| Improving Natural Uranium Utilization By Using Thorium in Low Moderation PWRs - A Preliminary Neutronic Scoping Study | |
| Youinou, Gilles ; Somoza, Ignacio | |
| Idaho National Laboratory | |
| 关键词: Thorium; Nuclear Reactor; Thorium Reactors; Recycling; Douglas Point Ontario Reactor; | |
| DOI : 10.2172/991904 RP-ID : INL/EXT-10-20155 RP-ID : DE-AC07-05ID14517 RP-ID : 991904 |
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| 美国|英语 | |
| 来源: UNT Digital Library | |
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【 摘 要 】
The Th-U fuel cycle is not quite self-sustainable when used in water-cooled reactors and with fuel burnups higher than a few thousand of MWd/t characteristic of CANDU reactors operating with a continuous refueling. For the other industrially mature water-cooled reactors (i.e. PWRs and BWRs) it is economically necessary that the fuel has enough reactivity to reach fuel burnups of the order of a few tens of thousand of MWd/t. In this particular case, an additional input of fissile material is necessary to complement the bred fissile U-233. This additional fissile material could be included in the form of Highly Enriched Uranium (HEU) at the fabrication of the Th-U fuel. The objective of this preliminary neutronic scoping study is to determine (1) how much HEU and, consequently, how much natural uranium is necessary in such Th-U fuel cycle with U recycling and (2) how much TRansUranics (TRU=Pu, Np, Am and Cm) are produced. These numbers are then compared with those of a standard UO2 PWR. The thorium reactors considered have a homogeneous hexagonal lattice made up of the same (Th-U)O2 pins. Furthermore, at this point, we are not considering the use of blankets inside or outside the core. The lattice pitch has been varied to estimate the effect of the water-to-fuel volume ratio, and light water as well as heavy water have been considered. For most cases, an average burnup at discharge of 45,000 MWd/t has been considered.
【 预 览 】
| Files | Size | Format | View |
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| 991904.pdf | 749KB |
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