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Numerical Heat Transfer, Part A: Applications
An International Journal of Computation and Methodology
Volume 40, 2001 - Issue 3
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Original Articles

Analysis of a Bayonet-Type Counterflow Heat Exchanger with Axial Conduction and Radiative Heat Loss

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Pages 203-219 | Received 31 Oct 2000, Accepted 27 Feb 2001, Published online: 02 Aug 2010

REFERENCES

  • Peterson , R. B. and Vanderhoff , J. A. 2000 . A Catalytic Combustor for Microscale Applications . Combustion Science and Technology Letters , 1 : 10 – 13 .
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  • Hausen , H. 1950 . Waermeuebertragung im Gegenstrom, Gleichstrom und Kreuzstrom 186 Berlin : Springer-Verlag .
  • Landau , H. G. and Hlinka , J. W. 1960 . Steady-State Temperature Distribution in a Counterflow Heat Exchanger Including Longitudinal Conduction in the Wall , ASME Paper No. 60-WA-236
  • Kroeger , P. G. 1967 . “ Performance Deterioration in High Effectiveness Heat Exchangers Due to Axial Heat Conduction Effects ” . In Advances in Cryogenic Engineering Edited by: Timmerhaus , K. D. 363 – 372 . New York : Plenum Press .
  • Kays , W. M. and Kays , A. L. 1964 . London, Compact Heat Exchangers, , 2nd ed. New York : McGraw-Hill .
  • Bahnke , G. D. and Howard , C. P. 1964 . The Effect of Longitudinal Heat Conduction on Periodic-Flow Heat Exchanger Performance . J. Eng. Power , : 105 – 120 . April
  • Peterson , R. B. 1999 . Numerical Modeling of Conduction Effects in Microscale Counterflow Heat Exchangers . Microscale Thermophysical Engineering , 3 : 17 – 30 .
  • Jaluria , Y. and Torrence , K. E. 1986 . Computational Heat Transfer 106 – 117 . New York : Hemisphere Publishing Corporation . 252–255

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