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Numerical analysis of heat transfer and flow field around cross-flow heat exchanger tube with fouling
Authors:Passakorn Vessakosol  Jarruwat Charoensuk
Affiliation:1. Faculty of Chemical, Petroleum and Gas Engineering, Semnan University, Semnan, Iran;2. Department of Toxico/Pharmacology, Shahid Behshti School of Pharmacy, Tehran, Iran;3. School of Engineering and Technology, Purdue University, IUPUI, Indianapolis, USA;1. School of Mechanical and Manufacturing Engineering, University of New South Wales, Sydney, NSW 2052, Australia;2. Newcastle Institute for Energy and Resources, Centre for Advanced Particle Processing and Transport, The University of Newcastle, Callaghan, NSW 2308, Australia;3. School of Photovoltaic and Renewable Energy Engineering, University of New South Wales, Sydney, NSW 2052, Australia;1. Division of Mechanical Engineering, Faculty of Science, Technology, and Environment, The University of the South Pacific, Suva, Fiji;2. Dept of Civil Engineering, Monash University, Clayton Campus, Melbourne, Australia;1. National Engineering School of Tunis, ENIT-LAMSIN BP 37, 1002 Tunis, LR 99-ES-20, Tunisia;2. INRIA, 2004 Route des Lucioles, BP 93, 06902 Sophia Antipolis Cedex, France
Abstract:Fouling is one of the main problems of heat transfer which can be described as the accumulation on the heat exchanger tubes, i.e.; ash deposits on the heat exchanger unit of the boiler. A decrease in heat transfer rate by this deposition causes loss in system efficiency and leads to increasing in operating and maintenance costs. This problem concerns with the coupling among conduction heat transfer mode between solid of different types, conjugate heat transfer at the interface of solid and fluid, and the conduction/convection heat transfer mode in the fluid which can not be solved analytically. In this paper, fouling effect on heat transfer around a cylinder in cross flow has been studied numerically by using conjugate heat transfer approach. Unlike other numerical techniques in existing literatures, an unstructured control volume finite element method (CVFEM) has been developed in this present work. The study deals with laminar flow where the Reynolds number is limited in the range that the flow field over the cylinder is laminar and steady. We concern the fouling shape as an eccentric annulus with constant thermal properties. The local heat transfer coefficient, temperature distribution and mean heat transfer coefficient along the fouling surface are given for concentric and eccentric cases. From the results, we have found that the heat transfer rate of cross-flow heat exchanger depends on the eccentricity and thermal conductivity ratio between the fouling material and fluid. The effect of eccentric is dominant in the region near the front stagnation point due to high temperature and velocity gradients. The mean Nusselt number varies in asymptotic fashion with the thermal conductivity ratio. Fluid Prandtl number has a prominent effect on the distribution of local Nusselt number and the temperature along the fouling surface.
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