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FUEL MANAGEMENT OF PWR CORES WITH SILICON CARBIDE CLADDING

机译:用碳化硅熔覆对压水堆芯进行燃料管理

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摘要

The primary motivation for using silicon carbide rather than zirconium alloy cladding is its putative improvement in accident resistance, due to slow reactions with water, even at high temperatures. But, fuel management performance will also be an important consideration in its commercial acceptance. Whether backfittable 18- and 24-month cycles can be designed for existing light water reactors, their enrichments, operating characteristics, and fuel costs are questions that the present study undertakes to answer. Also evaluated is the possibility of leveraging silicon carbide's ability to sustain higher fuel duty for increasing power levels and discharge burnups in pressurized water reactors. A preliminary design using fuel rods with the same dimensions as in typical Westinghouse fuel, but with fuel pellets having a 10 vol % central void, has been adopted to mitigate the higher fuel temperatures when silicon carbide is used. This allows design of 18- and 24-month cycles that meet present-day operating constraints on peaking factor, boron concentration, reactivity coefficients, and shutdown margin, while achieving batch average discharge burnups up to 80 MWd/kg U, as well as power uprates of 10% and possibly 20%. Control rod configuration modifications may be required to meet the shutdown margin criterion for the 20% uprate. For nonuprated cores, silicon carbide-clad fuel may have a fuel cost advantage, especially with increasing discharge burnup, provided the fuel manufacturing cost is close to that of Zircaloy tubes. The economics of the fuel cycle also improve with power uprates, as the value of the additional energy generated may substantially exceed the advantage from fuel cost alone.
机译:使用碳化硅而不是锆合金熔覆层的主要动机是由于即使在高温下也能与水缓慢反应,因此其在意外事故耐受性方面的公认的改进。但是,燃料管理性能也将是其商业接受度的重要考虑因素。是否可以为现有的轻水反应堆设计可改装的18和24个月的循环,其丰富性,运行特性和燃料成本是本研究要回答的问题。还评估了利用碳化硅的能力来维持较高的燃料负荷以提高压水堆中的功率水平和排放燃尽的可能性。为了减少使用碳化硅时的较高燃料温度,已经采用了初步设计,该燃料棒的燃料棒尺寸与典型的Westinghouse燃料相同,但燃料芯块的中心空隙为10 vol%。这样就可以设计18个月和24个月的周期,以满足当今对峰值因子,硼浓度,反应性系数和关闭裕度的操作限制,同时实现高达80 MWd / kg U的批平均放电燃耗以及功率提高10%,甚至可能提高20%。可能需要对控制杆的配置进行修改,才能满足20%提升率的停机裕量标准。对于未升级的堆芯,如果燃料的制造成本接近Zircaloy管的成本,则碳化硅包覆的燃料可能具有燃料成本优势,尤其是随着放电燃耗的增加。燃料循环的经济性也随着功率提升而提高,因为所产生的额外能量的价值可能大大超过仅燃料成本带来的好处。

著录项

  • 来源
    《Nuclear Technology》 |2014年第3期|353-377|共25页
  • 作者单位

    Massachusetts Institute of Technology, Center for Advanced Nuclear Energy Systems 77 Massachusetts Avenue, Building 24-215, Cambridge, Massachusetts 02139;

    Massachusetts Institute of Technology, Center for Advanced Nuclear Energy Systems 77 Massachusetts Avenue, Building 24-215, Cambridge, Massachusetts 02139;

    Massachusetts Institute of Technology, Center for Advanced Nuclear Energy Systems 77 Massachusetts Avenue, Building 24-215, Cambridge, Massachusetts 02139;

    Massachusetts Institute of Technology, Center for Advanced Nuclear Energy Systems 77 Massachusetts Avenue, Building 24-215, Cambridge, Massachusetts 02139;

    Massachusetts Institute of Technology, Nuclear Reactor Laboratory 138 Albany Street, Cambridge, Massachusetts 02139;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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