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Biomedical subjects

R Georges

Publications and source records attributed to R Georges.

At least 55 records · Page 3Linked to original sources

Characterization and validation of forced input method for respiratory impedance measurement.

We have studied the effect of spontaneous breathing on the measurement of total respiratory impedance by the oscillation method, that is using forced random pressure input. Free breathing of the subject induces parasite signals on the pressure and flow measured at the mouth. These induced random signals are correlated through a loudspeaker box with side tubing and flowmeter impedance. The respiratory impedance of the subject, calculated by the cross-power spectrum method, is shown to be systematically biased. This bias is obvious in a calculation model, experimentally verified by an analogue electrical experiment. The validity of the method depends on the respiratory noise level which affects the correlation between the forced pressure input and related flow output. The impedance of the apparatus should thus be minimized in order to decrease the respiratory noise. In this manner, the bias would be shifted to lower frequencies and the accuracy of the measurement near the resonant frequency of the respiratory system would be improved.

Airway Resistance↗

Chronic cor pulmonale in pulmonary sarcoidosis.

Right-heart overload happens relatively rarely in sarcoidosis, even with fibroemphysematous changes. Of 21 cases that we studied, six (28%) had clinical and/or electrocardiographic features of cor pulmonale. The cause of cor pulmonale often evoked is an invasion of the walls of pulmonary vessels by sarcoid granulomas or their compression by the fibrotic process. Pathological studies in one patient showed compression of large pulmonary arteries associated with specific sarcoid lesions in small small and medium-sized arteries.

Adult↗

The relationship of age to pulmonary membrane conductance and capillary blood volume.

The lung transfer components of 70 normal, adult nonsmokers 18 to 78 years of age were measured by the single-breath diffusing capacity of the lung for CO. The membrane conductance and the pulmonary capillary blood volume were estimated by several measurements of the diffusing capacity at increasing alveolar PO2. Diffusing capacity, membrane conductance, and pulmonary capillary blood volume are functions of biometric references (height or alveolar volume) and of age. The observed decrease with age was more evident after 40 years of age for diffusing capacity and membrane conductance. Pulmonary capillary blood volume decreases at a later age. The changes in membrane conductance and pulmonary capillary blood volume with age may be due either to morphologic changes in the alveolar capillary surface or increasing inhomogeneities of distribution or both.

Adolescent↗