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BIAXIAL-EDC TEST ATTEMPTS WITH PRE-CRACKED ZIRCALOY-4 CLADDING TUBES

机译:预破裂的ZIRCALOY-4包覆管的双轴EDC测试尝试

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When the pellet-cladding mechanical interaction (PCMI) occurs in a reactivity-initiated accident (RIA), the states of stress and strain in the fuel cladding varies in a range depending on the friction and degree of bonding between cladding and pellet. Japan Atomic Energy Agency has developed the improved Expansion-due-to-compression (EDC) test apparatus to investigate the PCMI failure criterion of high-burnup fuel under such conditions. In this study, the failure behavior of cladding tube was investigated by using the improved EDC test apparatus. Cold-worked, stress-relieved and recrystallized Zircaloy-4 tubes with a pre-crack were used as test specimens: this pre-crack simulated the crack which is considered to form in the hydride rim of high-burnup fuel cladding at the beginning of PCMI failure. In the EDC test, a tensile stress in axial direction was applied and displacement-controlled loading was performed to keep the strain ratio of axial/hoop as a constant. The data of cladding deformation had been achieved in the range of strain ratio of 0, 0.25, 0.5 and 0.75 and pre-crack depth of 41-87 micrometers. Failures in hoop direction were observed in all the tested samples, and a general trend that higher strain ratio and deeper crack depth lead to lower failure limit in hoop direction could be seen. Different crack propagation mode was observed between recrystallized and stress relieved and cold worked samples, which might be due to the difference in microstructure caused by the final heat treatment at the fabrication of cladding.
机译:当在反应性事故(RIA)中发生粒料-包层机械相互作用(PCMI)时,燃料包层中的应力和应变状态根据包层与粒料之间的摩擦和结合程度而在一定范围内变化。日本原子能机构开发了改进的压缩后膨胀(EDC)测试设备,以研究在这种情况下高燃耗燃料的PCMI失效标准。在这项研究中,通过使用改进的EDC测试设备来研究包层管的失效行为。带有预裂痕的冷加工,消除应力和重结晶的Zircaloy-4管用作测试样品:该预裂痕模拟了裂纹的形成,该裂纹被认为是在高燃点燃料包壳的氢化物边缘开始形成的。 PCMI故障。在EDC测试中,施加了轴向拉伸应力,并进行了位移控制的加载,以使轴向/环向的应变比保持恒定。在0、0.25、0.5和0.75的应变比和裂纹前深度为41-87微米的范围内获得了包层变形的数据。在所有测试样品中均观察到环向失效,并且总体趋势是,较高的应变比和更深的裂纹深度会导致环向降低失效极限。在再结晶和消除应力的试样与冷加工试样之间观察到不同的裂纹扩展模式,这可能是由于包壳制造过程中最终热处理导致的微观结构差异所致。

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