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Published in: European Journal of Applied Physiology 5/2009

01-11-2009 | Short Communication

Energy systems contributions in 2,000 m race simulation: a comparison among rowing ergometers and water

Authors: Fernando de Campos Mello, Rômulo Cássio de Moraes Bertuzzi, Patricia Moreno Grangeiro, Emerson Franchini

Published in: European Journal of Applied Physiology | Issue 5/2009

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Abstract

This study investigated the energy system contributions of rowers in three different conditions: rowing on an ergometer without and with the slide and rowing in the water. For this purpose, eight rowers were submitted to 2,000 m race simulations in each of the situations defined above. The fractions of the aerobic (W AER), anaerobic alactic (W PCR) and anaerobic lactic (W [La]) systems were calculated based on the oxygen uptake, the fast component of excess post-exercise oxygen uptake and changes in net blood lactate, respectively. In the water, the metabolic work was significantly higher [(851 (82) kJ] than during both ergometer [674 (60) kJ] and ergometer with slide [663 (65) kJ] (P ≤ 0.05). The time in the water [515 (11) s] was higher (P < 0.001) than in the ergometers with [398 (10) s] and without the slide [402 (15) s], resulting in no difference when relative energy expenditure was considered: in the water [99 (9) kJ min−1], ergometer without the slide [99.6 (9) kJ min−1] and ergometer with the slide [100.2 (9.6) kJ min−1]. The respective contributions of the W AER, W PCR and W [La] systems were water = 87 (2), 7 (2) and 6 (2)%, ergometer = 84 (2), 7 (2) and 9 (2)%, and ergometer with the slide = 84 (2), 7 (2) and 9 (1)%. \( \dot{V}{\text{O}}_{ 2} \), HR and lactate were not different among conditions. These results seem to indicate that the ergometer braking system simulates conditions of a bigger and faster boat and not a single scull. Probably, a 2,500 m test should be used to properly simulate in the water single-scull race.
Literature
go back to reference Beneke R (1995) Anaerobic threshold, individual anaerobic threshold, and maximal lactate steady state in rowing. Med Sci Sports Exerc 27:863–867PubMed Beneke R (1995) Anaerobic threshold, individual anaerobic threshold, and maximal lactate steady state in rowing. Med Sci Sports Exerc 27:863–867PubMed
go back to reference Beneke R, Bleif I, Leithauser RM, Hutler M (2002) How anaerobic is the Wingate test? Eur J Appl Physiol 87:388–392CrossRefPubMed Beneke R, Bleif I, Leithauser RM, Hutler M (2002) How anaerobic is the Wingate test? Eur J Appl Physiol 87:388–392CrossRefPubMed
go back to reference Beneke R, Beyer T, Jachner C, Erasmus J, Hutler M (2004) Energetics of karate kumite. Eur J Appl Physiol 92:518–523CrossRefPubMed Beneke R, Beyer T, Jachner C, Erasmus J, Hutler M (2004) Energetics of karate kumite. Eur J Appl Physiol 92:518–523CrossRefPubMed
go back to reference Bertuzzi RCM, Franchini E, Kokubun E, Kiss MAPDM (2007) Energy system contributions in indoor rock climbing. Eur J Appl Physiol 101:293–300CrossRefPubMed Bertuzzi RCM, Franchini E, Kokubun E, Kiss MAPDM (2007) Energy system contributions in indoor rock climbing. Eur J Appl Physiol 101:293–300CrossRefPubMed
go back to reference di Prampero PE, Ferretti G (1999) The energetics of anaerobic muscle metabolism: a reappraisal of older and recent concepts. Respir Physiol 118:10–115CrossRef di Prampero PE, Ferretti G (1999) The energetics of anaerobic muscle metabolism: a reappraisal of older and recent concepts. Respir Physiol 118:10–115CrossRef
go back to reference Elliott B, Lyttle A, Birkett O (2002) The RowPerfect ergometer: a training aid for on-water single scull rowing. Sports Biomech 1:123–134CrossRefPubMed Elliott B, Lyttle A, Birkett O (2002) The RowPerfect ergometer: a training aid for on-water single scull rowing. Sports Biomech 1:123–134CrossRefPubMed
go back to reference Gluckman L (2005) Ergometer technique. In: Volker N (ed) Rowing faster. Champaing, Human Kinetics, pp 159–208 Gluckman L (2005) Ergometer technique. In: Volker N (ed) Rowing faster. Champaing, Human Kinetics, pp 159–208
go back to reference Hagerman FC (1994) Physiology and nutrition for rowing. In: Lamb DR, Knuttgen HG, Murray R (eds) Physiology and nutrition for competitive sport. Cooper Publishing Group, Carmel, pp 221–302 Hagerman FC (1994) Physiology and nutrition for rowing. In: Lamb DR, Knuttgen HG, Murray R (eds) Physiology and nutrition for competitive sport. Cooper Publishing Group, Carmel, pp 221–302
go back to reference Hagerman FC (2000) Physiology of competitive rowing. In: Garret WE Jr, Kirkendall DT (eds) Exercise and sport science. Lippincott Williams & Wilkins, Philadelphia, pp 843–873 Hagerman FC (2000) Physiology of competitive rowing. In: Garret WE Jr, Kirkendall DT (eds) Exercise and sport science. Lippincott Williams & Wilkins, Philadelphia, pp 843–873
go back to reference Hagerman FC, Connors MC, Gault JA, Hagerman GR, Polinski WJ (1978) Energy expenditure during simulated rowing. J Appl Physiol 45:87–93PubMed Hagerman FC, Connors MC, Gault JA, Hagerman GR, Polinski WJ (1978) Energy expenditure during simulated rowing. J Appl Physiol 45:87–93PubMed
go back to reference Hausswirth C, Bigard AX LE, Chevalier JM (1997) The Cosmed K4 telemetry system as an accurate device for oxygen uptake measurements during exercise. Int J Sports Med 18:449–453CrossRefPubMed Hausswirth C, Bigard AX LE, Chevalier JM (1997) The Cosmed K4 telemetry system as an accurate device for oxygen uptake measurements during exercise. Int J Sports Med 18:449–453CrossRefPubMed
go back to reference Jürimäe J, Mäestu J, Jürimäe T, Pihl E (2000) Prediction of rowing performance on single sculls from metabolic and anthropometric variables. J Hum Mov Stud 38:123–136 Jürimäe J, Mäestu J, Jürimäe T, Pihl E (2000) Prediction of rowing performance on single sculls from metabolic and anthropometric variables. J Hum Mov Stud 38:123–136
go back to reference Kaneda DA, Jensen RL, Williams SE, Watts PB (2008) Effects of drag factor on physiological aspects of rowing. Int J Sports Med 29:390–394CrossRef Kaneda DA, Jensen RL, Williams SE, Watts PB (2008) Effects of drag factor on physiological aspects of rowing. Int J Sports Med 29:390–394CrossRef
go back to reference Mäestu J, Jürimäe J, Jürimäe T (2000) Prediction of rowing performance from selected physiological variables—differences between lightweight and open class rowers. Med Sport 53:247–254 Mäestu J, Jürimäe J, Jürimäe T (2000) Prediction of rowing performance from selected physiological variables—differences between lightweight and open class rowers. Med Sport 53:247–254
go back to reference Mäestu J, Jürimäe J, Jürimäe T (2005) Monitoring of performance and training in rowing. Sports Med 35:597–617CrossRefPubMed Mäestu J, Jürimäe J, Jürimäe T (2005) Monitoring of performance and training in rowing. Sports Med 35:597–617CrossRefPubMed
go back to reference Messonnier L, Aranda-Berthouze SE, Bourdin M, Bredel Y, Lacour J (2005) Rowing performance and estimated training load. Int J Sports Med 26:376–382CrossRefPubMed Messonnier L, Aranda-Berthouze SE, Bourdin M, Bredel Y, Lacour J (2005) Rowing performance and estimated training load. Int J Sports Med 26:376–382CrossRefPubMed
go back to reference Mickelson TC, Hagerman FC (1982) Anaerobic threshold measurements of elite oarsmen. Med Sci Sports Exerc 14:440–444PubMed Mickelson TC, Hagerman FC (1982) Anaerobic threshold measurements of elite oarsmen. Med Sci Sports Exerc 14:440–444PubMed
go back to reference Pripstein LP, Rhodes EC, McKenzie DC, Coutts KD (1999) Aerobic and anaerobic energy during a 2-km race simulation in female rowers. Eur J Appl Physiol 79:491–494CrossRef Pripstein LP, Rhodes EC, McKenzie DC, Coutts KD (1999) Aerobic and anaerobic energy during a 2-km race simulation in female rowers. Eur J Appl Physiol 79:491–494CrossRef
go back to reference Riechman SE, Zoller RF, Balasekaran G, Goss FL, Robertson RJ (2002) Prediction of 2000 m indoor rowing performance using a 30 s sprint and maximal oxygen uptake. J Sports Sci 20:681–687CrossRefPubMed Riechman SE, Zoller RF, Balasekaran G, Goss FL, Robertson RJ (2002) Prediction of 2000 m indoor rowing performance using a 30 s sprint and maximal oxygen uptake. J Sports Sci 20:681–687CrossRefPubMed
go back to reference Russel AP, Rossignol PFLE, Sparrow WA (1998) Prediction of elite schoolboy 2000-m rowing ergometer performance from metabolic, anthropometric and strength variables. J Sports Sci 16:749–754CrossRef Russel AP, Rossignol PFLE, Sparrow WA (1998) Prediction of elite schoolboy 2000-m rowing ergometer performance from metabolic, anthropometric and strength variables. J Sports Sci 16:749–754CrossRef
go back to reference Zar JH (1999) Biostatistical analysis. New Jersey, Prentice Hall Zar JH (1999) Biostatistical analysis. New Jersey, Prentice Hall
Metadata
Title
Energy systems contributions in 2,000 m race simulation: a comparison among rowing ergometers and water
Authors
Fernando de Campos Mello
Rômulo Cássio de Moraes Bertuzzi
Patricia Moreno Grangeiro
Emerson Franchini
Publication date
01-11-2009
Publisher
Springer-Verlag
Published in
European Journal of Applied Physiology / Issue 5/2009
Print ISSN: 1439-6319
Electronic ISSN: 1439-6327
DOI
https://doi.org/10.1007/s00421-009-1172-9

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