真空 ›› 2026, Vol. 63 ›› Issue (2): 13-21.doi: 10.13385/j.cnki.vacuum.2026.02.02
刘锦涛1, 朱洪波2, 牟清2, 胡天时1, 田修波1, 巩春志1, 耿慧远1, 王子嘉1
LIU Jintao1, ZHU Hongbo2, MU Qing2, HU Tianshi1, TIAN Xiubo1, GONG Chunzhi1, GENG Huiyuan1, WANG Zijia1
摘要: 管内表面抗腐蚀性能的不足严重限制其使用寿命,因此在管内壁制备高质量的涂层尤为重要。本文采用双极性高功率脉冲磁控溅射技术,在管内放置柱状靶作为阴极来制备高质量Cr涂层。通过SEM、XRD、划痕、电化学腐蚀、高温氧化等方法对其进行表征和测试,研究了沉积温度对管内沉积的Cr涂层微观组织、力学性能、耐腐蚀性能以及高温氧化抗性的影响规律。研究结果表明,随着沉积温度从25 ℃升高到300 ℃,各组涂层均沿(110)面择优生长;受热应力影响,在100 ℃时涂层在韧性方面最优;而25 ℃条件下制备的涂层表现出最高的耐蚀性和高温氧化抗性,其中腐蚀电流最低可达4.9×10-4 A·cm-2,氧化层厚度最小,氧化增重最少,更小晶粒与更高致密度抑制腐蚀介质与氧扩散。沉积温度为100 ℃时涂层的耐蚀性和高温氧化抗性与沉积温度在25 ℃时相近,综合结构、力学与服役性能,100 ℃沉积涂层综合性能最优。
中图分类号: TB43
| [1] 顾国成, 吴文森. 钢铁材料的防蚀涂层[M]. 北京:科学出版社, 1987. [2] 张文, 邱长军, 曾小安, 等. 表面镀Cr膜锆合金的抗高温氧化性能研究[J]. 稀有金属与硬质合金, 2017, 45(6): 71-75. [3] RIBIÈRE N, ESVAN J, ENGLER N, et al. An XPS and TEM study of the composition and structure of native oxides on the inner surface of as-received Ni base alloy steam generator tubes[J]. Applied Surface Science, 2024, 654: 159514 [4] MULLIGAN C P, SMITH S B, VIGILANTE G N,et al.Characterization and comparison of magnetron sputtered and electroplated gun bore coatings[J]. Joural of Pressure Vessel Technology,2006,128(5):240-245. [5] 张菁. 化学气相沉积技术发展趋势[J]. 表面技术, 1996, 2 :1-3,55. [6] 田民波. 薄膜技术与薄膜材料[M]. 北京:清华大学出版社, 2006. [7] MATTOX D M.Handbook of physical vapor deposition (PVD) processing[M]. New Jersey: Noyes Publications, 1998. [8] 于德洋, 翁立军. 物理气相沉积减摩与耐磨涂层[J]. 摩擦学学报, 1996,16(3):91-97. [9] 贾嘉. 溅射法制备纳米薄膜材料及进展[J]. 半导体技术, 2004(7):70-73. [10] ERDOĞAN E, KUNDAKÇI. Influence of substrate and substrate temperature on the structural, optical and surface properties of InGaN thin films prepared by RFMS method[J]. Microelectronic Engineering, 2019, 207:15-18. [11] QIN X F, SUI C Y, DI L X.Influence of substrate temperature on the morphology and structure of bismuth thin films deposited by magnetron sputtering[J]. Vacuum, 2019, 166: 316-322. [12] WU H P, TIAN X B, ZHENG L L, et al.Improvement of plasma uniformity and mechanical properties of Cr films deposited on the inner surface of a tube by an auxiliary anode near the tube tail[J]. Plasma Science & Technology, 2022, 24(5): 054008. [13] 贾建, 郭会勇, 高晓光, 等. 漂移管工作温度对离子迁移率谱的影响[J]. 分析化学, 2006(12):1783-1786. [14] 李望君. 压电薄膜/弹性基底结构的屈曲分析及Stoney公式[D].浙江工业大学,2018. [15] SONG W L, SUN K, ZHAO G M, et al.Performance of MoS2/Zr Composite Coatings at Different Deposition Temperatures[J]. Materials, 2021, 14(17):5100. [16] NAKAMURA T, OKIMURA K.Ti ion density in inductively coupled plasma enhanced dc magnetron sputtering[J]. Vacuum, 2004, 74(3-4): 391-395. [17] PARK J K, KIM J H, PARK S I, et al.Evolution of grain structure of as-deposited Cr thin films with deposition temperature[J]. Scripta materialia, 2003, 48(8): 1161-1166. [18] ZHANG S, SUN D, FU Y Q, et al.Effect of sputtering target power on microstructure and mechanical properties of nanocomposite nc-TiN/a-SiN [19] FERREIRA F, SERRA R, OLIVEIRA J C, et al.Effect of peak target power on the properties of Cr thin films sputtered by HiPIMS in deep oscillation magnetron sputtering (DOMS) mode[J]. Surface and Coatings Technology, 2014, 258: 249-256. [20] LIN J L, MOORE J J, SPROUL W D, et al.Modulated pulse power sputtered chromium coatings[J]. Thin Solid Films, 2009, 518(5): 1566-1570. [21] MUSIL J.Hard and superhard nanocomposite coatings[J]. Surface and Coatings Technology, 2000, 124(1-3): 322-330. [22] ZHANG X, TIAN X B, ZHAO Z W, et al.Evaluation of the adhesion and failure mechanism of the hard CrN coatings on different substrates[J]. Surface & Coatings Technology, 2019, 364:135-143. [23] GERTH J, WIKLUND U.The influence of metallic interlayers on the adhesion of PVD TiN coatings on high-speed steel[J]. Wear, 2008,264(9-10):885-892. [24] LAKSHMI D V, BABU P S, L KRISHNA R, et al. Corrosion and erosion behavior of iron aluminide (FeAl(Cr)) coating deposited by detonation spray technique[J]. Advanced Powder Technology, 2021, 32(7): 2192-2201. [25] QIAN C K, LIU Q, LI K J, et al.Electrochemical corrosion behavior variation of WC-10Co4Cr coating subjected to different magnetic treatments and its mechanism[J]. Corrosion Science, 2024, 229: 111883. |
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