[1]Karim M R A, Daniel S, UI H E, et al. Improving the corrosion resistance of API X56 and API X70 pipeline steels by hot-dip aluminizing[J]. Key Engineering Materials, 2021, 5953: 315-321. [2]吴 笛, 张 杰, 王宇飞, 等. Q235热浸渗铝钢抗高温氧化腐蚀性能研究[J]. 石油化工设备, 2019, 48(3): 7-11. Wu Di, Zhang Jie, Wang Yufei, et al. Study on high temperature oxidation resistance of Q235 hot dip aluminized steel[J]. Petro-Chemical Equipment, 2019, 48(3): 7-11. [3]Sinan A, Yavuz K. Formation of Ti-aluminides on commercially pure Ti via the dot-fipping aluminizing process[J]. Transactions of the Indian Institute of Metals, 2020, 73: 1-8. [4]吴 笛, 张 勋, 王 翔. 热浸镀铝与热浸渗铝钢抗高温氧化腐蚀性能对比研究[J]. 自动化与仪器仪表, 2013(5): 21-22. [5]Li Z W, Ruan R W, Wang J H, et al. The influence of Al on the surface properties of hot-dip galvanized melt[J]. Journal of Wuhan University of Technology(Materials Science), 2022, 37: 117-122. [6]李 杨, 李 明, 孟 堃. 碳钢热浸渗铝工艺的研究进展[J]. 热加工工艺, 2017, 46(12): 35-37, 43. Li Yang, Li Ming, Meng Kun. Research progress of hot-dipped aluminium process for carbon steel[J]. Hot Working Technology, 2017, 46(12): 35-37, 43. [7]王 昊, 李广忠, 李亚宁. 燃煤火力电站中耐高温材料的应用情况及渗铝涂层制备技术研究进展[J]. 中国材料进展, 2020, 39(6): 487-495. Wang Hao, Li Guangzhong, Li Yaning. Application of high temperature resistantmaterials in coal-fired power plants and research progress of aluminizing coating preparation technology[J]. Materials China, 2020, 39(6): 487-495. [8]Samsu Z, Othman N K, Daud A R, et al. Properties and growth rate of intermetallic Al-Fe through hot dipped aluminizing[J]. Advanced Materials Research, 2014, 980-980: 3-7. [9]张 超. 渗铝层碳钢在弱酸性盐溶液中的腐蚀行为研究[D]. 包头: 内蒙古科技大学, 2014. Zhang Chao. Corrosion behavior of aluminized layer of carbon steel in weak acid salt solution[D]. Baotou: Inner Mongolia University of Science & Technology, 2014. [10]周灿旭, 刘越洲, 糜 亮, 等. 碳钢热浸渗铝性能研究[J]. 表面技术, 2009, 38(4): 18-19, 56. Zhou Canxu, Liu Yuezhou, Mi Liang, et al. The properresearch of carbon steel by hot dipping Al[J]. Surface Technology, 2009, 38(4): 18-19, 56. [11]孙 伟, 蔡启舟, 罗 强, 等. 扩散退火对热浸镀铝层组织与抗高温氧化性的影响[J]. 材料热处理学报, 2011, 32(1): 114-120. Sun Wei, Cai Qizhou, Luo Qiang, et al. Effects of diffusion annealing on microstructure and anti-oxidation property of hot-dipped aluminum coating on 45 steel[J]. Transactions of Materials and Heat Treatment, 2011, 32(1): 114-120. [12]Li Z W, Peng H P, Liu Y, et al. Synergy of ball-milling and pre-oxidation on microstructure and corrosion resistance of hot-dip zinc coating of nodular cast iron[J]. Journal of Materials Research and Technology, 2022(16): 1402-1412. [13]Wang X, Fan Y Z, Zhao X, et al. Process and high-temperature oxidation resistance of pack-aluminized layers on cast iron[J]. Metals, 2019, 9(6): 648. [14]张 伟, 刘爱萍, 文九巴. 镀铝温度对渗铝层/基体界面空洞生长动力学的影响[J]. 材料热处理学报, 2012, 33(4): 127-131. Zhang Wei, Liu Aiping, Wen Jiuba. Effects of aluminizing temperature on the growth kinetics of voids along interface between aluminized layer and steel substrate[J]. Transactions of Materials and Heat Treatment, 2012, 33(4): 127-131. [15]李 微, 黄 煌, 黄 伟, 等. 钢表面粉末包埋渗铝的表面状态及元素扩散机理研究进展[J]. 中国表面工程, 2021, 34(3): 25-39. Li Wei, Huang Huang, Huang Wei, et al. Research progress on surface state and element diffusion mechanism of steel with surface coating prepared by pack aluminizing method[J]. China Surface Engineering, 2021, 34(3): 25-39. [16]付 翔, 温建萍, 缪 强. 稀土Ce对热浸渗铝扩散层生长和组织的影响[J]. 热处理, 2010, 25(1): 49-52. Fu Xiang, Wen Jianping, Liao Qiang. Effcts of cerium on growth and microstructure of diffusion zone in hot-dip aluminized layer[J]. Heat Treatment, 2010, 25(1): 49-52. [17]张 伟. 钢热浸镀铝层的组织结构和稀土镧的行为研究[D]. 西安: 西安理工大学, 2006. Zhang Wei. Study on microstructure of hot dip aluminized coatings and effects of La[D]. Xi'an: Xi'an University of Technology, 2006. [18]李雪梅. Al-Si-Cu-Fe四元系650 ℃相平衡的研究[D]. 湘潭: 湘潭大学, 2014. Li Xuemei. Phase equilibrium in the Al-Si-Cu-Fe quaternary system at 650 ℃[D]. Xiangtan: Xiangtan University, 2014. [19]Zhang L J, Du Y, Chen Q, et al. Atomic mobilities and diffusivities in the fcc, L12 and B2 phases of the Ni-Al system[J]. International Journal of Materials Research, 2010, 101(12): 1461-1475. [20]Liu D D, Zhang L J, Du Y, et al. Assessment of atomic mobilities of Al and Cu in fccAl-Cu alloys[J]. Calphad-Computer Coupling of Phase Diagrams & Thermochemistry, 2009, 33(4): 761-768. [21]Dai C, Xu H H, Wang S Q, et al. Interdiffusivities and atomic mobilities in fcc Cu-Al-Fe alloys[J]. Calphad-Computer Coupling of Phase Diagrams & Thermochemistry, 2011, 35(4): 556-561. [22]Du Y, Chang Y A, Huang B Y, et al. Diffusion coefficients of some solutes in fcc and liquid Al: Critical evaluation and correlation[J]. Materials Science and Engineering A, 2003, 363(1): 140-151. |