PubMed HealthSearch

Biomedical subjects

O Aura

Publications and source records attributed to O Aura.

8 recordsLinked to original sources

Estimation of errors in mechanical efficiency.

Errors in measurements of mechanical work, net energy expenditure and mechanical efficiency (ME) were calculated, when subjects performed isolated eccentric or concentric muscle actions and combinations of these actions [stretch-shortening cycle (SSC) exercises] with a special sledge apparatus. The relative error of mechanical work was 6.1%. When estimating the error of energy metabolism from oxygen consumption the error would be about 4% (McArdle et al. 1981). The maximum error of ME was the sum of these two values (10.1%). Obviously the error of ME was less than 5%, because 30 muscle actions were averaged and, in addition, the errors of mechanical work and energy expenditure were not in the same direction every time. It was concluded that mechanical work can be determined accurately when the force is measured as a function of the moved distance of the sledge. Thus calculation of ME can be performed quite reliably in isolated eccentric and concentric exercises. The greatest problems were, however, in the SSC exercises, where the errors were higher, because of the problems of dividing the net energy expenditure into eccentric and concentric phases. Therefore, further developments must be made to minimize the errors in measurement and calculation during SSC-exercise.

Biomechanical Phenomena

Fatigue during stretch-shortening cycle exercises: changes in mechanical performance of human skeletal muscle.

Stretch-shortening cycle (SSC), which is a normal contraction behavior of muscle, was used as a model to investigate muscular fatigue. Nine male volunteers were subjected to 100 repeated and exhaustive SSC contractions of the forearm extensors using a special sledge apparatus incorporating a force plate system. The fatigue contractions were performed on submaximal levels but the before-after comparison also included maximal drop-jump condition on the sledge as well as falls on to the floor. The results indicated that in the 100 submaximal SSCs the fatigue was characterized by increases in the contact times for both the eccentric and concentric phases of SSC, but the influence was more pronounced on the concentric part. The force-time curves during contact on the platform were influenced by fatigue so that the initial force peak became higher and the subsequent initial drop of force more pronounced. During submaximal and maximal drops, the angular velocities changed in the two phases of SSC. With progressing fatigue, the eccentric maximal angular velocity increased and the corresponding concentric velocities decreased. These changes were accompanied by slight changes in the elbow joint mechanism with respect to the contact, release, and maximal flexion angles. The results suggest that repeated SSC induces fatigue and the fatigue effects on the mechanical behavior of the muscle are very much similar to those induced by either isometric or concentric fatigue contractions. However, the transfer of the energy between eccentric and concentric phases was drastically reduced and this implies that SSCs can be used effectively to examine the fatiguability of the system regulating muscle stiffness during exercise.

Adult

EMG activity of the leg extensor muscles with special reference to mechanical efficiency in concentric and eccentric exercise.

Integrated electromyographic (IEMG) activity of the vastus lateralis and vastus medialis muscles were recorded when normal male subjects performed isolated concentric and eccentric exercises on a special "sledge" apparatus, which was connected to a force plate. Four different submaximal energy levels were investigated in both exercise types. A single set of exercise included 80 contractions. The net mechanical efficiency was computed from the force plate record (mechanical work) and from the analysis of expired air (energy expenditure). The results indicated that IEMG activity increased with increasing knee angular velocity or mechanical work in concentric exercise, but in eccentric exercise IEMG stayed at very low levels at all energy levels. The net mechanical efficiency of concentric exercise was on the average 19.4% +/- 2.8%, and it did not change much with change in the narrow range of peak angular velocities. In eccentric exercise, however, mechanical efficiency increased in all subjects with increasing mechanical work or stretch velocity reaching in many instances values over 100%. This increase in mechanical efficiency was characterized by very low IEMG activity, which stayed approximately the same at all efficiency levels. In concentric exercise IEMG, energy expenditure and mechanical work changed in parallel when exercise intensity was increased.

Adult

Effects of muscle fiber distribution on the mechanical efficiency of human locomotion.

To study the effects of muscle fiber distribution (m. vastus lateralis) on the mechanical efficiency of human locomotion, 12 subjects were observed, six in the slow-twitch (ST) group (38.0% +/- 6.1% FT) and six in the fast-twitch (FT) group (63.8% +/- 5.9% FT). Pure positive, pure negative, and a combination of negative and positive work were performed with a special "sledge ergometer." The mechanical efficiency of the pure positive work (eta) was on the average 16.4% +/- 2.5% and 17.1% +/- 2.1% for the ST and FT groups, respectively. The mechanical efficiency of the pure negative work (eta -) was slightly greater in the ST group (94.0% +/- 30.2% vs 79.6% +/- 32.7%, P = NS). The mechanical efficiency of the positive work in the combined negative/positive work (eta +) was on the average in the ST group 36.4% +/- 5.9% and in the FT group 33.2% +/- 5.5% (t = 2.02, P less than 0.05). The eta + and the calculated elastic parameters (work due to elasticity Wel, utilization of the prestretch %El, and relative Wel) together with the EMG analysis demonstrated that the ST group had a better stiffness regulation and elastic performance. It is suggested that the basic differences in the reflex control between the two types of muscles and functional differences between the respective fiber types could be the possible reasons for the results observed under the conditions of the present slow-type stretch-shortening cycle exercises.

Adult

The mechanical efficiency of locomotion in men and women with special emphasis on stretch-shortening cycle exercises.

The mechanical efficiency of the leg extensor musculature of men and women was examined with a special "sledge ergometer". The subjects (ten males and ten females) performed pure positive work, pure negative work and a combination of negative and positive work (stretch-shortening cycle). The mechanical efficiency of pure positive work was on average 19.8 +/- 1.2% for female subjects and 17.4 +/- 1.2% for male subjects (t = 4.12, P less than 0.001), although the work intensity was equal in both groups. The mechanical efficiency of pure negative work was slightly lower in women than in men (59.3 +/- 14.4% vs 75.6 +/- 29.3%). The mechanical efficiency of positive work (eta +) in a stretch-shortening cycle exercise was 38.1 +/- 6.8% in men and 35.5 +/- 6.9% in women. The utilization of prestretch was better for female subjects at low prestretch levels, whereas males showed greater potentiation of elastic energy at higher prestretch levels. Regarding absolute Wel (work due to elasticity) values, male subjects showed greater (P less than 0.001) values than females (189 +/- 44 J vs 115 +/- 36 J, respectively). Fundamental differences in neuromuscular functions in men and women might cause the differences in the results obtained.

Adult

Mechanical efficiency of pure positive and pure negative work with special reference to the work intensity.

The mechanical efficiencies of pure positive (eta) and pure negative (eta-) work were investigated on a special "sledge ergometer" with 25 and 36 subjects, respectively. The work intensities varied in positive work between 40% and 90% and in negative work from 30% to 120% of the maximum concentric exercise. In 54 exercises of positive work, eta was 17.1% +/- 2.2%, and its value correlated negatively with the work intensity (r = 0.367, P less than 0.01) and with the average knee angular velocity, omega+ (r = 0.359, P less than 0.01). In 103 eccentric exercises, eta- was on the average 80.2% +/- 31.8%, correlating positively with the work intensity (r = 0.396, P less than 0.01). Both inter- and intrasubject variations were large (32%-163%). The integrated electrical activity (IEMG) of the leg extensor muscles increased with an increase of work intensity both in the positive and in the negative work situations. Less efficient MU recruitment in higher positive work rates is suggested to be the reason for the decrease in eta, whereas better stiffness regulation via increased preactivation is speculated to cause high values of eta- in higher work intensities in eccentric exercise.

Biomechanical Phenomena

Effects of prestretch intensity on mechanical efficiency of positive work and on elastic behavior of skeletal muscle in stretch-shortening cycle exercise.

Mechanical efficiency of positive work (eta+) and elastic behavior of human skeletal muscles were investigated on a special sledge apparatus which allowed the use of the normal stretch-shortening cycle exercises. Twenty-five young men were investigated in a total of 92 exercise situations, in which the intensity of the prestretch (eccentric contraction) was different, but the shortening phase (concentric contraction) was kept constant in all conditions. The results demonstrated that eta+ was on the average 35.8% +/- 6.4% and correlated positively with the prestretch intensity (r = 0.413; P less than 0.001), reaching a highest individual value of 51.5%. Estimation performed on the elastic characteristics of the leg extensor muscles confirmed an earlier suggestion that the pure muscle elasticity plays an important role in potentiating performance in stretch-shortening cycle exercises. The analysis of the myoelectrical activity of the leg extensor muscles showed that the nervous system plays an essential role in regulating muscle stiffness and thus utilization of muscle elasticity in ballistic exercises.

Adult

Seasonal fluctuations of force production in high jumpers.

To investigate the influence of training on the isometric force-time (f-t) characteristics and on dynamic force production, eight Finnish male high jumpers were tested six to seven times during a twelve month period. The variations in the isometric maximal force, in the rate of isometric force development (RFD), as well as in the vertical jumping height during the follow-up period were compared to the respective changes in the high jump result. The RFD and vertical jumping heights were found to show their highest values relative to the other seasons during the competitive seasons in January and July-August. The changes in the maximal isometric strengths did not coincide with the changes in the high jump results. The rate of the isometric force development was concluded to be a rather good indicator of the momentary high jumping condition, even though it was realized that in such a technical sport event as the high jump the prediction of the jumping performance by some physical performance variables is approximate.

Adult