首页> 外文会议>LWR fuel with enhanced safety and performance meeting >An Innovative Accident Tolerant LWR Fuel Rod Design Based on Uranium-Molybdenum Metal Alloy
【24h】

An Innovative Accident Tolerant LWR Fuel Rod Design Based on Uranium-Molybdenum Metal Alloy

机译:基于铀 - 钼金属合金的创新意外耐用LWR燃料棒设计

获取原文

摘要

The US Department of Energy is developing a uranium-molybdenum metal alloy Enhanced Accident Tolerant Fuel concept for Light Water Reactor applications that provides improved fuel performance during normal operation, anticipated operational occurrences, and postulated accidents. The high initial uranium atom density, the high thermal conductivity, and a low heat capacity permit a U-Mo-based fuel assembly to meet important design and safety requirements. These attributes also result in a fuel design that can satisfy increased fuel utilization demands and allow for improved accident tolerance in LWRs This paper summarizes the results obtained from on-going activities; to evaluate the impact of the U-10wt%Mo thermal properties on operational and accident safety margins; to produce a triple extrusion of stainless steel cladding/niobium liner/U-10Mo fuel rod specimen; and to test the high temperature water corrosion of rodlet samples containing a drilled hole in the cladding. Characterization of the cladding and liner thickness uniformity, microstructural features of the U-Mo gamma phase, and the metallurgical bond between the component materials will be presented The results from corrosion testing will be discussed which yield insights into the resistance to attack by water ingress during high temperature water exposure for the triple extruded samples containing a drilled hole. These preliminary evaluations find that the U-10Mo fuel design concept has many beneficial features that can meet or improve conventional LWR fuel performance requirements under normal operation, AOOs, and postulated accidents. The viability of a deployable U-Mo fuel design hinges on demonstrating that fabrication processes and alloying additions can produce acceptable irradiation stability during normal operation and accident conditions and controlled corrosion reaction in the unlikely event of a cladding perforation. In the area of enhanced accident tolerance, a key objective is to establish that the lower stored energy of the U-Mo fuel design can provide the emergency core cooling systems the opportunity to maintain the reactor core in a coolable geometry following an accident
机译:美国能源部正在开发铀 - 钼金属合金增强的现场耐用燃料概念,用于轻水反应器应用,可在正常运行期间提供改善的燃料性能,预期的操作事件和假设事故。高初始铀原子密度,高导热率和低热量允许基于U-Mo的燃料组件,以满足重要的设计和安全要求。这些属性还导致燃料设计,可以满足燃料利用需求的提高,并允许改善LWR中的事故耐受性本文总结了从正在进行的活动中获得的结果;评估U-10WT%Mo热性质对操作和事故安全利润的影响;生产三重挤出不锈钢包层/铌衬里/ U-10MO燃料棒样品;并测试含有钻孔孔中的罗布特样品的高温水腐蚀。表征包层和衬垫厚度均匀性,U-MOγ相的微观结构特征,以及组分材料之间的冶金键将讨论腐蚀测试的结果将讨论它在抗进水期间对抗攻击的抗震性有所了解用于含有钻孔的三重挤出样品的高温水暴露。这些初步评估发现U-10MO燃料设计概念具有许多有益的功能,可以在正常运行,AOOS和假设事故下满足或改善传统的LWR燃料性能要求。可展示的U-Mo燃料设计的可行性铰链证明制造过程和合金添加剂可以在正常操作和事故条件下产生可接受的照射稳定性,并且在不太可能发生包层穿孔中控制腐蚀反应。在增强的事故耐受性领域,一个关键目标是建立U-Mo燃料设计的较低储存能量可以提供紧急核心冷却系统,这是在事故发生后可冷却几何形状维持反应器芯的机会

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号