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首页> 外文期刊>Journal of Nuclear Materials: Materials Aspects of Fission and Fusion >Tungsten-chromium coatings on reduced activation ferritic/martensitic steels prepared by laser melting deposition process
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Tungsten-chromium coatings on reduced activation ferritic/martensitic steels prepared by laser melting deposition process

机译:通过激光熔化沉积工艺制备的减少活化铁素体/马氏体钢的钨铬涂层

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摘要

Tungsten-chromium alloys are promising plasma facing materials in future fusion reactors considering the loss of coolant accident (LOCA). A laser melting deposition (LMD) additive manufacturing technique has been used in this study to deposit 90W-10Cr coatings on reduced activation ferritic/martensitic (RAFM) steels. The results show that the coatings have metallurgical bonding with the RAFM steel substrates. The W-steel joint have graded transitions of compositions, microstructures, and phases along the deposition direction due to the dilution effects of the substrates, which are beneficial to reduce thermal stresses of W-steel joints. Pores and cracks are seen in the coatings prepared using different process parameters. Low and high input energy densities can both lead to pore formations due to the combined effects of lack of fusion, residual of delivered gas, and evaporations of low melting point elements. Cracking is driven by the internal stress during LMD process and liquation of binding matrix. Fe7W6 intermetallics are mainly formed near the bonding boundaries of W-steel joint, showing a dispersed distribution either scattered in the matrix or surrounding the scattered W particles. The top and mid-top regions of coatings have unique microstructures showing W particles embedded in Cr-Fe based matrix, which are supposed to have reliable performance both during the operations of reactors and the LOCA. (C) 2020 Elsevier B.V. All rights reserved.
机译:考虑到失水事故(LOCA),钨铬合金是未来聚变反应堆中很有前途的等离子体材料。本研究采用激光熔融沉积(LMD)添加剂制造技术,在低活化铁素体/马氏体(RAFM)钢上沉积90W-10Cr涂层。结果表明,涂层与RAFM钢基体具有冶金结合。由于基体的稀释效应,W型钢接头具有成分、微观结构和相沿沉积方向的梯度转变,这有利于降低W型钢接头的热应力。在使用不同工艺参数制备的涂层中可以看到气孔和裂纹。由于未熔合、输送气体残余和低熔点元素蒸发的综合影响,低和高输入能量密度都可能导致孔隙形成。LMD过程中的内应力和结合基质的液化导致开裂。Fe7W6金属间化合物主要形成于钨-钢接头的结合界面附近,呈分散分布,或分散在基体中,或分散在分散的钨颗粒周围。涂层的顶部和中顶部区域具有独特的微观结构,显示出嵌入Cr-Fe基基体中的W颗粒,这些颗粒应在反应堆运行和LOCA期间具有可靠的性能。(C) 2020爱思唯尔B.V.版权所有。

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