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Effects of oxide and hydrogen on the circumferential mechanical properties of Zircaloy-4 cladding

机译:氧化物和氢对Zircaloy-4熔覆层周向力学性能的影响

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Mechanical properties of Zircaloy-4 cladding were evaluated by the ring tension test to simulate the cladding behavior under the reactivity-initiated accident (RIA) in a high burnup environment. Zircaloy-4 cladding was controlled to have a hydrogen content up to 1000ppm and a oxide thickness up to 100 μm, followed by a circumferential ring tension test with a strain rate in the range of 0.01 and 1/s. The results showed that both the ductility and toughness decreased as the hydrogen content and the oxide thickness increased. Hydride inside the cladding played an important role in the brittle failure mechanism by a decohesion between the hydride and the metal matrix as well as a preferential fracture of the brittle hydride. Surface oxide also affected the mechanical property such as a reduction of the load bearing area, stress relieving effect, and so on. Correlation between the in-reactor RIA parameters such as the fuel enthalpy and out-reactor mechanical toughness was postulated and it was concluded that the change of the mechanical toughness caused by the oxide was more significant than that by the hydrogen.
机译:通过环张力测试评估Zircaloy-4熔覆层的机械性能,以模拟在高燃耗环境下反应性引发事故(RIA)下熔覆层的行为。控制Zircaloy-4覆层的氢含量最高为1000ppm,氧化物厚度最高为100μm,然后进行应变率在0.01到1 / s范围内的圆周环张力测试。结果表明,随着氢含量和氧化物厚度的增加,塑性和韧性均下降。包层内部的氢化物在氢化物与金属基体之间的脱粘以及脆性氢化物的优先断裂中,在脆性破坏机理中起着重要的作用。表面氧化物还影响机械性能,例如减小承载面积,减轻应力效果等。推测了反应器内RIA参数如燃料焓和反应器外机械韧性之间的相关性,并得出结论,由氧化物引起的机械韧性变化比由氢引起的机械韧性变化更为显着。

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