profiles during running in triathletes. Eur J Appl Physiol 1998; 77: 98–105CrossRef Hue O, Le Gallais D, Chollet D, et al. The influence of prior cycling on biomechanical and cardiorespiratory response profiles during running in triathletes. Eur J Appl Physiol 1998; 77: 98–105CrossRef
62.
go back to reference Boone T, Kreider RB. Bicycle exercise before running: effect on performance. Ann Sports Med 1986; 3: 25–9 Boone T, Kreider RB. Bicycle exercise before running: effect on performance. Ann Sports Med 1986; 3: 25–9
63.
go back to reference Guezennec CY, Vallier JM, Bigard AX, et al. Increase in energy cost of running at the end of a triathlon. Eur J Appl Physiol 1996; 73: 440–5CrossRef Guezennec CY, Vallier JM, Bigard AX, et al. Increase in energy cost of running at the end of a triathlon. Eur J Appl Physiol 1996; 73: 440–5CrossRef
64.
go back to reference Millet GP, Millet GY, Hoffmann MD, et al. Alterations in running economy and mechanics after maximal cycling in triathletes: influence of performance level. Int J Sports Med 2000; 21: 127–2PubMedCrossRef Millet GP, Millet GY, Hoffmann MD, et al. Alterations in running economy and mechanics after maximal cycling in triathletes: influence of performance level. Int J Sports Med 2000; 21: 127–2PubMedCrossRef
65.
go back to reference Romijn JA, Coyle EF, Sidossis LS, et al. Regulation of endogenous fat and carbohydrate metabolism in relation to exercise intensity and duration. Am J Physiol 1993; 265: E380–1 Romijn JA, Coyle EF, Sidossis LS, et al. Regulation of endogenous fat and carbohydrate metabolism in relation to exercise intensity and duration. Am J Physiol 1993; 265: E380–1
66.
go back to reference Brisswalter J, Hausswirth C, Vercruyssen F, et al. Carbohydrate ingestion does not influence the change in energy cost during a 2-h run in well-trained triathletes. Eur J Appl Physiol 2000; 81: 108–13PubMedCrossRef Brisswalter J, Hausswirth C, Vercruyssen F, et al. Carbohydrate ingestion does not influence the change in energy cost during a 2-h run in well-trained triathletes. Eur J Appl Physiol 2000; 81: 108–13PubMedCrossRef
67.
go back to reference Quigley EJ, Richards JG. The effects of cycling on running mechanics. J Appl Biomech 1996; 12: 470–9 Quigley EJ, Richards JG. The effects of cycling on running mechanics. J Appl Biomech 1996; 12: 470–9
68.
go back to reference Millet GP, Millet GY, Candau RB. Duration and seriousness of running mechanics alterations after maximal cycling in triathletes: influence of the performance level. J Sports Med Phys Fitness 2001; 41: 147–53PubMed Millet GP, Millet GY, Candau RB. Duration and seriousness of running mechanics alterations after maximal cycling in triathletes: influence of the performance level. J Sports Med Phys Fitness 2001; 41: 147–53PubMed
69.
go back to reference Hausswirth C, Brisswalter J, Vallier JM, et al. Evolution of electromyographic signal, running economy, and perceived exertion during different prolonged exercises. Int J Sports Med 2000; 21: 429–36PubMedCrossRef Hausswirth C, Brisswalter J, Vallier JM, et al. Evolution of electromyographic signal, running economy, and perceived exertion during different prolonged exercises. Int J Sports Med 2000; 21: 429–36PubMedCrossRef
70.
go back to reference Paavolainen L, Nummela A, Rusko H, et al. Neuromuscular characteristics and fatigue during 10-km running. Int J Sports Med 1999; 20: 516–21PubMedCrossRef Paavolainen L, Nummela A, Rusko H, et al. Neuromuscular characteristics and fatigue during 10-km running. Int J Sports Med 1999; 20: 516–21PubMedCrossRef
71.
go back to reference Patterson RP, Moreno MI. Bicycle pedalling forces as a function of pedalling rate and power output. Med Sci Sports Exerc. 1990; 22: 512–6PubMed Patterson RP, Moreno MI. Bicycle pedalling forces as a function of pedalling rate and power output. Med Sci Sports Exerc. 1990; 22: 512–6PubMed
72.
go back to reference Vercruyssen F, Brisswalter J, Hausswirth C, et al. Influence of cycling cadence on subsequent running performance in triathletes. Med Sci Sports Exerc 2002; 34: 530–6PubMedCrossRef Vercruyssen F, Brisswalter J, Hausswirth C, et al. Influence of cycling cadence on subsequent running performance in triathletes. Med Sci Sports Exerc 2002; 34: 530–6PubMedCrossRef
73.
go back to reference Miura H, Kitagawa K, Ishikp T. Characteristic feature of oxygen cost at simulated laboratory triathlon test in trained triathletes. J Sports Med Phys Fitness 1999; 39: 101–6PubMed Miura H, Kitagawa K, Ishikp T. Characteristic feature of oxygen cost at simulated laboratory triathlon test in trained triathletes. J Sports Med Phys Fitness 1999; 39: 101–6PubMed
74.
go back to reference Hue O, Le Gallais D, Boussana A, et al. Performance level and cardiopulmonary responses during a cycle-run trial. Int J Sports Med 2001; 21: 250–5CrossRef Hue O, Le Gallais D, Boussana A, et al. Performance level and cardiopulmonary responses during a cycle-run trial. Int J Sports Med 2001; 21: 250–5CrossRef
75.
go back to reference Hausswirth C, Bigard AX, Guezennec CY. Relationships between running mechanics and energy cost of running at the end of a triathlon and a marathon. Int J Sports Med 1997; 18: 330–9PubMedCrossRef Hausswirth C, Bigard AX, Guezennec CY. Relationships between running mechanics and energy cost of running at the end of a triathlon and a marathon. Int J Sports Med 1997; 18: 330–9PubMedCrossRef
Metadata
Title
Specific Aspects of Contemporary Triathlon
Implications for Physiological Analysis and Performance
Authors
David J. Bentley
Grégoire P. Millet
Verónica E. Vleck
Lars R. McNaughton
Publication date
01-05-2002
Publisher
Springer International Publishing
Published in
Sports Medicine / Issue 6/2002
Print ISSN: 0112-1642
Electronic ISSN: 1179-2035
DOI
https://doi.org/10.2165/00007256-200232060-00001