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Biomedical subjects

R Grucza

Publications and source records attributed to R Grucza.

27 records · Page 2Linked to original sources

Body heat balance in man subjected to endogenous and exogenous heat load.

The body heat balance, measured by a thermometric method, was investigated in humans subjected to endogenous and exogenous heat load. The purpose of the present study was to test the concept of heat exchange by a servomechanism in human thermoregulation. Two series of experiments were performed on male volunteers. In series I 15 subjects performed physical exercise (50% VO2 max) for 60 min at a constant ambient temperature of 25 degrees C. In series II 16 subjects rested in a climatic chamber where the ambient temperature was elevated over 30 min from 22 to 42 degrees C and kept stable at this level during the subsequent 60 min. It was found that in both series of experiments the sweating rate followed an exponential curve exhibiting an inertial course. Heat was stored in the body mainly at the beginning of experiment. In series I the net body heat load of 125 W/m2 was equalized by sweat evaporation, beginning after 40 min of the exercise. In series II the net body heat load of 80 W/m2 was equalized in the same way, starting after 35 min of the constant high ambient temperature. In both series of experiments the amount of heat stored in the body calculated from the body heat balance was quite close to the amount of heat calculated from the calorimetric equation. It is concluded, that under the present experimental conditions, heat loss from the body by sweat evaporation seems to be a regulated variable in the human thermoregulatory system. The observed increase in rectal temperature may result from an inertial course of the sweating reaction.

Adult↗

Importance of dynamics of sweating in men during exercise.

Influence of dynamics of sweating on rectal temperature increase was tested in 3 groups of men performing cycle exercise with intensity of 65, 90 and 120 W, respectively, in 22 degrees C chamber temperature and 30% of relative air humidity. During exercise at 65 and 90 W the subjects wore suits while exercising with intensity of 120 W they wore only shorts. The dynamics of sweating was described by delay in onset of sweating and time constant of the reaction. Wearing caused significant increase in skin humidity and decreased evaporative rate of sweating. Sweat rate during steady state was related to the metabolic rate in naked (r = 0.89, p less than 0.002) as well as in wearing subjects (r = 0.93, p less than 0.01). Delay in onset of sweating was, in average, 5 min with a time constant of 7 min. Both factors showed a tendency to be shorter with increasing work intensity. Mean increase in rectal temperature was proportional to the intensity of exercise although the individual delta Tre correlated well with the dynamics of sweating in naked (r = 0.83, p less than 0.01) and wearing subjects (r = 0.84, p less than 0.01). Since delta Tre was smaller in subjects with shorter inertia time of sweating in response to beginning of exercise at the same intensity it is concluded that the dynamics of sweating can play an important role in limiting body temperature increase in working men.

Adolescent↗

Water loss distribution in exercising men under hot conditions.

Dynamics of sweating and water loss distribution were studied in 7 exercising men under thermoneutral conditions (Ta, 25 degrees C; Tw, 24 degrees C and RH, 54%) and during moderate heat exposure (Ta, 30 degrees C; Tw, 30 degrees C; RH, 54%). The subjects performed bicycle exercise at intensity of 50% V O2 max. Dynamics of sweating was greater after heat exposure (delay in onset of sweating 3.6 and 1.4 min, p less than 0.05; time constant 10.1 and 7.3 min, p less than 0.02). The dynamics of sweating was related to the net body heat load (r = -0.80, p less than 0.001). Sweat evaporation from the skin (Esk) was significantly higher in heat exposed exercising subjects while dripping sweat (mdrip) did not differ significantly. Water loss distribution in relation to total water loss during control exercise was as follows: (Ediff + Eres) 14.8% (Esk) 59.6%; and (mdrip) 25.6%. During exercise under heat exposure (Ediff + Eres) was 12.1%; (Esk) was 67.5%; and (mdrip) was 20.4%. It is concluded that moderate heat exposure accelerate sweating reaction but does not change significantly water loss distribution in exercising subjects. Dripping sweat seems to be an attribute of sweating not only in hot humid conditions but also under temperate temperature and air humidity.

Adult↗

Relationship between electrical skin resistance and rectal temperature in man during physical exercise.

Electrical skin resistance (ESR) and rectal temperature (Tre) were examined in 13 unacclimated human subjects performing bicycle exercise at an intensity of 50% VO2max. After the beginning of exercise the electrical skin resistance decreased according to an exponential curve with a delay of 4 min and time constant of 9 min. The dynamic parameters of ESR were shorter than those reported for sweating. Statistical analysis showed a correlation between individual time constants of ESR and increases in rectal temperature of the subjects (r = 0.705, p less than 0.01). It is concluded that measurement of dynamics of the electrical skin resistance may be useful for estimation of thermal effects in exercising subjects.

Adult↗

The model of human thermoregulatory system for positive heat loads.

Body heat balance was calculated in men subjected to endogenous or exogenous heat load in order to test whether the human thermoregulatory system may be regarded as a servomechanism of heat exchange. Two series of experiments were carried out with male volunteers. In series I fifteen subjects performed 60 min physical exercise (at 50% V O2 max) at a constant ambient temperature of 25 degrees C. In series II sixteen subjects rested in a climatic chamber where the ambient temperature was increasing during 30 min from 22 to 42 degrees C and kept stable at this high level during subsequent 60 min. It was found, that in both series of experiments the sweating rate followed an exponential curve exhibiting an inertial course. The heat was stored in the body mainly at the beginning of experiments. It is concluded, that under the present experimental conditions, the heat loss from the body by sweat evaporation seems to be a regulated variable in the human thermoregulatory system. According to this conclusion the model of human thermoregulatory system acting as a servomechanism is proposed. In this model the "set-point" concept is unnecessary.

Adult↗

The use of transistor for measurement of body temperature.

The use of transistor for measurement of body temperature. Acta physiol. pol., 1981, 32 (6); 761-764. A plastic chip silicon transistor was used for measurements of skin surface, auditory canal and rectal temperatures in human subjects. The application of a transistor as a temperature sensor was based on a linear relationship between base-emitter voltage and temperature changes. A slightly modified digital multimeter was used to supply the transistor and to obtain temperature readout. Construction of the sensors, electronic circuit and calibration procedure are presented in detail.

Body Temperature↗

A simple method for accurate temperature measurement.

A simple method, employing thermocouples, was developed for measurement of temperature with an accuracy of 0.05 degrees C. The method is based on the principle of a compensatory measurement of the thermocouple voltage, with application of an additional amplifier. The temperature level of the reference thermocouple was shifted from 0 degrees to 37 degrees C, using a compensating voltage. Within a smaller range (37 degrees -- 43 degrees C) the voltage of the measuring thermocouple was additionally amplified, which resulted in an increase in sensitivity and accuracy of the temperature measurement in animal tissues. The electronic circuit and calibration procedure are presented in detail.

Animals↗