DocumentCode
1459974
Title
Selection of Steam Drum Level Control Method for Multiple Drum Interacting Loops Pressure Tube-Type BWR
Author
Gaikwad, Avinash J. ; Vijayan, P.K. ; Bhartiya, S. ; Kumar, R. ; Lele, H.G. ; Vaze, K.K.
Author_Institution
Reactor Safety Div., BARC, Mumbai, India
Volume
58
Issue
2
fYear
2011
fDate
4/1/2011 12:00:00 AM
Firstpage
479
Lastpage
489
Abstract
Three element Steam Drum (SD) Level Controller has been conventionally used for most of the boilers, Nuclear power plant steam generator & Boiling Water Reactor (BWRs). Based on the process dynamic studies it was found that this scheme does not work properly for an interacting, interconnected multiple loop boiling water system i.e., Advanced Heavy Water Reactor (AHWR). It is a pressure tube type light water cooled heavy water moderated Boiling Water Reactor (BWR). It has 4-inter-connected parallel loops with 113 × 4 = 452 boiling channels in the Main Heat Transport (MHT) system. These multiple (four) interconnected loops influences the Steam Drum (SD) level control adversely. Such a behavior has not been reported in the open literature. The open loop response is stable, non-oscillatory and non-diverging for a step change in the feed flow rates. Also it is not possible to maintain a steady level in all the SDs even without any external disturbance/perturbation with 4 conventional 3-element individual SD level controllers. To overcome these interactions it is proposed to interconnect all the four steam drums in the liquid & vapor regions respectively. This makes the 4 SDs behave like a single entity. The influence of the interconnect configuration & the level controller are studied in detail to find a robust solution. The response obtained for unsymmetrical core power, symmetrical power maneuvering and reactor trip transients shows that the SD levels do not diverge and quickly settle very near to the set points assigned with SD interconnect schemes.
Keywords
fission reactor coolants; fission reactor cooling; fission reactor design; fission reactor safety; heavy water reactors; level control; light water reactors; advanced heavy water reactor; boiling water reactor; liquid region; main heat transport system; multiple loop boiling water system; nuclear power plant steam generator; pressure tube-type BWR; reactor trip transients; steam drum level control method; symmetrical power maneuvering; three element level control; unsymmetrical core power; vapor region; Coolants; Feeds; Inductors; Joining processes; Level control; Mathematical model; Process control; Interacting loops; RELAP5; natural circulation; steam drum; three element level control;
fLanguage
English
Journal_Title
Nuclear Science, IEEE Transactions on
Publisher
ieee
ISSN
0018-9499
Type
jour
DOI
10.1109/TNS.2011.2108666
Filename
5720533
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