MODELING THE CONCENTRATION OF ETHANOL IN THE EXHALED BREATH FOLLOWING PRETEST BREATHING MANEUVERS

被引:21
作者
GEORGE, SC
BABB, AL
HLASTALA, MP
机构
[1] UNIV WASHINGTON,DEPT MED,SEATTLE,WA 98195
[2] UNIV WASHINGTON,DEPT PHYSIOL & BIOPHYS,SEATTLE,WA 98195
关键词
MATHEMATICAL MODEL; SOLUBLE GAS EXCHANGE; ALCOHOL BREATH TEST;
D O I
10.1007/BF02368300
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
A previously developed mathematical model that describes the relationship between blood alcohol (ethanol) concentration and the concentration of alcohol in the exhaled breath at end-exhalation (BrAC) has been used to quantitate the effect of pretest breathing conditions on BrAC. The model was first used to ''condition'' the airways with different breathing maneuvers prior to simulating a single exhalation maneuver, the maneuver used in standard breath alcohol testing. On inspiration, the alcohol in the air reaches local equilibrium with the alcohol in the bronchial capillary bed prior to entering the alveolar region. On expiration, approximately 50% of the alcohol absorbed on inspiration is desorbed back to the airways. BrAC correlates with the amount of alcohol that is desorbed to the airways. The six pretest breathing conditions and the percent change in BrAC relative to the control maneuver were: hyperventilation (-4.4%), hypoventilation (3.7%), hot-humid air (-2.9%), hot-dry air (0.66%), cold-humid air (0.13%), and cold-dry air (0.53%). The mechanism underlying these responses is not due to changes in breath temperature, but, rather to changes in the axial profile of alcohol content in the mucous lining of the airways.
引用
收藏
页码:48 / 60
页数:13
相关论文
共 25 条
[1]   EFFECT OF RESPIRATORY AIR-FLOW RATE ON REMOVAL OF SOLUBLE VAPORS BY NOSE [J].
AHARONSON, EF ;
MENKES, H ;
GURTNER, G ;
SWIFT, DL ;
PROCTOR, DF .
JOURNAL OF APPLIED PHYSIOLOGY, 1974, 37 (05) :654-657
[2]  
[Anonymous], 1965, ANESTHESIOLOGY
[3]  
BIRD RB, 1960, TRANSPORT PHENOMENA, P354
[4]   Mass transfer (absorption) coefficients - Prediction from data on great transfer and fluid friction [J].
Chilton, TH ;
Colburn, AP .
INDUSTRIAL AND ENGINEERING CHEMISTRY, 1934, 26 :1183-1187
[5]   SITES FOR UPTAKE OF INHALED VAPORS IN BEAGLE DOGS [J].
DAHL, AR ;
SNIPES, MB ;
GERDE, P .
TOXICOLOGY AND APPLIED PHARMACOLOGY, 1991, 109 (02) :263-275
[6]   BREATH-ALCOHOL SIMULATORS - SCIENTIFIC BASIS AND ACTUAL PERFORMANCE [J].
DUBOWSKI, KM .
JOURNAL OF ANALYTICAL TOXICOLOGY, 1979, 3 (05) :177-182
[7]   DYNAMICS OF SOLUBLE GAS-EXCHANGE IN THE AIRWAYS .3. SINGLE-EXHALATION BREATHING MANEUVER [J].
GEORGE, SC ;
BABB, AL ;
HLASTALA, MP .
JOURNAL OF APPLIED PHYSIOLOGY, 1993, 75 (06) :2439-2449
[8]   MEASUREMENT OF LOCAL MASS-TRANSFER COEFFICIENTS IN A CAST MODEL OF THE HUMAN UPPER RESPIRATORY-TRACT [J].
HANNA, LM ;
SCHERER, PW .
JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 1986, 108 (01) :12-18
[9]  
HILDEBRANDT J, 1989, TXB PHYSL, V2, P995
[10]  
HINDMARSH AC, 1981, LSODE COMPUTER PROGR