OVERALL EFFICIENCY OF TUBULAR INLETS SAMPLING AT 0-90 DEGREES FROM HORIZONTAL AEROSOL FLOWS

被引:50
作者
HANGAL, S [1 ]
WILLEKE, K [1 ]
机构
[1] UNIV CINCINNATI,DEPT ENVIRONM HLTH,AEROSOL RES LAB,CINCINNATI,OH 45267
来源
ATMOSPHERIC ENVIRONMENT PART A-GENERAL TOPICS | 1990年 / 24卷 / 09期
关键词
Aerosol sampling; aspiration efficiency; gravitational settling; inlet; particle losses; transmission efficiency; wall impaction and vena contracta formation;
D O I
10.1016/0960-1686(90)90330-P
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
We have developed a unified and comprehensive model for the overall efficiency of tubular inlets sampling from horizontal aerosol flows at 0-90° relative to the wind direction. In our model, derived from experimental data obtained in our wind tunnel, the transmission efficiency is separated into two components: one due to gravitational settling in the boundary layer and the other due to impaction. The gravitational settling component is determined by extending our previously developed isoaxial sampling model to nonisoaxial sampling. The impaction component is determined by a new model that quantifies the particle losses caused by direct wall impaction. The model also quantifies the additional particle losses resulting from the turbulent motion in the vena contracta which is formed in the inlet when the inlet velocity is higher than the wind velocity. The equation for the gravitational settling component considers the inertial behaviour of the particles by including the Stokes number, the flow development in the boundary layer by including the Reynolds number and the gravitational settling in the boundary layer by including a modified gravitational settling parameter. The equation for the impaction component considers direct wall impaction and the losses due to vena contracta formation through the Stokes number, velocity ration and sampling angle. Direct wall impaction is further differentiated by the gravity effect on the impaction process which distinguishes upward from downward sampling. Our equations for transmission efficiency in combination with aspiration efficiency equations determine the overall efficiency of tubular, sharp-edged inlets at all orientations of the inlet relative to horizontal aerosol flows. © 1990.
引用
收藏
页码:2379 / 2386
页数:8
相关论文
共 20 条
[1]  
Belyaev S., 1974, J AEROSOL SCI, V5, P325, DOI DOI 10.1016/0021-8502(74)90130-X
[2]   ASPIRATION ABOVE WIND VELOCITY OF AEROSOLS WITH THIN-WALLED NOZZLES FACING AND AT RIGHT ANGLES TO THE WIND DIRECTION [J].
DAVIES, CN ;
SUBARI, M .
JOURNAL OF AEROSOL SCIENCE, 1982, 13 (01) :59-71
[3]   AN EMPIRICAL-MODEL FOR THE ASPIRATION EFFICIENCIES OF BLUNT AEROSOL SAMPLERS ORIENTATED AT AN ANGLE TO THE ONCOMING FLOW [J].
DUNNETT, SJ ;
INGHAM, DB .
AEROSOL SCIENCE AND TECHNOLOGY, 1988, 8 (03) :245-264
[4]   EVALUATION OF AEROSOL ASPIRATION EFFICIENCY AS A FUNCTION OF STOKES NUMBER, VELOCITY RATIO AND NOZZLE ANGLE [J].
DURHAM, MD ;
LUNDGREN, DA .
JOURNAL OF AEROSOL SCIENCE, 1980, 11 (02) :179-188
[5]  
HANGAL S, 1990, THESIS U CINCINNATI
[6]   ASPIRATION BELOW WIND VELOCITY OF AEROSOLS WITH SHARP EDGED NOZZLES FACING THE WIND [J].
JAYASEKERA, PN ;
DAVIES, CN .
JOURNAL OF AEROSOL SCIENCE, 1980, 11 (5-6) :535-547
[7]  
LAKTIONOV AB, 1973, FIZIKA AEROZOLEY, V7, P83
[8]   A NUMERICAL STUDY OF INERTIAL ERRORS IN ANISOKINETIC SAMPLING [J].
LIU, BYH ;
ZHANG, ZQ ;
KUEHN, TH .
JOURNAL OF AEROSOL SCIENCE, 1989, 20 (03) :367-380
[9]  
MCABE WL, 1976, UNIT OPERATIONS CHEM, pCH3
[10]   NON-ISOAXIAL AEROSOL SAMPLING - MECHANISMS CONTROLLING THE OVERALL SAMPLING EFFICIENCY [J].
OKAZAKI, K ;
WIENER, RW ;
WILLEKE, K .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1987, 21 (02) :183-187