[1] ZHOU Liang,LUO Fa,ZHOU Wancheng,et al. Influence of FeCrAl Content on microstructure and bonding strength of plasma-sprayed FeCrAl/Al2O3 coatings[J]. Journal of Thermal Spray Technology,2016,25(3):509-517. [2] BITZER M,RAUHUT N,MAUER G,et al. Cavitation-resistant NiTi coatings produced by low-pressure plasma spraying (LPPS)[J]. Wear,2015,328-329:369-377. [3] WANG L,HABIBI M H,ELDRIDGE J I,et al. Infrared radiative properties of plasma-sprayed BaZrO3 coatings[J]. Journal of the European Ceramic Society,2014,34(15):3941-3949. [4] FAUCHAIS P L,HEBERLEIN J V R,BOULOS M I. Thermal Spray Fundamentals[M]. New York:Springer,2014. [5] 李国禄,李楠楠,王海斗,等. 不同喷涂工艺制备的Al2O3-13%TiO2涂层表面自由能与冲蚀磨损性能研究[J]. 机械工程学报,2016,52(10):59-66. LI Guolu,LI Nannan,WANG Haidou,et al. Research on surface free energy and erosion wear property of A12O3-13% TiO2 coatings prepared by different spraying processes[J]. Journal of Mechanical Engineering,2016,52(10):59-66. [6] 陈书赢,王海斗,徐滨士,等. 热喷涂层滚动接触疲劳寿命演变规律研究进展[J]. 机械工程学报,2014,50(8):23-33. CHEN Shuying,WANG Haidou,XU Binshi,et al. Law of rolling contact fatigue life of thermal spray coatings:A review[J]. Journal of Mechanical Engineering,2014,50(8):23-33. [7] 王海斗,朱丽娜,徐滨士. 纳米压痕法测量等离子喷涂铁基涂层表面的残余应力[J]. 机械工程学报,2013,49(7):1-4. WANG Haidou,ZHU Lina,XU Binshi. Measurement of residual stress of plasma sprayed Fe-based coating by nanoindentation[J]. Journal of Mechanical Engineering,2013,49(7):1-4. [8] LEVINGSTONE T J,ARDHAOUI M,BENYOUNIS K,et al. Plasma sprayed hydroxyapatite coatings:Understanding process relationships using design of experiment analysis[J]. Surface & Coatings Technology,2015,283:29-36. [9] YUSOFF N H N,GHAZALI M J,ISA M C,et al. Optimization of plasma spray parameters on the mechanical properties of agglomerated Al2O3-13%TiO2,coated mild steel[J]. Materials & Design,2012,39(3):504-508. [10] HEIMANN R B. Plasma-spray coating:principles and applications[M]. New Jersey:John Wiley & Sons,2008. [11] 许中林,董天顺,康嘉杰,等. 基于均匀设计的NiCr-Cr3C2超声速等离子喷涂工艺参数优化[J]. 机械工程学报,2014,50(18):43-49. XU Zhonglin,DONG Tianshun,KANG Jiajie,et al. Parameters optimizing of NiCr-Cr3C2 coating deposited by supersonic plasma spraying based on uniform design[J]. Journal of Mechanical Engineering,2014,50(18):43-49. [12] FAUCHAIS P,VARDELLE A. Heat,mass and momentum transfer in coating formation by plasma spraying[J]. International Journal of Thermal Sciences,2000,39(9-11):852-870. [13] LIU T,ANSAR A,ARNOLD J. A Study of the Influence of the Surrounding Gas on the Plasma jet and coating quality during plasma spraying[J]. Plasma Chemistry & Plasma Processing,2017:1-24. [14] CIZEK J,KHOR K A. Role of in-flight temperature and velocity of powder particles on plasma sprayed hydroxyapatite coating characteristics[J]. Surface & Coatings Technology,2012,206:2181-2191. [15] KIRSTEN B,NILS K,THOMAS W,et al. Particle in-flight and coating properties of Fe-based feedstock materials sprayed with modern thermal spray systems[J]. Journal of Thermal Spray Technology,2012,22:363-370. [16] FANG J,XU W,ZHAO Z,et al. In-flight behaviors of ZrO2 particle in plasma spraying[J]. Surface & Coatings Technology,2007,201:5671-5675. [17] ZHAO Lidong,KLAUS S,ARNE F,et al. Study on atmospheric plasma spraying of Al2O3 using on-line particle monitoring[J]. Surface and Coatings Technology,2003,168:186-190. [18] WANG Y,HUA J,LIU Z,et al. Melting index characterization and thermal conductivity model of plasma sprayed YSZ coatings[J]. Journal of the European Ceramic Society,2012,32(14):3701-3707. [19] LI Li,ANIRUDHA V,SANJAY S,et al. Particle characterization and splat formation of plasma sprayed zirconia[J]. Journal of Thermal Spray Technology,2006,15(1):97-105. [20] LIU Kun,TAN Jianjiang,BAI Yu,et al. Particle in-flight behavior and its influence on the microstructure and mechanical property of plasma sprayed La2Ce2O7 thermal barrier coatings[J]. Materials Science & Engineering A,2015,625:177-185. [21] LI H,COSTIL S,LIAO H L,et al. Effects of surface conditions on the flattening behavior of plasma sprayed Cu splats[J]. Surface & Coatings Technology,2006,200:5435-5446. [22] DHIMAN R,CHANDRA S. Freezing-induced splashing during impact of molten metal droplets with high Weber numbers[J]. International Journal of Heat & Mass Transfer,2005,48(25):5625-5638. [23] 陈丹,王玉,白宇,等. 等离子喷涂中雷诺数对熔滴扁平化行为的影响[J]. 无机材料学报,2015,30(1):65-70. CHEN Dan,WANG Yu,BAI Yu,et al. Effect of Reynolds number of molten particle on splat formation in plasma spraying[J]. Journal of Inorganic Materials,2015,30(1):65-70. [24] FAUCHAIS P,VARDELLE A,VARDELLE M,et al. Knowledge concerning splat formation:An invited review[J]. Journal of Thermal Spray Technology,2004,13(3):337-360. [25] SYED A A,DENOIRJEAN A,HANNOYER B,et al. Influence of substrate surface conditions on the plasma sprayed ceramic and metallic particles flattening[J]. Surface & Coatings Technology,2005,200:2317-2331. [26] 谭超,魏正英,魏培,等. 内送粉超音速等离子喷涂颗粒飞行状态分析[J]. 西安交通大学学报,2014,48(6):91-97. TAN Chao,WEI Zhengying,WEI Pei,et al. In-flight particle behavior in internal powder injection supersonic plasma spray[J]. Journal of Xi'an Jiaotong University,2014,48(6):91-97. [27] FAUCHAIS P. Understanding plasma spraying[J]. Journal of Physics D Applied Physics,2004,37(9):86-108. [28] SELVAN B,RAMACHANDRAN K,SREEKUMAR K P,et al. Numerical and experimental studies on DC plasma spray torch[J]. Vacuum,2010,84:444-452. [29] SHSHIEN,YAMADA M,FUKUMOTO M,et al. Reactive plasma-sprayed aluminum nitride-Based coating thermal conductivity[J]. Journal of Thermal Spray Technology,2015,24(8):1385-1398. [30] SOFIANE G,GHASLAIN M,CHRISTIAN C. Velocity and temperature distributions of alumina-titania in-flight particles in the atmospheric plasma spray process[J]. Surface & Coatings Technology,2005,192:70-76. [31] SHANMUGAVELAYUTHAM G,SELVARAJAN V,THIYAGARAJAN T K,et al. In-flight particle behaviour and its effect on co-spraying of alumina-titania[J]. Current Applied Physics,2006,6:41-47. [32] FAN Qunbo,WANG Lu,WANG Fuchi. Modeling influence of basic operation parameters on plasma jet[J]. Journal of Materials Processing Technology,2008,198:207-212. [33] WANG P,YU S,NG H. Particle velocities,sizes and flux distribution in plasma spray with two powder injection ports[J]. Materials Science and Engineering A,2004,383:122-136. [34] XIONG Hongbing,ZHENG Lili,SANJAY S,et al. Three-dimensional simulation of plasma spray:effects of carrier gas flow and particle injection on plasma jet and entrained particle behavior[J]. International Journal of Heat and Mass Transfer,2004,47:5189-5200. [35] ZHOU L,DONG Y,WANG Z,et al. Influence of Cr content and initial Cr particle size on the dielectric properties of plasma-sprayed Cr/Al2O3 coatings[J]. Surface & Coatings Technology,2017,313:374-380. [36] ZHOU Liang,LUO Fa,ZHOU Wangcheng,et al. Influence of FeCrAl content on microstructure and bonding strength of plasma-sprayed FeCrAl/Al2O3 coatings[J]. Journal of Thermal Spray Technology,2016,25(3):509-517. [37] SUDHAKAR C J,BANDYOPADHYAY P P. Plasma sprayed carbon nanotube reinforced splats and coatings[J]. Journal of the European Ceramic Society,2017,37:2235-2244. [38] ANUP K K,DEBRUPA L,ARVIND A. Carbon nanotubes improve the adhesion strength of a ceramic splat to the steel substrate[J]. Carbon,2011,49:4340-4347. [39] BAI Y,TANG J J,QU Y M,et al. Influence of original powders on the microstructure and properties of thermal barrier coatings deposited by supersonic atmospheric plasma spraying,Part I:Microstructure[J]. Ceramics International,2013,39(5):5113-5124. [40] YIN Zhijian,TAO Shunyan,ZHOU Xiaming,et al. Particle in-flight behavior and its influence on the microstructure and mechanical properties of plasma-sprayed Al2O3 coatings[J]. Journal of the European Ceramic Society,2008,28:1143-1148. [41] YUGESWARAN S,KOBAYASHI A,SELVAN B,et al. In-flight behavior of lanthanum zirconate (La2Zr2O7) particles in gas tunnel type plasma jet and its coating properties[J]. Vacuum,2013,88:139-143. [42] ZENG Shangwu,ZHAO Aimin,JIANG Haitao. Oxidation of conventional and nanostructured 8 wt.% yttria-stabilized zirconia coating surface coatings on γ-TiAl[J]. Applied Surface Science,2015,332:362-367. [43] YAN Q,GAMBINO R J,SAMPATH S,et al. Effects of zinc loss on the magnetic properties of plasma-sprayed MnZn ferrites[J]. Acta Materialia,2004,52(11):3347-3353. [44] SHINODA K,LIANG S S,SAMPATH S,et al. Processing effects on in-flight particle state and functional coating properties of plasma-sprayed manganese zinc ferrite[J]. Materials Science and Engineering B,2011,176:22-31. [45] ROBOTTI M,DOSTA S,GARDON M,et al. Enhancing the performance of common electrode materials by means of atmospheric plasma spray coatings[J]. Journal of Energy Storage,2016,5:127-133. [46] TIAN Jiajia,YAO Shuwei,LUO Xiaotao,et al. An effective approach for creating metallurgical self-bonding in plasma-spraying of NiCr-Mo coating by designing shell-core-structured powders[J]. Acta Materialia,2016,110:19-30. [47] 张林伟,魏琪,李辉,等. 热喷涂粒子氧化机理分析及其保护方法概述[J]. 材料工程,2009(6):78-82. ZHANG Linwei,WEI Qi,LI Hui,et al. Oxidization behavior of thermally sprayed particles and the relevant protective techniques[J]. Journal of Materials Engineering,2009(6):78-82. [48] QI Wei,YIN Zhiyong,LI Hui. Oxidation control in plasma spraying NiCrCoAlY coating[J]. Applied Surface Science,2012,258:5094-5099. [49] SYED A A,DENOIRJEAN A,FAUCHAIS P,et al. On the oxidation of stainless steel particles in the plasma jet[J]. Surface & Coatings Technology,2006,200(14-15):4368-4382. [50] WAN Y P,FINCKE J R,JIANG X Y,et al. Modeling of oxidation of molybdenum particles during plasma spray deposition[J]. Metallurgical and Materials Transactions B,2001,32(3):475-481. [51] PLANCHE M P,LIAO H,CODDET C. Oxidation control in atmospheric plasma spraying coating[J]. Surface & Coatings Technology,2007,202(1):69-76. [52] CIZEK J,KHOR K A,DLOUHY I. In-flight temperature and velocity of powder particles of plasma-sprayed TiO2[J]. Journal of Thermal Spray Technology,2013,22(8):1320-1327. [53] MATTHEWS S. Development of high carbide dissolution/low carbon loss Cr3C2-NiCr coatings by shrouded plasma spraying[J]. Surface & Coatings Technology,2014,258:886-900. [54] MATTHEWS S. Carbide dissolution/carbon Loss as a function of spray distance in unshrouded/shrouded plasma sprayed Cr3C2-NiCr coatings[J]. Journal of Thermal Spray Technology,2015,24(3):1-18. [55] SHAHIEN M,YAMADA M,FUKUMOTO M. Challenges upon reactive plasma spray nitriding:Al powders and fabrication of AlN coatings as a case study[J]. Journal of Thermal Spray Technology,2016,25(5):1-23. [56] SHAHIEN M,YAMADA M,YASUI T,et al. N2 and H2 plasma gasses' effects in reactive plasma spraying of Al2O3,powder[J]. Surface & Coatings Technology,2013,216:308-317. [57] SHAHIEN M,YAMADA M,FUKUMOTO M,et al. Reactive plasma-sprayed aluminum nitride-based coating thermal conductivity[J]. Journal of Thermal Spray Technology,2015,24(8):1385-1398. [58] 夏铭,王泽华,周泽华,等. 反应等离子喷涂TiN复相涂层的组织与性能研究[J]. 粉末冶金工业,2016,26(3):38-43. XIA Ming,WANG Zehua,ZHOU Zehua,et al. Research on microstructure and properties of reactive plasma spraying TiN composite coatings[J]. Powder Metallurgy Industry,2016,26(3):38-43. [59] YAO Yihong,WANG Zehua,ZHOU Zehua,et al. Study on reactive atmospheric plasma-sprayed in situ titanium compound composite coating[J]. Journal of Thermal Spray Technology,2013,22(4):509-517. [60] GARDON M,GUILEMANY J M. Milestones in functional titanium dioxide thermal spray coatings:a review[J]. Journal of Thermal Spray Technology,2014,23(4):577-595. [61] GARDON M,DOSTA S,GUILEMANY J M,et al. Improved,high conductivity titanium sub-oxide coated electrodes obtained by atmospheric plasma spray[J]. Journal of Power Sources,2013,238(238):430-434. [62] LEE H,SU J H,SESHADRI R C,et al. Thermoelectric properties of in-situ plasma spray synthesized sub-stoichiometry TiO2-x[J]. Scientific Reports,2016,6:1-11. [63] YUAN Jianhui,ZHAN Qing,HUANG Jing,et al. Decarburization mechanisms of WC-Co during thermal spraying:Insights from controlled carbon loss and microstructure characterization[J]. Materials Chemistry & Physics,2013,142(1):165-171. [64] WANF Haidou,MA Jianlong,LI Guolong,et al. The dependency of microstructure and mechanical properties of nanostructured alumina-titania coatings on critical plasma spraying parameter[J]. Applied Surface Science,2014,314(10):468-475. [65] CIZEK J,DLOUHY I,SISKA F,et al. Modification of plasma-sprayed TiO2 coatings characteristics via controlling the in-flight temperature and velocity of the powder particles[J]. Journal of Thermal Spray Technology,2014,23(8):1339-1349. [66] XU J,ZOU B,TAOS,et al. Fabrication and properties of Al2O3-TiB2-TiC/Al metal matrix composite coatings by atmospheric plasma spraying of SHS powders[J]. Journal of Alloys & Compounds,2016,672:251-259. [67] ZOU Binglin,TAO Shunyan,HUANG Wenzhi,et al. Synthesis and characterization of in situ TiC-TiB2 composite coatings by reactive plasma spraying on a magnesium alloy[J]. Applied Surface Science,2013,264:879-885. [68] WANG Lei,YAN Dianran,YANG Yong,et al. Structure and properties of nanostructured ceramic matrix composite coatings prepared in-situ by reactive plasma spraying micro-sized Al-Fe2O3-Cr2O3 powders[J]. Ceramics International,2014,40:6481-6486. [69] HE Jining,ZHANG Fanyong,MI Pengbo,et al. Microstructure and wear behavior of nano C-rich TiCN coatings fabricated by reactive plasma spraying with Ti-graphite powders[J]. Surface & Coatings Technology,2016,305:215-222. [70] MI P,HE J,QIN Y,et al. Nanostructure reactive plasma sprayed TiCN coating[J]. Surface & Coatings Technology,2016,309-314. [71] ZHAN Qing,YU Ligen,YE Fuxing,et al. Quantitative evaluation of the decarburization and microstructure evolution of WC-Co during plasma spraying[J]. Surface & Coatings Technology, 2012,206:4068-4074. [72] NIRANATLUMPONG P,SUKONKHET C,NINON K. Loss of Y from NiCrAlY powder during air plasma spraying[J]. Surface & Coatings Technology,2015,280:277-281. [73] PEI W,WEI Z,ZHAO G,et al. The analysis of melting and refining process for in-flight particles in supersonic plasma spraying[J]. Computational Materials Science,2015,103(9):8-19. [74] BAI Y,ZHAO L,QU Y,et al. Particle in-flight behavior and its influence on the microstructure and properties of supersonic-atmospheric-plasma-sprayed nanostructured thermal barrier coatings[J]. Journal of Alloys and Compounds,2015,644:873-882. [75] BAI Y,ZHAO L,WANG Y,et al. Fragmentation of in-flight particles and its influence on the microstructure and mechanical property of YSZ coating deposited by supersonic atmospheric plasma spraying[J]. Journal of Alloys and Compounds,2015,632:794-799. |