Claims
- 1. A method for enhanced heat transfer between a first fluid at first inlet temperature and a second fluid at second initial temperature substantially different from said first inlet temperature in a heat exchanger wherein said first fluid is flowed through at least one metal tube in heat transfer relation with said second fluid outside said tube, comprising the steps of: providing a single layer of randomly distributed metal bodies each individually bonded to the tube inner surface substrate spaced from each other and substantially surrounded by said substrate so as to form body void space with the tube effective inside diameter and body height related to each other such that in the ratio e/D, wherein e is the arithmetic average height of said bodies on said substrate and D is the effective inside diameter of the tube, e/D is at least 0.006, and the body void space is between 10 percent and 90 percent of the substrate total area; and passing said first fluid through said tube under turbulent flow conditions in at least part of said tube such that its Equivalent Reynolds Number in such tube part is at least 9,000.
- 2. A method for enhanced heat transfer according to claim 1 wherein a multiple layer of stacked metal particles is integrally bonded together and to the tube outer surface substrate to form interconnected pores of capillary size having an equivalent pore radius less than 4.5 mils, the first inlet temperature is higher than the second initial temperature of said second fluid which is substantially liquid and is heated to its boiling point and boiled during said heat transfer.
- 3. A method for enhanced heat transfer according to claim 1 wherein said first fluid passes through said tube solely in the liquid phase in contact with the metal body layered surface with a heat transfer coefficient ratio to a smooth tube surface h.sub.s /h.sub.o of at least 1.8 and the Fanning Friction Factor ratio of a smooth tube inner surface to said metal body layered surface f.sub.o /f.sub.s is such that the Overall Product Ratio h.sub.s f.sub.o /h.sub.o f.sub.s is at least 0.95.
- 4. A method for enhanced heat transfer according to claim 1 wherein said first fluid is at least partially condensed while passing through said tube in contact with the metal body layered surface with a heat transfer coefficient ratio to a smooth tube surface h.sub.c /h.sub.o of at least 2.5 and the Fanning Friction Factor ratio of a smooth tube inner surface to said metal body layered surface f.sub.o /f.sub.c such that the Overall Product Ratio h.sub.c f.sub.o /h.sub.o f.sub.c is at least 1.4.
Parent Case Info
This application is a division of our prior U.S. application, Ser. No. 721,861, filing date Sept. 9, 1976, which is now U.S. Pat. No. 4,154,293, issued May 15, 1979.
US Referenced Citations (4)
Non-Patent Literature Citations (2)
Entry |
Dipprey et al., Heat and Momentum Transfer in Smooth and Rough Tubes, Journal of Ind. Heat and Mass Transfer, vol. 6, pp. 329-353, 1963. |
Faust et al., The Electrodeposition of Porous Metal, Transactions of the Institute of Metal Finishing, No. 31, pp. 517-526, 1954. |
Divisions (1)
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Number |
Date |
Country |
Parent |
721861 |
Sep 1976 |
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