An experimental and theoretical study of particle deposition due to thermophoresis and turbulence in an annular flow

被引:21
作者
Healy, D. P. [2 ]
Young, J. B. [1 ]
机构
[1] Univ Cambridge, Dept Engn, Hopkinson Lab, Cambridge CB2 1PZ, England
[2] Ove Arup Ltd, London W1T 4BQ, England
关键词
Two-phase flow; Thermophoresis; Particle deposition; Turbulent pipe-flow; Annular-flow; DIRECT NUMERICAL-SIMULATION; SPHERICAL-PARTICLE; RAREFIED-GAS; PIPE-FLOW; AEROSOL-PARTICLES; BOUNDARY-LAYER; THERMAL FORCE; CHANNEL FLOW; FIELD;
D O I
10.1016/j.ijmultiphaseflow.2010.07.006
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
The paper describes an experimental and theoretical study of the deposition of small particles from a turbulent annular-flow with cross-stream temperature variation, focusing on the effects of thermophoresis. Various expressions for the thermophoretic force on a spherical particle are critically discussed. The well-known composite formula of Talbot et al. (1980) does not include the 'second mechanism of thermophoresis' and it is concluded that the more recent theoretical approach of Beresnev and Chernyak (1995) is probably more reliable. New experimental measurements of particle deposition from a turbulent flow with cross-stream temperature gradients are then presented. The measurement technique is similar to the method of Liu and Agarwal (1974) but in the test section the aerosol flows vertically downwards in an annular gap between two concentric pipes. By heating the outer pipe and cooling the inner it is possible to establish a substantial, near-constant temperature difference between the two walls and hence a thermophoretic force which varies only with radius. Numerical calculations provide a comparison of theory with experiment. The theory is based on the turbulent deposition models of Young and Leeming (1997) and Slater et al. (2003) modified to include thermophoresis and the annular geometry. The theory of Beresnev and Chernyak gives good agreement with the experimental measurements. (C) 2010 Elsevier Ltd. All rights reserved.
引用
收藏
页码:870 / 881
页数:12
相关论文
共 28 条
[1]  
Al-Azzawi H. K., 1984, International Journal of Heat and Fluid Flow, V5, P57, DOI 10.1016/0142-727X(84)90018-3
[2]   THERMOPHORESIS IN GASES AT SMALL KNUDSEN NUMBERS [J].
BAKANOV, SP .
AEROSOL SCIENCE AND TECHNOLOGY, 1991, 15 (02) :77-92
[3]   THERMOPHORESIS OF A SPHERICAL-PARTICLE IN A RAREFIED-GAS - NUMERICAL-ANALYSIS BASED ON THE MODEL KINETIC-EQUATIONS [J].
BERESNEV, S ;
CHERNYAK, V .
PHYSICS OF FLUIDS, 1995, 7 (07) :1743-1756
[4]   THEORY OF THERMAL FORCES ACTING ON AEROSOL PARTICLES [J].
BROCK, JR .
JOURNAL OF COLLOID SCIENCE, 1962, 17 (08) :768-&
[5]   Direct numerical simulation of turbulent concentric annular pipe flow - Part 1: Flow field [J].
Chung, SY ;
Rhee, GH ;
Sung, HJ .
INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2002, 23 (04) :426-440
[6]   13-MOMENT THEORY OF THERMAL FORCE ON A SPHERICAL PARTICLE [J].
DWYER, HA .
PHYSICS OF FLUIDS, 1967, 10 (05) :976-&
[7]   On the Theory of the Radiometer. [J].
Epstein, Paul S. .
ZEITSCHRIFT FUR PHYSIK, 1929, 54 (7-8) :537-563
[8]  
Healy D. P, 2003, THESIS CAMBRIDGE U
[9]   THERMAL FORCE ON SPHERICAL SODIUM CHLORIDE AEROSOLS [J].
JACOBSEN, S ;
BROCK, JR .
JOURNAL OF COLLOID SCIENCE, 1965, 20 (06) :544-&
[10]   DIRECT NUMERICAL-SIMULATION OF PASSIVE SCALAR FIELD IN A TURBULENT CHANNEL FLOW [J].
KASAGI, N ;
TOMITA, Y ;
KURODA, A .
JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 1992, 114 (03) :598-606