Confinement strategies and analysis Sample Clauses

Confinement strategies and analysis. Section 3.6 mentioned different types of confinement system studied. It was impracticable to study every significant accident sequence with every type of confinement system. Rather, a sufficient, and sufficiently varied, set of sequence/confinement combinations was analysed, using the worst kinds of accident sequence. In addition, there was analysis of particular pertinent phenomena: hydrogen production and magnet energy releases. Together with the rankings produced by the accident identification studies, and our general understanding supplemented by the large mass of related ITER work, this is a good basis for the overall conclusions. Releases of magnet energy could be conceived to challenge containment integrity in two ways: acceleration of loose objects and arcing phenomena. Modelling of major arcing phenomena, with the potential to lead to confinement degradation, was performed. This analysis pointed to the need for design changes to eliminate this scenario. Such design provision should be included in any future detailed power plant study. Modelling of the acceleration of detached objects by magnetic fields showed that any major threat to containment integrity could be discounted. The co-existence of beryllium (as armour or, in XXXXXXX-H and Plant Model 6, as a neutron multiplier in the blanket) with water (as primary circuit coolant, secondary circuit coolant, or a component of the shield) entails the possibility of hydrogen production from chemical reactions in accident conditions. The possibility of subsequent combustion would be a hazard for the further evolution of the accident. Parametric studies of hydrogen phenomena identified design measures that would accommodate the associated risks. Inerting of sufficient rooms is a very efficient system, but has the great drawback of being difficult to manage in operational practice. It would be best combined with systems for hydrogen removal. The studies performed were not definitive. In any future power plant study, if the co-existence of water and beryllium is not ruled out in the design, more detailed studies should be performed. The following initiated accident sequences have been analysed in detail: in-vessel loss of coolant, loss of heat rejection from the secondary loop, break in the secondary loop with multiple steam generator tube rupture. The analyses of these accident sequences comprised thermo-fluid-dynamics modelling that computed the flows of coolant fluid and energy through the various comp...
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