Page 159 - Design and Operation of Heat Exchangers and their Networks
P. 159
146 Design and operation of heat exchangers and their networks
Manglik, R.M., Bergles, A.E., 1995. Heat transfer and pressure drop correlations for the rect-
angular offset strip fin compact heat exchanger. Exp. Thermal Fluid Sci. 10, 171–180.
Mochizuki, S., Yagi, Y., Yang, W.-J., 1987. Transport phenomena in stacks of interrupted
parallel-plate surfaces. Exp. Heat Transfer 1 (2), 127–140.
Muzychka, Y.S., Yovanovich, M.M., 2001. Modeling the f and j characteristics of the offset
strip fin array. J. Enhanc. Heat Transfer 8 (4), 261–277.
Nagle, W.M., 1933. Mean temperature differences in multipass heat exchangers. Ind. Eng.
Chem. 25 (6), 604–609.
Nusselt, W., 1911. Der W€arme€ubergang im Kreuzstrom. Z. Ver. Dtsch. Ing. 55 (48),
2021–2024.
Nusselt, W., 1930. Eine neue Formel f€ur den W€armedurchgang im Kreuzstrom. Tech.
Mech. Thermodyn. 1 (12), 417–422.
Picon-Nunez, M., Canizalez-Davalos, L., Martinez-Rodriguez, G., Polley, G.T., 2007.
Shortcut design approach for spiral heat exchangers. Food Bioprod. Process. 85 (4),
322–327.
Rajavel, R., Saravanan, K., 2008. Heat transfer studies on spiral plate heat exchanger. Therm.
Sci. 12 (3), 85–90.
Roetzel, W., 1988. ThermischeBerechnungvondreig€angigenRohrb€undelw€arme€ubertragern
mit zwei Gegenstromdurchg€angen gleicher Gr€oße. W€arme Stoff€ubertragung 22 (1–2),
3–11.
Roetzel, W., Luo, X., 2001. Sensitivity analysis for multistream heat exchangers.
In: Proceedings of the 13th School-Seminar of Young Scientists and Specialists on
the Physical Principals of Experimental and Mathematical Simulation of Heat and Mass
Transfer and Gas Dynamics in Power Plants, Saint-Petersburg, May 20-25, 2001. vol. 2.
MPEI Publishers, Moscow, pp. 401–407.
Roetzel, W., Spang, B., 2010. C2 Overall heat transfer. In: VDI Heat Atlas. second ed.
Springer, D€usseldorf.
Roetzel, W., Spang, B., 2013. C2 W€armedurchgang. In: VDI W€armeatlas. eleventh ed.
Springer, D€usseldorf.
Romie, F.E., 1987. Two functions used in the analysis of crossflow exchangers, regenerators,
and related equipment. J. Heat Transf. 109, 518–521.
Ryu, K., Lee, K.-S., 2015. Generalized heat-transfer and fluid-flow correlations for corru-
gated louvered fins. Int. J. Heat Mass Transf. 83, 604–612.
Sathiyan, S., Rangarajan, M., Ramachandran, S., 2010. An experimental study of spiral-plate
heat exchanger for nitrobenzene-water two-phase system. Bulg. Chem. Commun.
42 (3), 205–209.
Schumann, T.E.W., 1929. Heat transfer: a liquid flowing through a porous prism. J. Frankl.
Inst. 208 (3), 405–416.
Settari, A., 1972. Remarks about “General solution of the equations of parallel-flow
multichannel heat exchangers” Int. J. Heat Mass Transf. 15, 555–557.
Shinde, P., Lin, C.-X., 2017. A heat transfer and friction factor correlation for low air-side
Reynolds number applications of compact heat exchangers (1535-RP). Sci. Technol.
Built Environ. 23 (1), 192–210.
Smith, D.M., 1934. Mean temperature difference in cross flow. Engineering 138, 479–481.
606–607.
Song, R., Cui, M., Liu, J., 2017. A correlation for heat transfer and flow friction character-
istics of the offset strip fin heat exchanger. Int. J. Heat Mass Transf. 115 (Part B),
695–705.
Underwood, A.J.V., 1934. The calculation of the mean temperature difference in multipass
heat exchangers. J. Inst. Pet. Technol. 20, 145–158.
White, F.M., 2011. Fluid Mechanics, seventh ed. McGraw-Hill, New York.