High-temperature waste-heat-stream selection and characterization [electronic resource]

Four types of industrial high-temperature, corrosive waste heat streams are selected that could yield significant energy savings if improved heat recovery systems were available. These waste heat streams are the flue gases from steel soaking pits, steel reheat furnaces, aluminum remelt furnaces, and...

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Bibliographic Details
Online Access: Online Access
Corporate Authors: EG & G Idaho (Researcher), Idaho National Engineering and Environmental Laboratory (Researcher)
Format: Government Document Electronic eBook
Language:English
Published: Idaho Falls, Idaho : Oak Ridge, Tenn. : Idaho National Engineering and Environmental Laboratory ; distributed by the Office of Scientific and Technical Information, U.S. Dept. of Energy, 1983.
Subjects:

MARC

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245 0 0 |a High-temperature waste-heat-stream selection and characterization  |h [electronic resource] 
260 |a Idaho Falls, Idaho :  |b Idaho National Engineering and Environmental Laboratory ;  |a Oak Ridge, Tenn. :  |b distributed by the Office of Scientific and Technical Information, U.S. Dept. of Energy,  |c 1983. 
300 |a Pages: 79 :  |b digital, PDF file. 
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500 |a Published through SciTech Connect. 
500 |a 08/01/1983. 
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500 |a "DE83016987" 
500 |a Wiggins, D.J.; Tallman, R.L.; Wikoff, P.M.; Forkel, C.E. 
520 3 |a Four types of industrial high-temperature, corrosive waste heat streams are selected that could yield significant energy savings if improved heat recovery systems were available. These waste heat streams are the flue gases from steel soaking pits, steel reheat furnaces, aluminum remelt furnaces, and glass melting furnaces. Available information on the temperature, pressure, flow, and composition of these flue gases is given. Also reviewed are analyses of corrosion products and fouling deposits resulting from the interaction of these flue gases with materials in flues and heat recovery systems. 
536 |b AC07-76ID01570. 
650 7 |a Recovery.  |2 local. 
650 7 |a Corrosion.  |2 local. 
650 7 |a Heat Recovery.  |2 local. 
650 7 |a Metals.  |2 local. 
650 7 |a Fouling.  |2 local. 
650 7 |a Energy Conservation.  |2 local. 
650 7 |a Wastes.  |2 local. 
650 7 |a Flow Rate.  |2 local. 
650 7 |a Chemical Reactions.  |2 local. 
650 7 |a Waste Heat.  |2 local. 
650 7 |a Corrosion Products.  |2 local. 
650 7 |a Energy.  |2 local. 
650 7 |a Elements.  |2 local. 
650 7 |a Gaseous Wastes.  |2 local. 
650 7 |a Alloys.  |2 local. 
650 7 |a Furnaces.  |2 local. 
650 7 |a Flue Gas.  |2 local. 
650 7 |a Phase Transformations.  |2 local. 
650 7 |a Steels.  |2 local. 
650 7 |a Iron Base Alloys.  |2 local. 
650 7 |a Iron Alloys.  |2 local. 
650 7 |a Energy Recovery.  |2 local. 
650 7 |a Aluminium.  |2 local. 
650 7 |a Glass.  |2 local. 
650 7 |a Melting.  |2 local. 
650 7 |a Heat.  |2 local. 
650 7 |a Energy Conservation, Consumption, And Utilization.  |2 edbsc. 
710 2 |a EG & G Idaho.  |4 res. 
710 2 |a Idaho National Engineering and Environmental Laboratory.  |4 res. 
710 1 |a United States.  |b Department of Energy.  |b Office of Scientific and Technical Information.  |4 dst. 
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