Heat exchangers are devices for exchanging energy between two or more fluids. They find applications in various industries like power, process, electronics, refining, cryogenics, chemicals, metals and manufacturing sector. Even though heat exchanger designs have been reported quite extensively, they are generally limited to steady‐state performance, single phase fluids, a few of the many possible flow arrangements and only two fluid heat exchangers. While these designs encompass the majority of the heat exchanger applications, there are some designs, which involve several fluids such as in cryogenics or fault‐tolerant heat exchangers. The governing differential equations for a three‐fluid heat exchanger are written based on the conservation of energy. The finite element method is used to solve the governing differential equations along with the appropriate boundary conditions. The case of a Buoyonet heat exchanger (used for pasteurizing milk) is analysed and the results are compared with the analytical solution available in the literature. The Buoyonet heat exchanger, treated as a three‐fluid heat exchanger is also analysed. The effect of heat loss to the ambient from a parallel flow double pipe heat exchanger is also investigated and the results are compared with those available in the literature. The results are presented both in terms of the temperature distribution along the length of the heat exchanger and the variation of effectiveness with NTU. The methodology presented in this paper can be extended to heat exchangers with any number of streams and any combination of the flow arrangements.
Article navigation
1 March 2004
Conceptual Paper|
March 01 2004
FEM analysis of multifluid heat exchangers Available to Purchase
K.N. Seetharamu;
K.N. Seetharamu
School of Mechanical Engineering, Universiti Sains Malaysia, Penang, Malaysia
Search for other works by this author on:
G.A. Quadir;
G.A. Quadir
School of Mechanical Engineering, Universiti Sains Malaysia, Penang, Malaysia
Search for other works by this author on:
Z.A. Zainal;
Z.A. Zainal
School of Mechanical Engineering, Universiti Sains Malaysia, Penang, Malaysia
Search for other works by this author on:
G.M. Krishnan
G.M. Krishnan
Department of Mechanical Engineering, Tanjung Malim Polytechnic, Perak, Malaysia
Search for other works by this author on:
Publisher: Emerald Publishing
Online ISSN: 1758-6585
Print ISSN: 0961-5539
© Emerald Group Publishing Limited
2004
International Journal of Numerical Methods for Heat & Fluid Flow (2004) 14 (2): 242–255.
Citation
Seetharamu K, Quadir G, Zainal Z, Krishnan G (2004), "FEM analysis of multifluid heat exchangers". International Journal of Numerical Methods for Heat & Fluid Flow, Vol. 14 No. 2 pp. 242–255, doi: https://doi.org/10.1108/09615530410513827
Download citation file:
Suggested Reading
Finite element analysis for co‐current and counter‐current parallel flow three‐fluid heat exchanger
International Journal of Numerical Methods for Heat & Fluid Flow (April,2006)
Neuro‐genetic optimization of micro compact heat exchanger
International Journal of Numerical Methods for Heat & Fluid Flow (January,2007)
Heat exchangers for P&W 6000 engine to power Airbus A31 8
Aircraft Engineering and Aerospace Technology: An International Journal (February,2002)
Major contract wins for Britannia
Anti-Corrosion Methods and Materials (August,1999)
Heat transfer solutions
Anti-Corrosion Methods and Materials (October,2000)
Related Chapters
ANALYSIS OF A WEDGE-TYPE ANCHORAGE SYSTEM FOR CFRP PRESTRESSING TENDONS
Extending Performance of Concrete Structures: Proceedings of the International Seminar held at the University of Dundee, Scotland, UK on 7 September 1999
THE USE OF ADVANCED COMPOSITE MATERIALS IN RETROFITTING OF CIVIL ENGINEERING INFRASTRUCTURE
Challenges of Concrete Construction: Volume 1, Composite Materials in Concrete Construction
Technology
Temporary Works Part Two: Further Principles of Design and Construction
Recommended for you
These recommendations are informed by your reading behaviors and indicated interests.
