Mechanical power in running:: a comparison of different approaches

被引:44
作者
Arampatzis, A [1 ]
Knicker, A [1 ]
Metzler, V [1 ]
Brüggemann, GP [1 ]
机构
[1] GermanSport Univ Cologne, Inst Athlet & Gynast, D-50933 Cologne, Germany
关键词
running; mechanical work; mechanical power;
D O I
10.1016/S0021-9290(99)00187-6
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
The purposes of the present study were: (1) to compare four different methods of calculating mechanical power in running on the basis of comparable data over a wide range of running velocity; (2) to examine the linearity of the relation between mechanical power as calculated with the four methods and running velocity. Eight runners participated in the investigation (height: 1.82 +/- 0.03 m, body mass: 81.05 +/- 4.69 kg). A Kistler force platform registered all components of the ground reaction force (1000 Hz) during one foot ground contact, which was additionally video taped using two high-speed video cameras running at 120 Hz. Four different methods were used to calculate mechanical power. Two methods determined the mechanical power due to the work done on the athletes' center of mass and two were calculated from the motion of the athletes' segments. The four different methods provided different relations between mechanical power and running velocity. The calculations on the basis of kinematic data cannot be recommended to determine efficiency of movement. The methods based on ground reaction force measurements revealed significant linear relations (r(2) = 0.90, r(2) = 0.84) between running velocity and mechanical power. (C) 2000 Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:457 / 463
页数:7
相关论文
共 34 条
[1]   AN ENERGY-SOURCES AND FRACTIONS APPROACH TO THE MECHANICAL ENERGY-EXPENDITURE PROBLEM .2. MOVEMENT OF THE MULTILINK CHAIN MODEL [J].
ALESHINSKY, SY .
JOURNAL OF BIOMECHANICS, 1986, 19 (04) :295-300
[2]   A mathematical high bar human body model for analysing and interpreting mechanical-energetic processes on the high bar [J].
Arampatzis, A ;
Brüggemann, GP .
JOURNAL OF BIOMECHANICS, 1998, 31 (12) :1083-1092
[3]  
ARAMPATZIS A, 1997, 26 C INT SOC BIOM
[4]   MECHANICAL ENERGY ASSESSMENT WITH DIFFERENT METHODS DURING RUNNING [J].
BELLI, A ;
AVELA, J ;
KOMI, PV .
INTERNATIONAL JOURNAL OF SPORTS MEDICINE, 1993, 14 (05) :252-256
[5]   Energy cost and running mechanics during a treadmill run to voluntary exhaustion in humans [J].
Candau, R ;
Belli, A ;
Millet, GY ;
Georges, D ;
Barbier, B ;
Rouillon, JD .
EUROPEAN JOURNAL OF APPLIED PHYSIOLOGY, 1998, 77 (06) :479-485
[6]   THE 2 POWER LIMITS CONDITIONING STEP FREQUENCY IN HUMAN RUNNING [J].
CAVAGNA, GA ;
WILLEMS, PA ;
FRANZETTI, P ;
DETREMBLEUR, C .
JOURNAL OF PHYSIOLOGY-LONDON, 1991, 437 :95-108
[7]   MECHANICAL WORK AND EFFICIENCY IN LEVEL WALKING AND RUNNING [J].
CAVAGNA, GA ;
KANEKO, M .
JOURNAL OF PHYSIOLOGY-LONDON, 1977, 268 (02) :467-481
[8]  
Clauser C.E., 1969, WEIGHT VOLUME CTR MA
[9]   The spring-mass model and the energy cost of treadmill running [J].
Dalleau, G ;
Belli, A ;
Bourdin, M ;
Lacour, JR .
EUROPEAN JOURNAL OF APPLIED PHYSIOLOGY AND OCCUPATIONAL PHYSIOLOGY, 1998, 77 (03) :257-263
[10]  
DANIELS J, 1992, MED SCI SPORT EXER, V24, P483