乏燃料棒锆合金包壳环向拉伸性能分析

Hoop Tensile Test of Zirconium Alloy Cladding of Spent Fuel Rod

  • 摘要: 压水堆燃料棒堆内服役过程中,包壳锆合金经受长时间中子辐照和高温冷却水腐蚀,导致材料力学性能发生显著变化。为探究辐照和吸氢对锆合金包壳力学性能的影响,本文以某商业压水堆乏燃料棒锆合金包壳为研究对象,通过环向拉伸实验系统对比堆内辐照样品、渗氢未辐照样品的环向拉伸性能。环向拉伸实验结果显示:辐照显著提高堆内锆合金强度,但延性变差;高温下锆合金塑性得到恢复,表现出韧性断裂特征。吸氢对锆合金强度和塑性的影响相对较小,在高温下高氢含量渗氢拉伸实验样品断后伸长率保持在40%以上,在室温下断后伸长率降至20%,但未显现明显脆性断裂特征。断口初步观察显示,辐照拉伸实验样品室温下呈脆性断裂特征,高温下出现杯锥状韧性断裂;而高氢含量的渗氢拉伸实验样品即使在室温下也未有明显脆性断裂特征。在本文实验条件下,辐照作用主导堆内锆合金力学性能变化,其强化和脆化效应大于氢化物的影响,辐照是影响堆内锆合金包壳力学性能的主要因素。

     

    Abstract: Zirconium alloys used as cladding in pressurized water reactor (PWR) fuel rods undergo significant mechanical properties changes due to prolonged neutron irradiation and high-temperature coolant corrosion during in-reactor service. This study examined the impacts of irradiation and hydrogen absorption on the mechanical properties of zirconium alloy cladding. Zirconium alloy cladding from spent fuel rods of a commercial pressurized water reactor served as the research subject. Hoop tensile tests were conducted in a hot cell facility to compare the mechanical properties of in-reactor irradiated samples with those of out-of-reactor unirradiated but hydrogen-charged samples. The results demonstrate that irradiation substantially increases strength while reducing ductility, although elevated temperatures restore plasticity and promote ductile fracture modes. Hydrogen absorption exerts a comparatively limited influence: even at high hydrogen concentrations, specimens retain ductility elongations above 40% at elevated temperature and about 20% at room temperature, without evident brittle fracture. Fractographic observations confirm irradiation-induced brittle fracture at room temperature and ductile cup-cone fracture at elevated temperature, whereas hydrogen-charged specimens show no distinct brittle features. Under the present conditions, irradiation governs the mechanical property evolution of in-reactor zirconium alloys, with its strengthening and embrittlement effects exceeding those associated with hydride formation.

     

/

返回文章
返回