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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 >Influences of W contents on microstructures, mechanical properties and the shielding performance for neutrons and gamma-rays of Fe-W-C alloy
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Influences of W contents on microstructures, mechanical properties and the shielding performance for neutrons and gamma-rays of Fe-W-C alloy

机译:W含量对Fe-W-C合金中子和γ射线微结构,力学性能和屏蔽性能的影响

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摘要

Shielding materials, Fe-W-C alloy (wt.%) with the different tungsten content and higher density was successfully prepared by powder metallurgical processing sequences comprising of mechanical alloying, compaction and liquid phase sintering. The process parameters such as mechanical alloying conditions, compaction pressure, sintering atmosphere, and sintering schedule were optimized to achieve the desired sintered density. The synthesized alloy was characterized for the evolution of microstructure, phases and mechanical properties using scanning electron microscopy (SEM), energy dispersive spectrometry (EDS), tensile testing, X-Ray diffraction (XRD), etc. The sintered alloy was found to comprise with the matrix phase a-Fe and the binding phases such as Fe2W2C, Fe6W6C and Fe2W. Extensive, EDS analysis revealed the distribution of Fe, Wand C element in the matrix phase, binding phase and blocky binding zone, respectively. W contents altered the density and microstructure of the alloy significantly. The tensile strength and ductility of the as-sintered Fe-W-C alloy was found to be 345 MPa and 17.5%, respectively. SEM characterization of the tensile-fracture surface showed mixed mode of fracture, i.e. ductile and brittle fracture in alpha-Fe and W particles, respectively. The gamma-ray shielding performance of the alloys was carried out by BH1326 gamma-ray shielding tester, and the half-attenuation thickness of alloy containing 16% W was the minimum, about 8.5 mm. The results of neutron shielding simulation show that the transmission of the neutron shield of alloy Fe-W-C containing 16% W was the minimum. (C) 2020 Published by Elsevier B.V.
机译:通过粉末冶金加工序列成功地制备了具有不同钨含量和较高密度的Fe-W-C合金(Wt。%)。包括机械合金化,压实和液相烧结成功制备了不同的钨含量和较高密度。优化诸如机械合金条件,压实压力,烧结气氛和烧结时间表的过程参数,以达到所需的烧结密度。合成合金的特征在于使用扫描电子显微镜(SEM),能量分散光谱(EDS),拉伸试验,X射线衍射(XRD)等进行微观结构,相和机械性能的演化。发现烧结合金包括用基质相A-Fe和结合相,例如Fe 2W2C,Fe6W6C和Fe2W。广泛的EDS分析显示了基质相,结合相和嵌块结合区中的Fe,棒C元素的分布。 W含量明显改变了合金的密度和微观结构。发现烧结Fe-W-C合金的拉伸强度和延展性分别为345MPa和17.5%。拉伸断裂表面的SEM表征显示骨折的混合模式,即α-Fe和W颗粒中的延性和脆性骨折。合金的伽马射线屏蔽性能由BH1326伽马射线屏蔽测试仪进行,含有16%W的合金的半衰减厚度最小,约为8.5mm。中子屏蔽仿真结果表明,含有16%W的合金Fe-W-C的中子屏蔽的传动最小。 (c)2020由elsevier b.v发布。

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