激光与光电子学进展, 2019, 56 (6): 060005, 网络出版: 2019-07-30   

激光表面处理技术在石油机械中的应用 下载: 1502次

Applications of Laser Surface Treatment Technologies in Petroleum Machinery
作者单位
1 中国石油勘探开发研究院采油采气装备研究所, 北京 100083
2 中国科学院半导体研究所, 北京 100083
引用该论文

黄俊媛, 沈泽俊, 张立新, 魏松波, 杨盈莹, 朱世佳, 钱杰, 陈琳. 激光表面处理技术在石油机械中的应用[J]. 激光与光电子学进展, 2019, 56(6): 060005.

Junyuan Huang, Zejun Shen, Lixin Zhang, Songbo Wei, Yingying Yang, Shijia Zhu, Jie Qian, Lin Chen. Applications of Laser Surface Treatment Technologies in Petroleum Machinery[J]. Laser & Optoelectronics Progress, 2019, 56(6): 060005.

参考文献

[1] Mao LJ, Cai MJ, Wang G R. Effect of rotation speed on the abrasive-erosive-corrosive wear of steel pipes against steel casings used in drilling for petroleum[J]. Wear, 2018, 410/411: 1- 10.

[2] 杨向前, 王虹富, 樊建春. 35CrMo钢冲蚀磨损性能和机制的研究[J]. 石油机械, 2017, 45(7): 72-77.

    Yang X Q, Wang H F, Fan J C. Study on erosion wear property and mechanism of 35CrMo steel[J]. China Petroleum Machinery, 2017, 45(7): 72-77.

[3] Yang X M, Tu Y F, Li L, et al. Well-dispersed Chitosan/Graphene oxide nanocomposites[J]. ACS Applied Materials & Interfaces, 2010, 2(6): 1707-1713.

[4] 孔学云, 严孟凯, 张亮, 等. QPQ表面处理技术及提高工具耐冲蚀性能试验研究[J]. 石油矿场机械, 2017, 46(3): 41-45.

    Kong X Y, Yan M K, Zhang L, et al. QPQ surface treatment technology and test research for improving erosion resistance property of tools[J]. Oil Field Equipment, 2017, 46(3): 41-45.

[5] 史艳华, 叶青松, 梁平, 等. 石油化工过程装备的环烷酸腐蚀与防护[J]. 材料保护, 2017, 50(3): 68-73, 78.

    Shi Y H, Ye Q S, Liang P, et al. Naphthenic acid corrosion and protection of petrochemical industry process equipment[J]. Materials Protection, 2017, 50(3): 68-73, 78.

[6] Koscher B A, Swabeck J K, Bronstein N D, et al. Essentially trap-free CsPbBr3 colloidal nanocrystals by postsynthetic thiocyanate surface treatment[J]. Journal of the American Chemical Society, 2017, 139(19): 6566-6569.

[7] Gao B, Zhang R L, He M S, et al. Effect of a multiscale reinforcement by carbon fiber surface treatment with graphene oxide/carbon nanotubes on the mechanical properties of reinforced carbon/carbon composites[J]. Composites Part A: Applied Science and Manufacturing, 2016, 90: 433-440.

[8] 臧辰峰, 刘常升, 张小彬, 等. 轧辊表面激光处理技术的研究进展[J]. 材料导报, 2010, 24(3): 6-10.

    Zang C F, Liu C S, Zhang X B, et al. Research progress of laser modification techniques used on roller surface[J]. Materials Review, 2010, 24(3): 6-10.

[9] 何柏林, 刘菁, 万迪庆. 激光在镁合金表面处理中的应用[J]. 热加工工艺, 2010, 39(22): 113-116.

    He B L, Liu J, Wan D Q. Application of laser in processing of magnesium alloy[J]. Hot Working Technology, 2010, 39(22): 113-116.

[10] Yilbas B S, Karatas C, Karakoc H, et al. Laser surface treatment of aluminum based composite mixed with B4C particles[J]. Optics & Laser Technology, 2015, 66: 129-137.

[11] Malinauskas M, Žukauskas A, Hasegawa S, et al. Ultrafast laser processing of materials: From science to industry[J]. Light: Science & Applications, 2016, 5(8): e16133.

[12] 宋立平. 激光表面改性及其应用[J]. 物理与工程, 2010, 20(4): 42-44.

    Song L P. Laser surface modification and application[J]. Physics and Engineering, 2010, 20(4): 42-44.

[13] Taylor L L, Scott R E, Qiao J. Integrating two-temperature and classical heat accumulation models to predict femtosecond laser processing of silicon[J]. Optical Materials Express, 2018, 8(3): 648-658.

[14] Gupta R K, Sundar R, Kumar B S, et al. A hybrid laser surface treatment for refurbishment of stress corrosion cracking damaged 304L stainless steel[J]. Journal of Materials Engineering and Performance, 2015, 24(6): 2569-2576.

[15] Verezub O, Kálazi Z, Buza G, et al. Classification of laser beam induced surface engineering technologiesand in situ synthesis of steel matrix surface nanocomposites[J]. Surface Engineering, 2011, 27(6): 428-435.

[16] Zhang Z Y, Zhang J Y, Wang Y B, et al. Surface cleaning of hot-rolled sheet steel by laser ablation of oxide layer using a 100-ns high-repetition frequency pulsed laser[J]. Optical Engineering, 2017, 56(11): 116114.

[17] 谷雨, 钟敏霖, 马明星, 等. 多孔锰涂层的研究[J]. 中国激光, 2011, 38(6): 0603027.

    Gu Y, Zhong M L, Ma M X, et al. Fabrication of nanoporous Manganese coatings by selective electrochemical De-alloying of the nobler copper component from laser cladding Cu-Mn alloys[J]. Chinese Journal of Lasers, 2011, 38(6): 0603027.

[18] Fan P X, Bai B F, Zhong M L, et al. General strategy toward dual-scale-controlled metallic Micro-Nano hybrid structures with ultralow reflectance[J]. ACS Nano, 2017, 11(7): 7401-7408.

[19] 葛鹏飞. 激光淬火技术在钻杆接头螺纹表面硬化处理的应用[J]. 内蒙古石油化工, 2015, 41(1): 119-120.

    Ge P F. Application of laser quenching technology in surface hardening of drill pipe joint threads[J]. Inner Mongolia Petrochemical Industry, 2015, 41(1): 119-120.

[20] 郝广辉. 牙轮钻头球面浮动套轴承激光淬火技术研究与应用[D]. 成都: 西南石油大学, 2016.

    Hao GH. Research and application of laser quenching technology for spherical floating bearings of cone bit[D]. Chengdu: Southwest Petroleum University, 2016.

[21] 华希俊, 郝静文, 王蓉, 等. 泥浆泵高铬铸铁材料激光淬火技术及其摩擦磨损性能研究[J]. 表面技术, 2017, 46(6): 215-220.

    Hua X J, Hao J W, Wang R, et al. Laser quenching technology and friction & wear properties of mud pump high chromium iron material[J]. Surface Technology, 2017, 46(6): 215-220.

[22] 桑嘉新, 沈骏, 张贤坤. 20CrMnTi齿轮钢激光淬火的研究[J]. 中国锰业, 2017, 35(4): 117-121.

    Sang J X, Shen J, Zhang X K. A study on the laser quenching of 20CrMnTi gear steel[J]. China's Manganese Industry, 2017, 35(4): 117-121.

[23] 程义远, 王勇, 韩彬, 等. 35CrMoA钢激光淬火-渗氮复合处理微观组织与性能[J]. 中国激光, 2010, 37(1): 250-255.

    Cheng Y Y, Wang Y, Han B, et al. Microstructure and properties of 35CrMoA steel in laser quenching-nitriding[J]. Chinese Journal of Lasers, 2010, 37(1): 250-255.

[24] 苏辉, 马冰, 依颖辉, 等. 42CrMo钢激光淬火组织和硬度的研究[J]. 兵器材料科学与工程, 2011, 34(2): 84-86.

    Su H, Ma B, Yi Y H, et al. Microstructure and properties of 42CrMo after laser surface melting and quenching[J]. Ordnance Material Science and Engineering, 2011, 34(2): 84-86.

[25] 封慧, 李剑峰, 孙杰. 曲轴轴颈损伤表面的激光熔覆再制造修复[J]. 中国激光, 2014, 41(8): 0803003.

    Feng H, Li J F, Sun J. Study on remanufacturing repair of damaged crank shaft journal surface by laser cladding[J]. Chinese Journal of Lasers, 2014, 41(8): 0803003.

[26] 王祎雪. 中碳低合金钢渗氮与激光淬火复合改性层组织与性能[D]. 哈尔滨: 哈尔滨工业大学, 2015.

    Wang YX. Microstructure and properties of medium carbon low-alloy steels treated by plasma nitriding and laser quenching[D]. Harbin: Harbin Institute of Technology, 2015.

[27] 孙全. 激光熔覆技术在石化机械维修上的应用[J]. 企业技术开发, 2011, 30(11): 94-95.

    Sun Q. Laser cladding mechanical maintenance in petrochemical applications[J]. Technological Development of Enterprise, 2011, 30(11): 94-95.

[28] 程颢, 郑刚, 覃川, 等. 注水泵柱塞激光熔覆修复技术的探索[J]. 机械制造, 2017, 55(8): 47-49.

    Cheng H, Zheng G, Qin C, et al. Exploration on laser cladding repair technology for plunger in water injection pump[J]. Machinery, 2017, 55(8): 47-49.

[29] 肖真. 汽轮机汽缸结合面变形分析及激光熔覆修复[J]. 石油化工设备, 2017, 46(3): 51-56.

    Xiao Z. Analysis of steam turbine cylinder joint surface deformation and laser cladding repairing[J]. Petro-Chemical Equipment, 2017, 46(3): 51-56.

[30] 张津超, 冯爱新, 薛伟, 等. 激光熔覆CaF2/Ni基合金复合涂层的裂纹敏感性及力学性能研究[J]. 应用激光, 2017, 37(1): 22-26.

    Zhang J C, Feng A X, Xue W, et al. Research on crack susceptibility and mechanical properties of CaF2/Ni composite coating by laser cladding[J]. Applied Laser, 2017, 37(1): 22-26.

[31] 孙小磊, 韩彬. 稀土元素对油管激光合金化层组织及性能影响[J]. 焊接, 2017( 4): 64- 66.

    Sun XL, HanB. Effect of rare earth elements on microstructure and properties of laser alloying layers on N80 oil tube[J]. Welding & Joining, 2017( 4): 64- 66.

[32] 王珏, 杜鑑时, 姚建华. 激光纳米合金化表面强化螺杆的研究[J]. 应用激光, 2007, 27(6): 470-472.

    Wang Y, Du J S, Yao J H. The research of laser alloying on the surface of 40cr steel screw[J]. Applied Laser, 2007, 27(6): 470-472.

[33] 姚建华, 于春艳, 孔凡志, 等. 汽轮机叶片的激光合金化与激光淬火[J]. 动力工程, 2007, 27(4): 652-656.

    Yao J H, Yu C Y, Kong F Z, et al. Laser alloying and quenching of steam turbine blades[J]. Journal of Power Engineering, 2007, 27(4): 652-656.

[34] 孔德军, 龙丹, 叶存冬, 等. 激光冲击波对 X80 管线钢焊接接头疲劳性能的影响[J]. 材料热处理学报, 2014, 35(1): 103-108.

    Kong D J, Long D, Ye C D, et al. Effects of laser shock wave on fatigue properties of X80 pipeline steel welded joints[J]. Transaction of Materials and Heat Treatment, 2014, 35(1): 103-108.

[35] 戴伟. 一种用高能激光加工干气密封螺旋槽的方法[J]. 石油化工设备, 2013, 42(4): 45-48.

    Dai W. A split lip seal method by high energy laser[J]. Petro-Chemical Equipment, 2013, 42(4): 45-48.

[36] 常秋英, 齐烨, 王斌, 等. 激光表面织构对45钢干摩擦性能的影响[J]. 机械工程学报, 2017, 53(3): 148-154.

    Chang Q Y, Qi Y, Wang B, et al. Tribological influence of laser surface textures on 45 steel under dry sliding[J]. Journal of Mechanical Engineering, 2017, 53(3): 148-154.

[37] Chen Z Y, Zhou G J, Chen Z H. Microstructure and hardness investigation of 17-4PH stainless steel by laser quenching[J]. Materials Science and Engineering: A, 2012, 534: 536-541.

[38] Zheng Y L, Hu Q W, Li C Y, et al. A novel laser surface compositing by selective laser quenching to enhance railway service life[J]. Tribology International, 2017, 106: 46-54.

[39] Yan M F, Wang Y X, Chen X T, et al. Laser quenching of plasma nitrided 30CrMnSiA steel[J]. Materials & Design, 2014, 58: 154-160.

[40] 史春轩, 蒋永亮, 梅振红, 等. API油管螺纹激光淬火技术应用[J]. 石油矿场机械, 2010, 39(10): 75-78.

    Shi C X, Jiang Y L, Mei Z H, et al. Application of laser surface hardening technology for API tubing threads[J]. Oil Field Equipment, 2010, 39(10): 75-78.

[41] Wang Y L, Xu S R, Hui Y L. Research on laser quenching process of 20CrMnMo gears by finite element method and experiment[J]. The International Journal of Advanced Manufacturing Technology, 2016, 87(1/2/3/4): 1013-1021.

[42] Lusquiños F, Conde J C, Bonss S, et al. Theoretical and experimental analysis of high power diode laser (HPDL) hardening of AISI 1045 steel[J]. Applied Surface Science, 2007, 254(4): 948-954.

[43] 惠英龙, 王玉玲, 姚翠翠. 基于ANSYS的18CrNi8齿轮激光淬火温度场分析[J]. 机械传动, 2015, 39(1): 102-105, 134.

    Hui Y L, Wang Y L, Yao C C. Temperature field analysis of laser hardening of 18CrNi8 gear based on ANSYS[J]. Journal of Mechanical Transmission, 2015, 39(1): 102-105, 134.

[44] Paydas H, Mertens A, Carrus R, et al. Laser cladding as repair technology for Ti-6Al-4V alloy: Influence of building strategy on microstructure and hardness[J]. Materials & Design, 2015, 85: 497-510.

[45] Weng F, Chen C Z, Yu H J. Research status of laser cladding on titanium and its alloys: A review[J]. Materials & Design, 2014, 58: 412-425.

[46] 张再良, 秦开明, 李芳, 等. 抽油机光杆激光熔覆表面耐磨损性能研究[J]. 科学技术与工程, 2010, 10(16): 3978-3981.

    Zhang Z L, Qin K M, Li F, et al. Surface abrasion resistance performance of laser cladding coating on oil pumping polished rod[J]. Science Technology and Engineering, 2010, 10(16): 3978-3981.

[47] 孙建波, 李美艳, 王勇, 等. 一种耐磨耐蚀铁基合金激光熔覆石油钻杆接头: CN102619477A[P].2012-08-01.

    Sun JB, Li MY, WangY, et al. Wear and corrosion resistant iron-based alloy laser-cladding petroleum drill stem joint: CN102619477A[P].2012-08-01.

[48] 于承雪, 景财年, 李怀学. 激光熔覆裂纹的形成机理及控制方法[J]. 航空制造技术, 2012( 4): 75- 79.

    Yu CX, Jing CN, Li HX. Forming mechanism and controlling method of laser cladding crack[J]. Aeronautical Manufacturing Technology, 2012( 4): 75- 79.

[49] Makuch N, Kulka M, Dziarski P, et al. Laser surface alloying of commercially pure titanium with boron and carbon[J]. Optics and Lasers in Engineering, 2014, 57: 64-81.

[50] Kulka M, Mikolajczak D, Makuch N, et al. Wear resistance improvement of austenitic 316L steel by laser alloying with boron[J]. Surface and Coatings Technology, 2016, 291: 292-313.

[51] 刘通, 孙桂芳, 张永康. 45#钢表面激光合金化NiCr-Al2O1涂层的组织及耐磨性能研究[J]. 表面技术, 2016, 45(10): 64-69.

    Liu T, Sun G F, Zhang Y K. Microstructure and wear resistance of NiCr-Al2O3 coating alloyed with 45# steel laser[J]. Surface Technology, 2016, 45(10): 64-69.

[52] Adebiyi D I. Popoola A P I. Mitigation of abrasive wear damage of Ti-6Al-4V by laser surface alloying[J]. Materials & Design, 2015, 74: 67-75.

[53] 郭浩霖, 韩彬. Mo对N80油管激光合金化层组织及性能的影响[J]. 焊管, 2016, 39(11): 5-8.

    Guo H L, Han B. Effect of molybdenum element on microstructure and properties of laser alloying layers on N80 oil tube[J]. Welded Pipe and Tube, 2016, 39(11): 5-8.

[54] 王峰, 左慧, 赵雳, 等. 激光冲击强化铜的表面质量和性能[J]. 激光与光电子学进展, 2017, 54(4): 041410.

    Wang F, Zuo H, Zhao L, et al. Surface quality and property of copper treated by laser shock peening[J]. Laser & Optoelectronics Progress, 2017, 54(4): 041410.

[55] 雷正龙, 田泽, 陈彦宾. 工业领域的激光清洗技术[J]. 激光与光电子学进展, 2018, 55(3): 030005.

    Lei Z L, Tian Z, Chen Y B. Laser cleaning technology in industrial fields[J]. Laser & Optoelectronics Progress, 2018, 55(3): 030005.

[56] 陈一鸣, 周龙早, 闫飞, 等. 铝合金激光清洗机理与质量评估[J]. 中国激光, 2017, 44(12): 1202005.

    Chen Y M, Zhou L Z, Yan F, et al. Mechanism and quality evaluation of laser cleaning of aluminum alloy[J]. Chinese Journal of Lasers, 2017, 44(12): 1202005.

黄俊媛, 沈泽俊, 张立新, 魏松波, 杨盈莹, 朱世佳, 钱杰, 陈琳. 激光表面处理技术在石油机械中的应用[J]. 激光与光电子学进展, 2019, 56(6): 060005. Junyuan Huang, Zejun Shen, Lixin Zhang, Songbo Wei, Yingying Yang, Shijia Zhu, Jie Qian, Lin Chen. Applications of Laser Surface Treatment Technologies in Petroleum Machinery[J]. Laser & Optoelectronics Progress, 2019, 56(6): 060005.

本文已被 5 篇论文引用
被引统计数据来源于中国光学期刊网
引用该论文: TXT   |   EndNote

相关论文

加载中...

关于本站 Cookie 的使用提示

中国光学期刊网使用基于 cookie 的技术来更好地为您提供各项服务,点击此处了解我们的隐私策略。 如您需继续使用本网站,请您授权我们使用本地 cookie 来保存部分信息。
全站搜索
您最值得信赖的光电行业旗舰网络服务平台!