首页> 外文期刊>Journal of Nuclear Materials: Materials Aspects of Fission and Fusion >Brittle-ductile transition temperature of recrystallized tungsten following exposure to fusion relevant cyclic high heat load
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Brittle-ductile transition temperature of recrystallized tungsten following exposure to fusion relevant cyclic high heat load

机译:在暴露于融合后再结晶钨的脆性转化温度相关循环高热负荷

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摘要

The lifetime of tungsten (W) monoblocks under fusion conditions is ambivalent. In this work, the microstructure dependent mechanical behaviour of pulsed high heat flux (HHF) exposed W monoblock is investigated. Two different microstructural states, i.e. initial (deformed) and recrystallized, both machined from HHF exposed monoblocks are tested using tensile and small punch tests. The initial microstructural state reveals a higher fraction of low angle boundaries along with a preferred orientation of crystals. Following HHF exposure, the recrystallized state exhibits weakening of initial texture along with a higher fraction of high angle boundaries. Irrespective of the testing methodology, both the microstructural states display brittle failure for temperatures lower than 400 degrees C. For higher temperatures (>400 degrees C), the recrystallized microstructure exhibits more ductile behaviour as compared to the initial state. The observed microstructural state-dependent mechanical behaviour is further discussed in terms of different microstructural features. The estimated brittle-to-ductile transition temperature (BDTT) range is noticed to be lower for the recrystallized state as compared to the initial state. The lower EDIT in the recrystallized state is attributed to the high purity of the W in combination with its low defect density, thereby preventing segregation of impurities at the recrystallized boundaries and the related premature failure. Based on this observation, it is concluded that the common opinion of the aggravation of EDIT in W due to recrystallization is not unerring, and as a matter of fact, recrystallization in W could be instrumental for preventing the self-castellation of the monoblocks. (C) 2020 The Authors. Published by Elsevier B.V.
机译:融合条件下钨(W)单块的寿命是矛盾的。在这项工作中,研究了脉冲高热通量(HHF)暴露W单嵌段的微观结构依赖性力学行为。两种不同的微观结构状态,即初始(变形)和重结晶,使用拉伸和小冲击测试测试HHF暴露单块的加工。初始微观结构状态揭示了较高的低角度边界以及晶体的优选取向。在HHF曝光之后,重结晶状态表现出初始纹理的弱化以及高角度边界的较高分数。无论检测方法如何,微结构状态显示出低于400℃的温度的脆性失败。对于较高温度(> 400℃),与初始状态相比,再结晶的微观结构表现出更多的延展性行为。在不同的微观结构特征方面进一步讨论了观察到的微观结构状态依赖性机械行为。与初始状态相比,注意到估计的脆性 - 延展转变温度(BDTT)范围为再结晶状态较低。重结晶状态下的较低编辑归因于W的高纯度与其低缺陷密度,从而防止在重结晶边界处的杂质的分离和相关的过早失效。基于这种观察,得出结论是,由于重结晶,编辑的编辑的加重的共同意见并不是UnerRing,并且作为一个事实上,W中的重结晶可能是防止单块的自筋器的仪器。 (c)2020作者。由elsevier b.v出版。

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