CONTROLLED WIND-TUNNEL EXPERIMENTS FOR PARTICLE BOUNCEOFF AND RESUSPENSION

被引:62
作者
WU, YL
DAVIDSON, CI
RUSSELL, AG
机构
[1] CARNEGIE MELLON UNIV,DEPT CIVIL ENGN,PITTSBURGH,PA 15213
[2] CARNEGIE MELLON UNIV,DEPT MECH ENGN,PITTSBURGH,PA 15213
基金
美国国家科学基金会;
关键词
D O I
10.1080/02786829208959574
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The dynamics of particle rebound and resuspension were examined by using uranine particles, polymer microspheres, spores, and pollen in wind tunnel experiments. Particle diameters were 5-42 mum. Results show that both the fraction of rebound and the resuspension rate are strongly dependent on the free stream velocity, particle size, and relative humidity. The effects of relative humidity are more significant at lower windspeeds; a greater relative humidity appears to change the shape of the distribution of adhesion force. mainly affecting the lower range but not greatly affecting the upper end of the distribution. Resuspension rates decrease with time, essentially defining two regimes. The first regime lasts for < 1 min; after this time, the most easily resuspended particles have been removed, leaving only particles with much smaller resuspension rates for the second regime. At a windspeed of 6 m/s, the upper 20% of the distribution of turbulent fluctuations is responsible for approximately 65% of the particle resuspension. Once resuspended, the particles have trajectories which depend on characteristics of the turbulent airflow and not on the initial velocity of release from the surface. Overall, the data show th at resuspension is more sensitive to the type or particle than to the type of surface; particle shape and composition may be more important than particle size.
引用
收藏
页码:245 / 262
页数:18
相关论文
共 37 条
[1]   THE FLUCTUATING WALL-SHEAR STRESS AND THE VELOCITY-FIELD IN THE VISCOUS SUBLAYER [J].
ALFREDSSON, PH ;
JOHANSSON, AV ;
HARITONIDIS, JH ;
ECKELMANN, H .
PHYSICS OF FLUIDS, 1988, 31 (05) :1026-1033
[2]   WIND-TUNNEL EXPERIMENTS ON THE RESUSPENSION OF SUBMICROMETER PARTICLES FROM A SAND SURFACE [J].
BORRMANN, S ;
JAENICKE, R .
ATMOSPHERIC ENVIRONMENT, 1987, 21 (09) :1891-1898
[3]   PARTICLE RESUSPENSION IN A TURBULENT BOUNDARY-LAYER OBSERVED AND MODELED [J].
BRAATEN, DA ;
PAW, KT ;
SHAW, RH .
JOURNAL OF AEROSOL SCIENCE, 1990, 21 (05) :613-628
[4]  
CHIEN HC, 1981, CER8081HCCVAS45 COL
[5]   MECHANISM OF DETACHMENT OF COLLOIDAL PARTICLES FROM A FLAT SUBSTRATE IN A TURBULENT-FLOW [J].
CLEAVER, JW ;
YATES, B .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 1973, 44 (03) :464-474
[6]  
CORN M, 1961, J Air Pollut Control Assoc, V11, P566
[7]   RE-ENTRAINMENT OF PARTICLES FROM A PLANE SURFACE [J].
CORN, M ;
STEIN, F .
AMERICAN INDUSTRIAL HYGIENE ASSOCIATION JOURNAL, 1965, 26 (04) :325-&
[8]  
DURST F, 1985, TURBULENT SHEAR FLOW, V5, P197
[9]   HYDRODYNAMIC FORCES ON A ROUGH WALL [J].
EINSTEIN, HA ;
ELSAMNI, EA .
REVIEWS OF MODERN PHYSICS, 1949, 21 (03) :520-524
[10]   WIND-TUNNEL MEASUREMENTS OF THE RESUSPENSION OF IDEAL PARTICLES [J].
FAIRCHILD, CI ;
TILLERY, MI .
ATMOSPHERIC ENVIRONMENT, 1982, 16 (02) :229-238