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Analysis of LaSalle Unit 1 BWR Reactor Critical

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6. a model. The natural enrichment uranium zones at each end of the assembliesactually -’ contained between 48 and 60 pins. For these zones the number densities of the fuel were adjusted in order to conserve the total mass of the zone (for fuel zones with less than 60 pins). The actinide and fission product number densities within each zone were assumedto be spatially uniform over all assembly pins, and over the axial zone length. different assembly models, one that homogenized the poison in all of the assembly pins, and the other that explicitly representedthe burnable poison pins in the assembly.

A model. The natural enrichment uranium zones at each end of the assembliesactually -’ contained between 48 and 60 pins. For these zones the number densities of the fuel were adjusted in order to conserve the total mass of the zone (for fuel zones with less than 60 pins). The actinide and fission product number densities within each zone were assumedto be spatially uniform over all assembly pins, and over the axial zone length. different assembly models, one that homogenized the poison in all of the assembly pins, and the other that explicitly representedthe burnable poison pins in the assembly.

A typical CSASI input case, generated by the GECKO utility code, is listed in Appendix A. The GECKO code listing is given in Appendix B. 6. a model. The natural enrichment uranium zones at each end of the assembliesactually -’ contained between 48 and 60 pins. For these zones the number densities of the fuel were adjusted in order to conserve the total mass of the zone (for fuel zones with less than 60 pins). The actinide and fission product number densities within each zone were assumedto be spatially uniform over all assembly pins, and over the axial zone length.

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