期刊文献+

核反应堆压力容器模拟钢中富Cu纳米团簇析出早期阶段的研究 被引量:6

Study on the early-stage of copper-rich nano-clusters precipitation in model nuclear reactor pressure vessel steel
原文传递
导出
摘要 采用调质处理后热时效模拟方法,用原子探针层析成像技术研究了核反应堆压力容器模拟钢中富铜纳米团簇的析出过程.模拟钢经880℃加热水淬,660℃高温回火调质处理,并经400℃时效处理1000 h后基体中析出了富铜纳米团簇.使用MSEM(maximum separation envelope method)方法重点研究了富铜纳米团簇在析出早期阶段成分变化规律.结果表明,富铜纳米团簇容易在镍含量较高的位置形核,并随着富铜纳米团簇中铜原子聚集程度的增加,纳米团簇中心处铜含量逐渐增加,镍含量逐渐减少;在纳米团簇与α--Fe基体界面处,镍和锰含量逐渐增加,形成了富镍和富锰包裹富铜纳米团簇的结构.结合实验结果讨论了压力容器钢中合金元素镍及杂质元素磷会增加中子辐照脆化敏感性的原因. Early-stage formation of Cu-rich nano-clusters in thermal aging nuclear reactor model pressure vessel steel quenched and tempered was investigated by atom probe tomography(APT).After the initial heat treatment at 880 ℃ for 0.5 h and water quenching,the materials were tempered for 10 h at 660 ℃ and air cooled.Cu-rich nano-clusters were observed in the samples aged at 400 ℃ for 1 000 h.The change in composition of the steel in the early-stage of precipitation of Cu-rich nano-clusters was studied by the maximum separation envelope method(MSEM).Cu nanoclusters are observed to form from high nickel regions.The Cu concentration increases and the Ni concentration decreases at the central cores with increasing Cu atoms congregation.Ni and Mn atoms aggregation on the exterior side of the cluster/matrix interface is also evident.Based on experimental results,the reason that Ni and P can increase the sensitivity to neutron irradiation embrittlement of the nuclear reactor pressure vessel steel is discussed.
出处 《北京科技大学学报》 EI CAS CSCD 北大核心 2010年第1期39-43,共5页 Journal of University of Science and Technology Beijing
基金 国家重点基础研究发展计划资助项目(No.2006CB605003) 国家自然科学基金重点资助项目(No.50931003) 上海市重点学科建设资助项目(No.S30107)
关键词 压力容器模拟钢 原子探针层析成像 时效处理 富Cu纳米团簇 nuclear reactor pressure vessel steel atom probe tomography(APT) thermal aging Cu-rich nano-clusters
作者简介 作者简介:王伟(1973-),男,讲师,博士研究生; 周邦新(1935一),男,研究员,中国工程院院士,E.mail:zhoubx@shu.edu.cn
  • 相关文献

参考文献22

  • 1Toyama T, Nagai Y, Tang Z, et al. Nanostructural evolution in surveillance test specimens of a commercial nuclear reactor pressure vessel studied by three-dimenslonal atom probe and positron annihilation. Acta Mater, 2007, 55 : 6852.
  • 2Miller M K, Russell K F, Sokolov M A, et al. APT characterization of irradiated high nickel RPV steels. J Nucl Mater, 2007, 361 : 248.
  • 3Fujii K, Fukuya K, Nakata N, et al. Hardening and microstructural evolution in A533B steels under high-dose electron irradiation. J Nucl Mater, 2005, 340 : 247.
  • 4Pareige P, Radiguet B, Suvorov A, et al. Three-dimensional atom probe study of irradiated, annealed and re-irradiated VVER 440 weld metals. Surf Interface Anal, 2004, 36:581.
  • 5Nagai Y, Hasegawa M, Tang Z, et al. Positron confinement in ultrafine embedded particles: Quantum-dot-like state in an Fe-Cu alloy. Phys Rev B, 2000, 61(10): 6574.
  • 6Golubov S I, Osetsky Yu N, Serra A, et al. The evolution of copper precipitates in binary Fe-Cu alloys during ageing and irradiation. J Nucl Mater, 1995, 226:252.
  • 7周邦新,刘文庆.三维原子探针及其在材料科学研究中的应用[J].材料科学与工艺,2007,15(3):405-408. 被引量:17
  • 8Stephenson L T, Moody M P, Liddicoat P V, et al. New techniques for the analysis of fine-scaled clustering phenomena within atom probe tomography (APT) data. Microsc Microanal, 2007,13 : 448.
  • 9Karnesky R A, Isheim D, Seidman D N. Direct measurement of two-dimensional and three-dimensional interprecipitate distance distributions from atom-probe tomographic reconstructions. Appl Phys Lett, 2007, 91 : Article No. 013111.
  • 10Cerezo A, Clifton P H, Lozano-Perez S, et al. Overview: recent progress in three-dimensional atom probe instruments and applications. Microsc Microanal, 2007, 13 : 408.

二级参考文献23

  • 1Thomson R C, Miller M K. Acta Mater, 1998; 46:2203.
  • 2Babu S S, Hono K, Sakurai T. Appl Surf Sci, 1993; 67: 321.
  • 3Chang L, Smith G D W. J de Physique, 1984; 45:397.
  • 4Venugopalan D, Kirkaldy J S. Hardenability Concepts with Applications to Steels. New York: AIME, 1978:249.
  • 5Miller M K. Atom Probe Tomography: Analysis at the Atomic Level. New York: Kluwer Academic/Plenum Publishers, 2000:25.
  • 6Thomson R C, Miller M K. Appl Surf Sci, 1996; 94-95: 313.
  • 7Aborn R H. Trans ASM, 1956; 48:51.
  • 8Miller M K, Beaven P A, Smith G D W. Metall Trans, 1981; 12:1197.
  • 9Zhu C, Xiang X Y, Cerezo A, Hardwicke R, Krauss G, Shith G D W. Ultramicroscopy, 2007; 107:808.
  • 10Miyamoto G, Oh J C, Hono K, Furuhara T, Maki T. Acta Mater, 2007; 55:5027.

共引文献37

同被引文献57

  • 1王月香,周平,麻衡,李永强.热处理工艺对低温压力容器用钢组织性能的影响[J].材料热处理学报,2012,33(S1):77-80. 被引量:10
  • 2周邦新,刘文庆.三维原子探针及其在材料科学研究中的应用[J].材料科学与工艺,2007,15(3):405-408. 被引量:17
  • 3Pareige P, Russell K F, Miller M K. Appl Surf Sci, 1996; 94:362.
  • 4Worall G M, Buswell J T, English C A, Hetherington M G, Smith G D. J Nuel Mater, 1987; 148:107.
  • 5Akamatsu M, Van Duysen J C Pareige P, Auger P. d Nucl Mater, 1995; 225:192.
  • 6Preige P, Van Duysen J C, Auger P. Appl Surf Sci, 1993; 67:342.
  • 7Auger P, Pareige P, Welzel S, Van duysen J C. J Nucl Mater, 2000; 280:331.
  • 8Miller M K, Burke M G. J Phys, 1987; 48C: 429.
  • 9Monzen R, Iguchi M, Jenkins M L. Philos Mag Lett, 2000; 80:137.
  • 10Miller M K, Brenner S S. In: Swanson L W, Bell A, eds., Proc 28th Int Field Emission Symposium, The Oregon Graduate Center, Beaverton, OR, 1981; 6:27.

引证文献6

二级引证文献20

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部