Literatura académica sobre el tema "VO2p kinetic"
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Artículos de revistas sobre el tema "VO2p kinetic"
Grassi, B., D. C. Poole, R. S. Richardson, D. R. Knight, B. K. Erickson y P. D. Wagner. "Muscle O2 uptake kinetics in humans: implications for metabolic control". Journal of Applied Physiology 80, n.º 3 (1 de marzo de 1996): 988–98. http://dx.doi.org/10.1152/jappl.1996.80.3.988.
Texto completoStathokostas, Liza, John M. Kowalchuk, Robert J. Petrella y Donald H. Paterson. "Moderate and heavy oxygen uptake kinetics in postmenopausal women". Applied Physiology, Nutrition, and Metabolism 34, n.º 6 (diciembre de 2009): 1065–72. http://dx.doi.org/10.1139/h09-107.
Texto completoBuekers, Joren, Jan Theunis, Alberto Peña Fernández, Emiel F. M. Wouters, Martijn A. Spruit, Patrick De Boever y Jean-Marie Aerts. "Box-Jenkins Transfer Function Modelling for Reliable Determination of VO2 Kinetics in Patients with COPD". Applied Sciences 9, n.º 9 (1 de mayo de 2019): 1822. http://dx.doi.org/10.3390/app9091822.
Texto completoLarson, Rebecca D., Monica Barton, John W. Farrell III, Gregory S. Cantrell, David J. Lantis, Christopher D. Black y Carl J. Ade. "Evaluation of Oxygen Uptake Kinetic Asymmetries in Patients with Multiple Sclerosis: A Pilot Study". International Journal of Kinesiology and Sports Science 6, n.º 4 (31 de octubre de 2018): 21. http://dx.doi.org/10.7575/aiac.ijkss.v.6n.4p.21.
Texto completoCleland, Sarah Margaret, Juan Manuel Murias, John Michael Kowalchuk y Donald Hugh Paterson. "Effects of prior heavy-intensity exercise on oxygen uptake and muscle deoxygenation kinetics of a subsequent heavy-intensity cycling and knee-extension exercise". Applied Physiology, Nutrition, and Metabolism 37, n.º 1 (febrero de 2012): 138–48. http://dx.doi.org/10.1139/h11-143.
Texto completoMorton, R. H. "Delayed or accelerated oxygen uptake kinetics in the transition from prior exercise?" Journal of Applied Physiology 62, n.º 2 (1 de febrero de 1987): 844–46. http://dx.doi.org/10.1152/jappl.1987.62.2.844.
Texto completoShoemaker, J. K., L. Hodge y R. L. Hughson. "Cardiorespiratory kinetics and femoral artery blood velocity during dynamic knee extension exercise". Journal of Applied Physiology 77, n.º 6 (1 de diciembre de 1994): 2625–32. http://dx.doi.org/10.1152/jappl.1994.77.6.2625.
Texto completoHughson, R. L., J. E. Cochrane y G. C. Butler. "Faster O2 uptake kinetics at onset of supine exercise with than without lower body negative pressure". Journal of Applied Physiology 75, n.º 5 (1 de noviembre de 1993): 1962–67. http://dx.doi.org/10.1152/jappl.1993.75.5.1962.
Texto completoXing, H. C., J. E. Cochrane, Y. Yamamoto y R. L. Hughson. "Frequency domain analysis of ventilation and gas exchange kinetics in hypoxic exercise". Journal of Applied Physiology 71, n.º 6 (1 de diciembre de 1991): 2394–401. http://dx.doi.org/10.1152/jappl.1991.71.6.2394.
Texto completoLin, Xueyan, Wenyue Li, Xuan Pan, Shu Wang y Zhaoyang Fan. "Electrocatalytic and Conductive Vanadium Oxide on Carbonized Bacterial Cellulose Aerogel for the Sulfur Cathode in Li-S Batteries". Batteries 9, n.º 1 (26 de diciembre de 2022): 14. http://dx.doi.org/10.3390/batteries9010014.
Texto completoTesis sobre el tema "VO2p kinetic"
Draper, Stephen B. "VO2 kinetics in severe intensity running". Thesis, University of Chichester, 2002. http://eprints.chi.ac.uk/799/.
Texto completoLindblom, Hampus. "VO2-kinetik vid arm- och benarbete samt bara benarbete". Thesis, Mittuniversitetet, 2009. http://urn.kb.se/resolve?urn=urn:nbn:se:miun:diva-9203.
Texto completoDiMenna, Fred J. "The influence of muscle fibre recruitment on VO2 kinetics". Thesis, University of Exeter, 2010. http://hdl.handle.net/10036/106719.
Texto completoJakaitė, Jurgita. "18-22 metų merginų, sergančių 1 tipo cukriniu diabetu, greitosios adaptacijos aerobiniams ėjimo krūviams ypatumai". Master's thesis, Lithuanian Academic Libraries Network (LABT), 2012. http://vddb.laba.lt/obj/LT-eLABa-0001:E.02~2012~D_20120620_134458-38602.
Texto completoHypothesis: We thought that type 1 diabetic girls vegetative system parameters during exercise will be higher than the dancers and untrained. The aim of the study: To evaluate the type 1 diabetic quick adaptation of aerobic walking loads, characteristics Subjects: 10 dancers, 12 untrained healthy women, 12 patients with type 1 diabetic women. The methods of the study: 1. Body composition 2. gas analysis 3. pulsometry 4. biochemical blood analysis 5. standard 6-minute treadmill walk test 6. mathematical statistics. The organization of the study: The study was conducted from 2011 to 2012 years. The study included 34 women were divided into 3 groups: group I consisted of type 1 diabetic girls (n = 12), group II dancers (n = 10), III group of healthy untrained girls (n = 12). The participants were between 18-22 years of age. Before the study subjects was performed body composition analysis with Tanita TBF-300-A."Tanita TBF-300-A subjects were found on scales: body weight, BMI (body mass index), fat mass (%), fat mass (kg).All the girls participated in the study, carried out a standard 6-minute treadmill walk test VIASYS LE 200 CE (Germany) in accordance with (1 TABLE). Standard 6-minute walk test was carried out directly by the gas analyzer MDS "Oxycon Mobile (Jaeger, Germany). Total 6-minute walk test in a standard treadmill VIASYS LE 200 CE (Germany) and recovery time using a portable system Oxycon Mobile has been recorded in gas exchange rates of oxygen consumption (VO2)... [to full text]
McNulty, Craig R. "The complex reality of VO2 kinetics to steady state: Reassessment of the models used to quantify and interpret VO2 kinetics, steady state, and time to steady state". Thesis, Queensland University of Technology, 2017. https://eprints.qut.edu.au/108025/2/Craig_McNulty_Thesis.pdf.
Texto completoWilliams, Christine Suzanne. "The Effect of Running Speed on VO2 Kinetics in the Severe Exercise Domain". Thesis, University of North Texas, 1997. https://digital.library.unt.edu/ark:/67531/metadc277817/.
Texto completoUpdyke, Rhonda S. "The Effect of Mode and Intensity on Vo2 Kinetics in the Severe Intensity Domain". Thesis, University of North Texas, 2000. https://digital.library.unt.edu/ark:/67531/metadc2493/.
Texto completoGoodwin, Matthew Lawrence Gladden L. Bruce. "VO2 on-kinetics in isolated canine muscle in situ during slowed convective O2 delivery". Auburn, Ala, 2008. http://hdl.handle.net/10415/1464.
Texto completoAguiar, Rafael Alves de. "Desempenho e fadiga em sprints repetidos: a influência de características fisiológicas e perfil de treinamento". Universidade do Estado de Santa Catarina, 2013. http://tede.udesc.br/handle/handle/256.
Texto completoCoordenação de Aperfeiçoamento de Pessoal de Nível Superior
The aim of this study was to determine the mode and the level that the physiological and performance variables influence in repeated running sprint ability. To this end, the study used 27 males participants (10 sprint runners (VEL), 8 long-distance runners (FUN) and 9 active subjects (ATI)). In a synthetic track these subjects were submitted to following tests on different days: 1) Incremental testing for determination of VO2max and maximal aerobic velocity (MAV); 2) constant velocity test at 110%MAV for determination of on- and off transition kinetics of VO2 and accumulated deficit oxygen (AOD); 3; 1 minute all-out test for determination of blood lactate concentration ([lac]s) kinetics and off-transition kinetics of VO2; and 4) repeated sprint test (10 sprints of 35 m departing every 20 s) for determine the total time of sprints, best sprint and percentage decrement score (Sdec). In every tests the [lac]s and blood pH were analyzed for observe the difference between maximal value after exercise and rest value (i.e. ∆[lac]s e ∆pH).Total time was significant different between all groups (VEL, 49,5 ± 0,9 s; FUN, 52,6 ± 3,1 s; ATI, 55,9s ± 2,6 s) and Sdec was significant lower in long distance runners compared to other groups (VEL, 8,5 ± 2,5%; FUN, 4,0 ± 2,0%; ATI, 8,3 ± 4,1%). Total time was significant correlated with best sprint (r 0,86), AOD in T110 (r = -,061) and T1min (r = -0,60), ∆[lac]s (r = -0,64) and ∆pH (r = 0,59) in RS, primary time constant (tau1) (r = -0,45) e O2 consumed in fast component after exercise in T1min (r = -0,44). Differently, Sdec was significant correlated with aerobic variables (VO2max, r = -0,59; MAV, r = -0,55; tau1 during exercise, r = 0,41), tau1 after T110 (r = 0,59) and T1min (r = 0,47), as well as, with lactate exchange ability (r 0,75). Therefore, it was concluded that repeated sprint performance is strongly influenced by anaerobic characteristics, while mechanisms related to removal of metabolites originated by anaerobic metabolism and aerobic indices influence to decrease fatigue in RS.
O objetivo deste estudo foi determinar o modo e o grau que as variáveis fisiológicas e de desempenho influenciam no desempenho em sprints repetidos. Para este fim, participaram do estudo 27 homens, sendo 10 corredores velocistas (VEL), 8 corredores fundistas (FUN) e 9 sujeitos ativos (ATI). Em uma pista sintética de atletismo estes sujeitos foram submetidos, em dias diferentes, aos seguintes testes: 1) teste incremental para determinação do VO2max e da velocidade aeróbia máxima (MAV); 2) teste de velocidade constante realizado a 110%MAV (T110) para determinar a cinética do VO2 durante e após o exercício e o déficit de oxigênio (AOD); 3) teste de um minuto máximo (T1min), para determinar a cinética da concentração de lactato sanguíneo ([lac]s) e a cinética do VO2 após o exercício; e 4) teste de sprints repetidos (RS) (10 sprints de 35m, intercalados com 20s de recuperação) para determinar o tempo total dos sprints, melhor sprint e a queda do escore em percentual (Sdec). Em todos os testes a [lac]s e o pH sanguíneo foram analisados para observar a diferença entre o valor máximo após o exercício e o valor de repouso (i.e. ∆[lac]s e ∆pH). Tempo total em RS foi significativamente diferente entre todos os grupos (VEL, 49,5 ± 0,9 s; FUN, 52,6 ± 3,1 s; ATI, 55,9s ± 2,6 s) e Sdec foi significativamente inferior em fundistas comparado aos outros grupos (VEL, 8,5 ± 2,5%; FUN, 4,0 ± 2,0%; ATI, 8,3 ± 4,1%). Tempo total foi correlacionado significativamente com o melhor sprint (r = 0,86), com o AOD no T110 (r = -0,61) e no T1min (r = -0,60), com o ∆[lac]s (r = -0,64) e ∆pH (r = 0,59) do RS, com a constante de tempo primária (tau1) (r = -0,45) e O2 consumido pelo componente rápido após o exercício no T1min (r = -0,44). Diferentemente, o Sdec foi correlacionado significativamente com variáveis aeróbias (VO2max, r = -0,59; MAV, r = -0,55; tau1 durante T110, r = 0,41), tau1 após T110 (r = 0,59) e T1min (r = 0,47), bem como, com a constante de tempo da entrada do lactato no compartimento sanguíneo no T1min (r = -0,75). Portanto, foi concluído que o desempenho em sprints repetidos é altamente influenciado por características anaeróbias, enquanto, mecanismos relacionados à remoção dos metabólitos originados pelo metabolismo anaeróbio e índices aeróbios influenciam para diminuir a fadiga em RS.
Machado, Carlos Eduardo Polazzo [UNESP]. "Efeitos do exercício prévio de intensidade supramáxima sobre a cinética do consumo de oxigênio em ciclistas treinados". Universidade Estadual Paulista (UNESP), 2005. http://hdl.handle.net/11449/87365.
Texto completoConselho Nacional de Desenvolvimento Científico e Tecnológico (CNPq)
O surgimento de equipamentos que permitem a análise do consumo de oxigênio (VO2) respiração-a- respiração, tem despertado um grande interesse nos fatores que podem influenciar sua cinética no início do exercício (resposta on). Entre os fatores mais estudados, temos a intensidade do exercício e o nível do treinamento dos sujeitos. Estes dados sugerem que a influência do exercício prévio sobre o VO2 durante o exercício incremental só ocorreria em baixas intensidades de esforço (< 60% VO2max). Os objetivos deste estudo foram: a) analisar a influência do exercício supramáximo realizado previamente, sobre os parâmetros da cinética do VO2 durante a transição repouso-exercício realizado a 50 e 70% VO2max, e b) analisar a influência do exercício supramáximo realizado previamente sobre as respostas cardiorrespiratórias e metabólicas durante o exercício de carga constante realizado a 50 e 70% VO2max. Para este estudo foram utilizados 14 ciclistas bem treinados do sexo masculino (VO2max = 63,4 + 6,5 ml.kg-1.min-1; idade = 21,4 + 3,5 anos; massa corporal = 68,1 + 6,8 kg; estatura = 174,9 + 4,6 cm) que executaram cinco testes: 1) exercício contínuo progressivo até a exaustão voluntária para a determinação do VO2max e as cargas correspondentes a 50, 70 e 120% VO2max e; 2) Quatro testes de carga constante, executados de forma aleatória e em dias separados. Nestes testes os sujeitos pedalaram durante 20 minutos em duas diferentes intensidades de exercício (50 e 70% do VO2max), realizados com e sem a execução prévia de um exercício supramáximo (120% VO2max). Foi analisada a resposta on do VO2 e também as respostas cardiorrespiratórias e metabólicas durante 20 minutos de exercício com carga constante realizados a 50 e 70% VO2max...
The appearance of an equipment that permits the oxygen consumption analysis (VO2) breath by breath has arisen a huge interest in factors which can influence its dynamics in the beginning of exercise (on response). Among the more studied factors, are the exercise intensity and training status. Meanwhile, few studies have analyzed the possible effects of previous exercise on the VO2response during exercise at moderate domain. In our lab, we have verified recently that during an incremental test performed eight minutes after a supramaximum exercise (120% VO2max), there was a significant VO2 increase in the first stage, while, at the intensities between 60% and VO2max, no alteration of VO2 was found, in accordance with the results existent in the literature. These results suggest that the influence of a previous exercise on the VO2 during the incremental exercise would just occur at low intensities (< 60% VO2 max). This model, meanwhile, does not permit to isolate a possible time effect of the exercise, once the highest intensities were always done after two or three stages, which could have favored a recovery, at least partially, of the metabolic conditions. In this way, the data until the present moment do not permit to identify if the normalization of VO2 during the incremental exercise is more dependent on the time and/or the exercise intensity. Therefore, the aims of this study were: a) to analyze the influence of the previous supramaximum exercise on the VO2 kinetics during the rest-exercise transition carried out at 50 and 70% VO2max, and b) to analyze the influence of the previous supramaximum exercise on the cardiorespiratory and metabolic responses during the constant loading exercise performed at 50 and 70% VO2max... (Complete abstract, click eletronic address below)
Capítulos de libros sobre el tema "VO2p kinetic"
Lynch, Gordon S., David G. Harrison, Hanjoong Jo, Charles Searles, Philippe Connes, Christopher E. Kline, C. Castagna et al. "Slow Component of VO2 on-kinetics". En Encyclopedia of Exercise Medicine in Health and Disease, 794–95. Berlin, Heidelberg: Springer Berlin Heidelberg, 2012. http://dx.doi.org/10.1007/978-3-540-29807-6_3045.
Texto completo"VO2 On-Kinetics". En Encyclopedia of Exercise Medicine in Health and Disease, 891. Berlin, Heidelberg: Springer Berlin Heidelberg, 2012. http://dx.doi.org/10.1007/978-3-540-29807-6_3178.
Texto completoActas de conferencias sobre el tema "VO2p kinetic"
Buekers, Joren, Patrick De Boever, Alberto Peña Fernández, Jan Theunis, Emiel Wouters, Martijn Spruit y Jean-Marie Aerts. "Box-Jenkins transfer function modelling for accurate determination of VO2 kinetics in COPD patients". En ERS International Congress 2019 abstracts. European Respiratory Society, 2019. http://dx.doi.org/10.1183/13993003.congress-2019.pa4134.
Texto completo