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The maximum cladding temperature, the maximum fuel center temperature and the maximum coolant velocity are all below the design constraints.
Furthermore, the maximum cladding temperature will significantly decrease when the moderator temperature is decreased but coolant temperature remains essentially constant.
Detailed analyses have shown that allowable limits to the maximum fuel rod power and maximum cladding temperature can be determined to assure the fuel integrities.
The LBLOCA analysis illustrates the contribution of the A-ACCs whose small-flow-rate injection can control the maximum cladding temperature effectively.
Meanwhile, the reduction in the maximum cladding temperature in the inner assemblies is much larger than that in the outer assemblies.
Under the design scheme, the maximum cladding temperature and the maximum temperature are 340.2 °C and 1369.9 °C, which satisfied the design requirements.
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The observed parameters were reactor peak power and maximum clad temperature of the hottest channel.
System response uncertainty in the minimum departure from nucleate boiling ratio (MDNBR), maximum fuel temperature, and maximum clad temperature was evaluated.
Sensitivity studies showed input parameters affecting local power generation within the core had a large influence on MDNBR, maximum fuel temperature, and maximum clad temperature.
Analyses are concentrated on the circumferential temperature distribution on the cladding outer surface because the Maximum Cladding Surface Temperature (MCST) has been a crucial design parameter to evaluate fuel cladding integrity of the Super Fast Reactor.
Maximum cladding surface temperature at nominal condition is evaluated to be 645.3 °C over the cycle.
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