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添加Nb對Zr-0.75Sn-0.35Fe-0.15Cr合金高溫蒸汽氧化行為的影響
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上海大學材料研究所

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國家自然科學基金項目(51871141)


Effect of adding Nb on high temperature steam oxidation behavior of Zr-0.75Sn-0.35Fe-0.15Cr alloy
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The Key Laboratory for Advance Micro-Analysis,Shanghai University

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    摘要:

    本文熔煉了Zr-0.75Sn-0.35Fe-0.15Cr-xNb(x=0、0.15、0.50、1.00,wt.%)合金,并制備成板狀樣品。采用TG-DSC研究了4種鋯合金在模擬LOCA工況下800~1200 ℃的抗高溫蒸汽氧化行為和相變行為,利用金相顯微鏡分析了氧化樣品橫截面的顯微組織。結果表明,4種鋯合金的抗高溫蒸汽氧化性能并沒有隨Nb含量的變化呈單一的變化規(guī)律,其氧化動力學大多為線性規(guī)律,只有添加0.5%Nb的合金在1000 ℃的氧化動力學發(fā)生了兩次轉(zhuǎn)折,由線性規(guī)律轉(zhuǎn)變?yōu)閮缰笖?shù)規(guī)律再轉(zhuǎn)變?yōu)榫€性規(guī)律;鋯合金中基體的相轉(zhuǎn)變溫度隨著Nb含量的增加而降低,而其氧化物的相變行為并沒有隨Nb含量的變化呈單一變化趨勢,這說明Nb含量對鋯合金氧化物的相變行為的影響比對合金相變行為的影響復雜。氧化溫度為800 ℃、1000 ℃和1200 ℃時,氧化樣品截面組織分別為:ZrO2和α-Zr(O),ZrO2、α-Zr(O)和原β-Zr層,ZrO2和α-Zr(O); 800 ℃氧化樣品截面各層組織的厚度占比基本不隨Nb含量發(fā)生變化;1000 ℃氧化樣品截面α-Zr(O)層的厚度占比隨Nb含量的增加而增大,原β-Zr層的厚度占比正好相反,出現(xiàn)了指狀侵入的α-Zr(O)。1200 ℃氧化樣品截面顯微組織厚度占比隨Nb含量的變化比較復雜。這說明Nb有促進β→α-Zr(O)轉(zhuǎn)變的作用。

    Abstract:

    Zr-0.75Sn-0.35Fe-0.15Cr-xNb (x=0, 0.15, 0.50, 1.00, wt.%) alloys were smelt and parpared to plate specimens a in this paper. The high temperature steam oxidation behavior of four zirconium alloys at 800~1200 ℃ under simulated LOCA conditions was studied, and the cross-sectional microstructure was analyzed by metallographic microscope. The results show that the gain weight after oxidation of the four zirconium alloys does not have consisitent trend with the change of Nb content, and the oxidation kinetics is mostly linear. Only the oxidation kinetics of the alloy with 0.5% Nb at 1000 ℃ has two transitions, that is, from linear law to power exponential law and then to linear law. The transformation temperature of the matrix in zirconium alloy decreases with the increase of Nb content, while the phase transition behavior of its oxides does not show consisitent trend with the change of Nb content, it shows that the influence of Nb content on the phase transformation behavior of zirconium alloy and oxide is more complicated than that of the alloy. When the oxidation temperature is 800 ℃, 1000 ℃ and 1200 ℃, the cross-sectional structure of the oxidized sample is: ZrO2 and α-Zr(O), ZrO2, α-Zr(O) and prior β-Zr layer, ZrO2 and α-Zr(O). The thickness ratio of each layer of the cross section of the 800 ℃ oxidized sample does not change with the Nb content. The proportion of the thickness of the α-Zr(O) layer in the cross-section of the oxidized sample at 1000 ℃ increases with the increase of the Nb content. The proportion of the thickness of the prior β-Zr layer is just the opposite, and there is a finger-like intrusion of α-Zr(O). The ratio of the thickness of the microstructure of the cross-section of the oxidized sample at 1200 ℃ varies with the Nb content more complicated. It shows that Nb can promote the transformation of β→α-Zr(O).

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張佳楠,姚美意.添加Nb對Zr-0.75Sn-0.35Fe-0.15Cr合金高溫蒸汽氧化行為的影響[J].稀有金屬材料與工程,2022,51(5):1837~1844.[Zhang Jianan, Yao Meiyi. Effect of adding Nb on high temperature steam oxidation behavior of Zr-0.75Sn-0.35Fe-0.15Cr alloy[J]. Rare Metal Materials and Engineering,2022,51(5):1837~1844.]
DOI:10.12442/j. issn.1002-185X.20210417

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  • 收稿日期:2021-05-13
  • 最后修改日期:2021-07-04
  • 錄用日期:2021-07-12
  • 在線發(fā)布日期: 2022-06-09
  • 出版日期: 2022-05-30