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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >The effect of He+ irradiation on hardness and elastic modulus of Fe-Cr-40 wt.% TiB2 composite rod designed for neutron absorbing
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The effect of He+ irradiation on hardness and elastic modulus of Fe-Cr-40 wt.% TiB2 composite rod designed for neutron absorbing

机译:He +辐照对Fe-Cr-40重量的硬度和弹性模量的影响。%TIB2复合杆设计用于中子吸收

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A composite rod, designed for the neutron absorption in nuclear research reactors or Nuclear Power Plants (NPPs), was synthesized by ball milling and subsequent Hot Isostatic Pressing (HIP-ing), similarly to the one reported in Ref. [3]. Its core consists of the oxide dispersion strengthened ferritic Fe-Cr matrix and 40 wt.% of TiB2 reinforcement, surrounded by a Ti tubing/cladding with a functionally graded interface layer. The Specific Surface Area (SSA) for the ball-milled pre-alloyed powders increases from 0.64 to 2.92 m(2)/g and XRD shows that the crystallite/grain size of TiB2 is 38 nm. Berkovich nano indentation study after irradiation with 160 key He+ ions at a fluence up to 1 x 10(17) He+/cm(2) shows an initial hardening effect at fluences of 1 x 10(15) and 1 x 10(16) ions/cm(2). Hardness and elastic modulus of the Fe-Cr-TiB2 core rapidly drops when the fluence reaches 1 x 10(17) ions/cm(2). The Ti cladding seems to be relatively impervious to increased radiation fluence since its hardness and elastic modulus change very slightly with increasing ion fluence. The observed changes in the mechanical properties are discussed in terms of vacancy/dislocation loops and He bubble formation in the irradiated microstructure. Although the He-vacancy complexes are widely regarded as being immobile, it is hypothesized here, based on the grazing incidence XRD (GI XRD), that interstitial helium diffuses outward through the boundaries of the (100) hcp-TiB2 nanograins. As a result, the relaxation of compressive strains due to high concentration of vacancies in a nanograin crystalline lattice finally leads to the hcp-TiB2 unit cell contraction. (C) 2017 Elsevier B.V. All rights reserved.
机译:通过球磨和随后的热等静压(髋关节)合成设计用于核研究反应器或核电站(NPP)中的中子吸收(NPP)的复合杆,类似于参考中报道的术。 [3]。其核心由氧化物分散体强化加强铁素体Fe-Cr基质和40重量%的TIB2加强件,由用功能梯度界面层的Ti管/包层围绕。球磨的预合金粉末的比表面积(SSA)从0.64升至2.92m(2)/ g,XRD表示TIB2的微晶/晶粒尺寸为38nm。 Berkovich纳米缩进在用160 key He +离子的辐射后进行,高达1×10(17)He + / cm(2)显示出10×10(15)和1×10(16)离子的流量的初始硬化效果/ cm(2)。当流量达到1×10(17)离子/ cm(2)时,Fe-Cr-Tib2核心的硬度和弹性模量迅速下降。由于其硬度和弹性模量随着离子注量的增加而变化,Ti包层似乎与增加的辐射流量增加相对不透气。在辐照微结构中的空位/位错环和他泡形成方面讨论了机械性能的观察变化。虽然他空位复合物被广泛认为是不动的,但是基于放牧发生率XRD(GI XRD),其在此假设,其间质氦气通过(100)HCP-TIB2纳米甲簇的界限向外扩散。结果,由于纳米结晶晶格中的高浓度空位而放松压缩菌株最终导致HCP-TIB2单元细胞收缩。 (c)2017年Elsevier B.V.保留所有权利。

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