Mechanical power and segmental contribution to force impulses in long jump take-off
- 1 August 1979
- journal article
- research article
- Published by Springer Nature in European Journal of Applied Physiology
- Vol. 41 (4) , 267-274
- https://doi.org/10.1007/bf00429743
Abstract
Changes in total mechanical work, its partitioning into different energy states, mechanical power, force-time characteristics, force impulses of body segments and mass center's pathway characteristics during long jump take-off were investigated on four national and six ordinary level athletes. Both cinematographic and force-platform techniques were used. The data showed that the national level jumpers had higher run-up and higher take-off (release) velocities in horizontal and vertical directions. In addition, they were able to utilize efficiently the elastic energy stored in the leg extensor muscles at take-off impact. This was seen in high support leg eccentric and concentric forces, which were produced in short contact times. The ordinary level athletes had greater variability in the investigated attributes, and they reached their maximum length of jumps in many different ways. Cinematically the greatest difference between the subject groups was observed in the timing of the various body segment movements. In better athletes all the body parts (arms, trunk, and legs) had decelerating horizontal impulses, but in all ordinary level athletes the horizontal impulse of the swing leg was accelerating during take-off.Keywords
This publication has 11 references indexed in Scilit:
- UTILIZATION OF STORED ELASTIC ENERGY IN LEG EXTENSOR MUSCLES BY MEN AND WOMEN1978
- Mechanical energy states during runningEuropean Journal of Applied Physiology, 1978
- Apparent Efficiency and Storage of Elastic Energy in Human Muscles during ExerciseActa Physiologica Scandinavica, 1974
- Muscular control of landing from unexpected falls in manThe Journal of Physiology, 1971
- The mechanics of sprint runningThe Journal of Physiology, 1971
- Force relationships of the running long jumpMedicine & Science in Sports & Exercise, 1970
- Positive work done by a previously stretched muscle.Journal of Applied Physiology, 1968
- Effect of negative work on the amount of positive work performed by an isolated muscleJournal of Applied Physiology, 1965
- Mechanical work in runningJournal of Applied Physiology, 1964
- MAN AS A SOURCE OF MECHANICAL POWERErgonomics, 1960