Title :
Influence of gas temperature on the performances of a low dead space capillary type pneumotachograph for neonatal ventilation
Author :
Schena, E. ; Masselli, G. ; Silvestri, S.
Author_Institution :
Fac. of Biomed. Eng., Univ. Campus Bio-Medico of Rome, Rome, Italy
Abstract :
The design and calibration of a pneumotachograph with capillary type resistance is here described. The pneumotacograph has been designed aimed to the measurement of flow rate in the neonatal ventilation range (plusmn10 L/min) and is characterized by a low dead space (2 mL). The calibration curve is quadratic and coefficient values for Rohrer equation have been obtained by fitting experimental data (R2=0.99, MSE=1 Pa2). Sensitivity varies from about 25 PamiddotL-1middotmin for flow rates lower than 4 L/min to about 58 PamiddotL-1middotmin for flow rates higher than 7 L/min. The influence of airflow temperature on Rohrer equation coefficients has then been analyzed. A gas temperature variation in the range 19-37degC corresponds to a 10% average output percent variation, being the discrepancy higher at higher flow rates. A linear dependence of Rohrer equation second order term coefficient from temperature has been hypothesized. By fitting experimental data with the proposed equation MSE decreases from 1 Pa2 to 0.3 Pa2 thus, increasing repeatability (<2%) in the overall flow rate and temperature range considered. The second order term coefficient in Rohrer equation increases with temperature of about 0.6%/degC. Rohrer equation, corrected for gas temperature, allows then to increase the repeatability of the here proposed capillary type pneumotacograph, while maintaining a good sensitivity with low dead space.
Keywords :
biomedical measurement; calibration; flow measurement; pneumodynamics; ventilation; Rohrer equation coefficients; airflow temperature; calibration curve; capillary type resistance; flow rate measurement; gas temperature; low dead space capillary; neonatal ventilation; pneumotachograph; temperature 19 degC to 37 degC; Biomedical Engineering; Equipment Design; Gases; Humans; Infant, Newborn; Models, Biological; Respiration, Artificial; Temperature;
Conference_Titel :
Engineering in Medicine and Biology Society, 2009. EMBC 2009. Annual International Conference of the IEEE
Conference_Location :
Minneapolis, MN
Print_ISBN :
978-1-4244-3296-7
Electronic_ISBN :
1557-170X
DOI :
10.1109/IEMBS.2009.5333087