[1]Ma Minyu, Han Aihua, Zhang Zunjun, et al. The role of Si on microstructure and high-temperature oxidation of CoCr2FeNb0.5Ni high-entropy alloy coating[J]. Corrosion Science, 2021, 185: 109417-109421. [2]]Zhao Liang, Tao Wen, Wang Guangwen, et al. Intelligent anti-corrosion expert system based on big data analysis[J]. Anti-corrosion Methods and Materials, 2021, 68(1): 17-28. [3]Chen Yabo, Wang Jihu, Wen Shaoguo, et al. Zinc phosphate coated modified hollow glass beads and their thermal insulation and anticorrosion performance in coatings[J]. Ceramics International, 2021, 47(16): 23507-23517. [4]刘欣宇. 石油化工设备腐蚀原因及防腐管理[J]. 化工管理, 2023, 11: 112-114. Liu Xinyu. Corrosion causes and anticorrosion management of petrochemical equipment[J]. Chemical Enterprise Management, 2023, 11: 112-114. [5]Lang Zhihui, Wang Deguang, Liu Hui, et al. Mapping the knowledge domains of research on corrosion of petrochemical equipment: An informetrics analysis-based study[J]. Engineering Failure Analysis, 2021, 129: 105716. [6]Rezaei Milad, Mahidashti Zeynab, Eftekhari Sajad, et al. A corrosion failure analysis of heat exchanger tubes operating in petrochemical refinery[J]. Engineering Failure Analysis, 2021, 119: 105011. [7]Liu Yufei, Cui Xiufang, Jin Guo, et al. New nano-lamellar eutectic high-entropy alloy coating by laser cladding[J]. Materials Chemistry and Physics, 2024, 320: 129469. [8]Zhu Zhengxing, Liu Xiubo, Liu Yifan, et al. Microstructure and high temperature tribological properties of laser cladding FeCoCrNi-based high-entropy alloy coatings[J]. Journal of Materials Engineering, 2023, 51(3): 78-88. [9]赵森林, 陈希章. Al1.2CoxCrFeNi高熵合金的相形成规律及其力学性能[J]. 材料工程, 2023, 51(5): 104-111. Zhao Senlin, Chen Xizhang. Phase formation and mechanical properties of Al1.2CoxCrFeNi high entropy alloys[J]. Journal of Materials Engineering, 2023, 51(5): 104-111. [10]张孝贤, 解 芳, 翟长生, 等. 感应熔涂温度对FeCoCrNiMoBSi高熵合金涂层抗高温氧化性能的影响[J]. 金属热处理, 2023, 48(6): 52-58. Zhang Xiaoxian, Xie Fang, Zhai Changsheng, et al. Effect of induced cladding temperature on high temperature oxidation resistance of FeCoCrNiMoBSi high entropy alloy coating[J]. Heat Treatment of Metals, 2023, 48(6): 52-58. [11]]Chen Jian, Zhou Xueyang, Wang Weili, et al. A review on fundamental of high entropy alloys with promising high-temperature properties[J]. Journal of Alloys and Compounds, 2018, 760: 15-30. [12]]Jin Guo, Cai Zhaobing, Guan Yajie, et al. High temperature wear performance of laser-cladded FeNiCoAlCu high-entropy alloy coating[J]. Applied Surface Science, 2018, 445: 113-122. [13]张楠楠, 郝德喜, 马永亮, 等. AlCoCrFeNiV高熵合金涂层制备及力学性能[J]. 沈阳工业大学学报, 2021, 43(6): 641-645. Zhang Nannan, Hao Dexi, Ma Yongliang, et al. Preparation and mechanical properties of AlCoCrFeNiV high entropy alloy coatings[J]. Journal of Shenyang University of Technology, 2021, 43(6): 641-645. [14]]Rao Ziyuan, Po Yentung, Xie Ruiwen, et al. Machine learning-enabled high-entropy alloy discovery[J]. Science, 2022, 378: 78-85. [15]张 骁, 刘 亮, 商 剑, 等. 热处理对双FCC相CoCrFeNiCu高熵合金组织与性能的影响[J]. 金属热处理, 2021, 46(2): 157-160. Zhang Xiao, Liu Liang, Shang Jian, et al. Effect of heat treatment on microstructure and properties of dual FCC-phase CoCrFeNiCu high entropy alloy[J]. Heat Treatment of Metals, 2021, 46(2): 157-160. [16]]Zhao Haichao, Liang Xiubing, Qiao Yulin, et al. Research progress in high-entropy alloy coatings by laser cladding[J]. Journal of Materials Engineering, 2019, 47(10): 33-43. [17]解 芳, 翟长生, 荣海松, 等. 激光熔覆功率对FeCrNiCoMoBSi高熵合金涂层电化学腐蚀性能的影响[J]. 功能材料, 2024, 55(4): 4029-4036. Xie Fang, Zhai Changsheng, Rong Haisong, et al. Effect of laser cladding power on the electrochemical corrosion performance of FeCrNiCoMoBSi high-entropy alloy coatings[J]. Journal of Functional Materials, 2024, 55(4): 4029-4036. [18]]Feng Li, Yang Yang, Zhao Yanchun, et al. Corrosion behaviors and mechanism of AlxCrFeMnCu high-entropy alloys in a 3.5wt% NaCl solution[J]. Corrosion Science, 2024, 233: 112087. [19]]Zhou Zhidan, Liang Xiubing, Chen Yongxiong, et al. Effects of Al addition on microstructure and wear resistance of high-velocity-oxygen-fuel-sprayed FeCoNiCrMn high entropy alloy coating[J]. Science of Advanced Materials, 2019, 11(5): 685-693. [20]Nadutov V M, Proshak A V, Makarenko S Y, et al. Creation and Mossbauer studies of high-entropy physical vapor deposition by cathode arc evaporation (PVD CAE) coating AlFeCoNiCuCr[J]. Materialwissenschaft Und Werkstofftechnik, 2016, 47(2): 272-277. [21]Alexander D Pogrebnjak, Ivan V Yakushchenko, Oleksandr V Bondar, et al. Irradiation resistance, microstructure and mechanical properties of nanostructured (TiZrHfVNbTa)N coatings[J]. Journal of Alloys and Compounds, 2016, 679: 155-163. [22]]Shang Caiyun, Axinte Eugen, Sun Jun, et al. CoCrFeNi(W1-xMox) high-entropy alloy coatings with excellent mechanical properties and corrosion resistance prepared by mechanical alloying and hot pressing sintering[J]. Materials and Design, 2017, 117: 193-202. [23]]Zhang G J, Tian Q W, Yin K X, et al. Microstructure, hardness and wear behavior of AlxCoCrFe2Ni (x=0.3, 0.7, 1.0) high entropy alloy coatings prepared by laser cladding[J]. JOM, 2021, 73(11): 3597-3605. [24]蔡召兵. NiCo(CrTiV, FeAlCu)系高熵合金及涂层的制备与性能研究[D]. 哈尔滨: 哈尔滨工程大学, 2018. Cai Zhaobing. Preparation and properties of NiCo(CrTiV, FeAlCu) high-entropy alloys and coatings[D]. Harbin: Harbin Engineering University, 2018. [25]Shu F Y, Liu S, Zhao H Y, et al. Structure and high-temperature property of amorphous composite coating synthesized by laser cladding FeCrCoNiSiB high-entropy alloy powder[J]. Journal of Alloys and Compounds, 2018, 731: 662-666. [26]邱星武, 刘春阁. 激光加工参数对Al2CoCrCuFeNiTi高熵合金涂层质量的影响[J]. 粉末冶金材料科学与工程, 2015, 20(1): 59-64. Qiu Xingwu, Liu Chunge. Effect of laser processing parameters on quality of Al2CoCrCuFeNiTi high-entropy alloys coating[J]. Materials Science and Engineering of Powder Metallurgy, 2015, 20(1): 59-64. [27]]Cai Yangchuan, Chen Yao, Manladan Sunusi Marwana, et al. Influence of dilution rate on the microstructure and properties of FeCrCoNi high-entropy alloy coating[J]. Materials and Design, 2018, 142: 124-137. [28]]Ma Shibang, Zhang Congzheng, Li Liang, et al. Microstructure and properties of CoCrFeNiMnTix high-entropy alloy coated by laser cladding[J]. Coatings, 2024, 14(5): 620. [29]丁 骁, 杜晓洁, 马新元, 等. 高耐蚀Fe-Cr-Ni系中熵合金在H2SO4溶液中的腐蚀行为[J]. 机械工程材料, 2023, 47(2): 54-60. Ding Xiao, Du Xiaojie, Ma Xinyuan, et al. Corrosion behavior of high corrosion resistant Fe-Cr-Ni medium-entropy alloy in H2SO4 solution[J]. Materials for Mechanical Engineering, 2023, 47(2): 54-60. [30]]Sun Y P, Wang Z, Yang H J, et al. Effects of the element La on the corrosion properties of CrMnFeNi high entropy alloys[J]. Journal of Alloys and Compounds, 2020, 842: 155825. [31]Sefa Emre Sünbül. A study on the structural, wear, and corrosion properties of CoCuFeNiMo high-entropy alloy[J]. Journal of Alloys and Compounds, 2024, 996: 174881. [32]余文康. 激光熔覆CoCrFeNi-X高熵合金涂层的制备与性能研究[D]. 武汉: 华中科技大学, 2021. Yu Wenkang. Study on preparation and properties of laser cladding CoCoFeNi-X high entropy alloy coatings[D]. Wuhan: Huazhong University of Science and Technology, 2021. [33]Yu Kedong, Zhao Wei, Li Zhen, et al. High-temperature oxidation behavior and corrosion resistance of in-situ TiC and Mo reinforced AlCoCrFeNi-based high entropy alloy coatings by laser cladding[J]. Ceramics International, 2023, 49(6): 10151-10164. |