Effectiveness of three rebalance methods in deep penetration problems. [LMFBR] [electronic resource]

The space-rebalance method brought important new capability to discrete-ordintes calculations by using an easily-solved procedure. Later, diffusion synthetic acceleration used the diffusion equation as the auxiliary equation. Application of this new approach has been slow, partially due to concomita...

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Bibliographic Details
Online Access: Online Access
Corporate Authors: Oak Ridge National Laboratory (Researcher), Union Carbide Corporation. Nuclear Division (Researcher)
Format: Government Document Electronic eBook
Language:English
Published: Oak Ridge, Tenn. : Oak Ridge, Tenn. : Oak Ridge National Laboratory. ; distributed by the Office of Scientific and Technical Information, U.S. Dept. of Energy, 1979.
Subjects:

MARC

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245 0 0 |a Effectiveness of three rebalance methods in deep penetration problems. [LMFBR]  |h [electronic resource] 
260 |a Oak Ridge, Tenn. :  |b Oak Ridge National Laboratory. ;  |a Oak Ridge, Tenn. :  |b distributed by the Office of Scientific and Technical Information, U.S. Dept. of Energy,  |c 1979. 
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500 |a 01/01/1979. 
500 |a "conf-791103-105" 
500 |a American Nuclear Society meeting, San Francisco, CA, USA, 12 Nov 1979. 
500 |a Tomlinson, E.T.; Rhoades, W.A. 
520 3 |a The space-rebalance method brought important new capability to discrete-ordintes calculations by using an easily-solved procedure. Later, diffusion synthetic acceleration used the diffusion equation as the auxiliary equation. Application of this new approach has been slow, partially due to concomitant restrictions. Aull et al showed a reformulation which brought compatibility with weighted-difference and negative-fixup schemes. Miller showed that the differential forms of the conventionl space rebalance (CRB) pand the newer methods could be derived from a common framework. This paper will, similarly, cast the difference form of Aull's consistent diffusion acceleration (CDA) into the same form as CRB and will indicate a third approach suggested by this comparison. Variations of these methods will be tested on deep-penetration problems. 
536 |b W-7405-ENG-26. 
650 7 |a Kinetics.  |2 local. 
650 7 |a Cross Sections.  |2 local. 
650 7 |a Alkali Metals.  |2 local. 
650 7 |a Materials.  |2 local. 
650 7 |a Breeder Reactors.  |2 local. 
650 7 |a Epithermal Reactors.  |2 local. 
650 7 |a Metals.  |2 local. 
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650 7 |a Reactors.  |2 local. 
650 7 |a Liquid Metal Cooled Reactors.  |2 local. 
650 7 |a Concretes.  |2 local. 
650 7 |a Lmfbr Type Reactors.  |2 local. 
650 7 |a Building Materials.  |2 local. 
650 7 |a Fbr Type Reactors.  |2 local. 
650 7 |a Fast Reactors.  |2 local. 
650 7 |a Containment Systems.  |2 local. 
650 7 |a Radioactivity.  |2 local. 
650 7 |a Containment.  |2 local. 
650 7 |a Elements.  |2 local. 
650 7 |a Reactor Kinetics.  |2 local. 
650 7 |a Activity Levels.  |2 local. 
650 7 |a Engineered Safety Systems.  |2 local. 
650 7 |a Sodium.  |2 local. 
650 7 |a Specific Nuclear Reactors And Associated Plants.  |2 edbsc. 
710 2 |a Oak Ridge National Laboratory.  |4 res. 
710 2 |a Union Carbide Corporation.  |b Nuclear Division.  |4 res. 
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