钢铁研究总院有限公司特殊钢研究院,北京 100081
刘雨(1990―),男,博士,工程师;E-mail:liuyu@nercast.com
王长军(1984―),男,博士,正高级工程师;E-mail:wangchangjun@nercast.com
收稿:2023-06-21,
纸质出版:2023-10-01
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刘雨,王长军,王春旭等.增材制造高强度钢的研究与应用进展[J].特殊钢,2023,44(05):22-32.
Liu Yu,Wang Changjun,Wang Chunxu,et al.Progress in Research and Applications of Additive Manufacturing of High-Strength Steels[J].Special Steel,2023,44(05):22-32.
刘雨,王长军,王春旭等.增材制造高强度钢的研究与应用进展[J].特殊钢,2023,44(05):22-32. DOI: 10.20057/j.1003-8620.2023-00128.
Liu Yu,Wang Changjun,Wang Chunxu,et al.Progress in Research and Applications of Additive Manufacturing of High-Strength Steels[J].Special Steel,2023,44(05):22-32. DOI: 10.20057/j.1003-8620.2023-00128.
高强度钢的增材制造已成为金属增材制造领域发展的主要方向之一,首先,对增材制造金属材料与技术的研究进展与前沿动态进行了追踪,分别对低合金超高强度钢、高合金超高强度钢以及高强度不锈钢三种类型高强度钢重点牌号的相关研究进行分析,详细总结了各种典型高强度钢的制粉和打印工艺、热处理工艺以及组织性能等方面的相关工作。其次,重点关注了国内外增材制造高强度钢的典型应用和主要研究成果。针对目前高强度钢增材制造领域标准体系建设的不足,在专用合金的正向设计与研发、大尺寸高精度与智能化装备发展以及标准体系建设三个方面提出了相关建议。基于对增材制造高强度钢的研究与应用进展的分析,提出了领域重点关注方向以及相关技术进一步发展的趋势,以助于促进增材制造高强度钢的工业化推广应用。
Additive manufacturing (AM) of high-strength steels has become one of the main technological directions in the field of metal additive manufacturing. Firstly the research progress and frontier dynamics of AM metallic materials and technologies are traced, the relevant studies on the key grades of three types high-strength steels has been analyzed respectively, including low alloy ultrahigh-strength steels, high alloy ultrahigh-strength steels and stainless high-strength steels, the relative works on powder metallurgy, printing process, heat treatment, microstructure and mechanical properties of various typical high strength steel have been summarized in detail.Secondly it focuses on the typical applications and main achievements of AM high-strength steels at home and abroad. Furthermore, in view of current shortcomings in the development of the system establishment of AM high-strength steels, relevant suggestions are put forward in three aspects including the forward design and research of special alloys, the development of large-scale high-precision and intelligent facilities, and the system construction of standards. Based on the analysis of research and application progress of AM high-strength steels, the focus of key areas direction and the further development trend of relevent technologies are proposed, in order to further promote the industrial application of AM high-strength steel.
卢秉恒 , 李涤尘 . 增材制造(3D打印)技术发展 [J]. 机械制造与自动化 , 2019 , 42 ( 4 ): 1 - 4
王华明 . 高性能大型金属构件激光增材制造:若干材料基础问题 [J]. 航空学报 , 2014 , 35 ( 10 ): 2690 - 2698 .
Gu D D , Shi X Y , Poprawe R , et al . Material-structure-performance integrated laser-metal additive manufacturing [J]. Science , 2021 , 372 ( 6545 ): eabg1487 .
Sing S L , Huang S , Goh G D , et al . Emerging metallic systems for additive manufacturing: In-situ alloying and multi-metal processing in laser powder bed fusion [J]. Progress in Materials Science , 2021 , 119 : 100795 .
Zhao C , Parab N D , Li X X , et al . Critical instability at moving keyhole tip generates porosity in laser melting [J]. Science , 2020 , 370 ( 6520 ): 1080 - 1086 .
Kürnsteiner P , Wilms M B , Weisheit A , et al . High-strength Damascus steel by additive manufacturing [J]. Nature , 2020 , 582 ( 7813 ): 515 - 519 .
赵磊 , 刘宪民 , 雍岐龙 , 等 . 热处理对DT300低合金超高强度钢组织和性能的影响 [J]. 特殊钢 , 2007 , 28 ( 2 ): 29 - 30 .
赵海民 , 陈思联 , 郝立群 , 等 . 2000 MPa高强度钢的超高周疲劳破坏行为 [J]. 特殊钢 , 2008 , 29 ( 3 ): 13 - 15 .
舒宗富 , 黄春平 , 林鑫 , 等 . 钢的激光增材制造研究进展及前景展望 [J]. 精密成形工程 , 2019 , 11 ( 4 ): 81 - 88 .
冯凌冰 , 刘丰刚 . 增材制造高强钢的研究进展及应用 [J]. 粉末冶金工业 , 2022 , 32 ( 3 ): 23 - 33 .
Brandt M , Sun S J , Leary M , et al . High-Value SLM Aerospace Components: From Design to Manufacture [J]. Advanced Materials Research , 2013 , 633 : 135 - 147 .
谭超林 , 周克崧 , 马文有 , 等 . 激光增材制造成型马氏体时效钢研究进展 [J]. 金属学报 , 2020 , 56 ( 1 ): 36 - 52 .
刘丰刚 , 张文军 , 刘奋成 , 等 . 激光增材制造低合金超高强度钢的组织与力学性能研究进展 [J]. 航空制造技术 , 2022 , 65 ( S1 ): 77 - 85 .
李福泉 , 孟祥旭 , 董志宏 , 等 . 激光增材制造钢的后热处理研究现状 [J]. 精密成形工程 , 2018 , 10 ( 1 ): 97 - 108 .
董翠 , 张述泉 , 李安 , 等 . 激光熔化沉积300M超高强度钢的显微组织 [J]. 金属学报 , 2008 , 44 ( 5 ): 598 - 602 .
Rahman-Rashid R A , Nazari K A , Barr C , et al . Effect of laser reheat post-treatment on the microstructural characteristics of laser-cladded ultra-high strength steel [J]. Surface and Coatings Technology , 2019 , 372 : 93 - 102 .
Jing G Y and Wang Z M . Defects, densification mechanism and mechanical properties of 300M steel deposited by high power selective laser melting [J]. Additive Manufacturing , 2021 , 38 : 101831 .
Zhan Z X , Ao N , Hu Y N , et al . Defect‐induced fatigue scattering and assessment of additively manufactured 300M-AerMet100 steel: An investigation based on experiments and machine learning [J]. Engineering Fracture Mechanics , 2022 , 264 : 108352 .
Abrahams R . Low alloy high performance steel : US10450621 [P]. 2019-10-22 .
Seede R , Shoukr D , Zhang B , et al . An ultra-high strength martensitic steel fabricated using selective laser melting additive manufacturing: Densification, microstructure, and mechanical properties [J]. Acta Materialia , 2020 , 186 : 199 - 214 .
Hager E M , O’Hara R P , Cobb G R , et al . Development of high density parts in the low-alloy, high-performance steel AF9628 using laser powder bed fusion [J]. Materials Science and Engineering: A , 2022 , 838 : 142656 .
Kudzal A D , McWilliams B A , Taggart-Scarff J , et al . Fabrication of a low alloy ultra-high strength (>1500 MPa yield) steel using powder bed fusion additive manufacturing [J]. Materials Science and Engineering: A , 2020 , 770 : 138512 .
Hager E . Process Parameter Development of Additively Manufactured AF9628 Weapons Steel [M]. Wright-Patterson Air Force Base, Ohio, USA : Air Force Institute of Technology , 2019 .
Jelis E , Clemente M , Kerwien S , et al . Metallurgical and Mechanical Evaluation of 4340 Steel Produced by Direct Metal Laser Sintering [J]. JOM , 2015 , 67 ( 3 ): 582 - 589 .
Jelis E , Hespos M R , Ravindra N M . Process evaluation of AISI 4340 steel manufactured by laser powder bed fusion [J]. Journal of Materials Engineering and Performance , 2018 , 27 ( 1 ): 63 - 71 .
Wang L Z , Wei W H . Selective Laser Melting of 30CrMnSiA Steel: Laser Energy Density Dependence of Microstructural and Mechanical Properties [J]. Acta Metallurgica Sinica (English Letters) , 2018 , 31 ( 8 ): 807 - 814 .
Jiang C Y , Li X Q , Luo H , et al . DT300 ultra-high strength steel fabricated using selective laser melting: Densification, microstructure, and mechanical properties [J]. Materials Science and Engineering: A , 2023 , 863 : 144541 .
Kempen K , Yasa E , Thijs L , et al . Microstructure and mechanical properties of Selective Laser Melted 18Ni-300 steel [J]. Physics Procedia , 2011 , 12 : 255 - 263 .
Casati R , Lemke J , Tuissi A , et al . Aging Behaviour and Mechanical Performance of 18-Ni 300 Steel Processed by Selective Laser Melting [J]. Metals , 2016 , 6 ( 9 ): 218 .
Jägle E , Sheng Z D , Kürnsteiner P , et al . Comparison of maraging steel micro- and nanostructure produced conventionally and by laser additive manufacturing [J]. Materials , 2016 , 10 ( 1 ): 8 .
Suryawanshi J , Prashanth K G , and Ramamurty U . Tensile, fracture, and fatigue crack growth properties of a 3D printed maraging steel through selective laser melting [J]. Journal of Alloys and Compounds , 2017 , 725 : 355 - 364 .
Li J N , Wang X L , Qi W J , et al . Laser nanocomposites-reinforcing manufacturing of SLM 18Ni300 alloy under aging treatment [J]. Materials Characterization , 2019 , 153 : 69 - 78 .
杨东青 , 王小伟 , 黄勇 , 等 . 熔化极电弧增材制造18Ni马氏体钢组织和性能 [J]. 焊接学报 , 2020 , 41 ( 8 ): 6 - 9 .
Wu W , Wang X , Wang Q , et al . Microstructure and mechanical properties of maraging 18Ni-300 steel obtained by powder bed based selective laser melting process [J]. Rapid Prototyping Journal , 2020 , 26 ( 8 ): 1379 - 1387 .
Hong Y , Dong D D , Lin S S , et al . Improving surface mechanical properties of the selective laser melted 18Ni300 maraging steel via plasma nitriding [J]. Surface and Coatings Technology , 2021 , 406 : 126675 .
刘再西 , 卢德宏 , 王长军 , 等 . 气雾化参数对SLM用1720 MPa级马氏体时效钢粉末特性的影响 [J]. 金属热处理 , 2022 , 47 ( 9 ): 54 - 59 .
Ferreira D F S , Vieira J S , Rodrigues S P , et al . Dry sliding wear and mechanical behaviour of selective laser melting processed 18Ni300 and H13 steels for moulds [J]. Wear , 2022 , 488-489 : 204179 .
刘再西 , 卢德宏 , 王长军 , 等 . 基于SLM工艺制备的C250马氏体时效钢的工艺优化及其组织 [J]. 金属热处理 , 2023 , 48 ( 3 ): 143 - 150 .
Ran X Z , Liu D , Li A , et al . Microstructure characterization and mechanical behavior of laser additive manufactured ultrahigh-strength AerMet100 steel [J]. Materials Science and Engineering: A , 2016 , 663 : 69 - 77 .
崔灿 , 刘栋 , 苏亚东 , 等 . 热处理对激光直接沉积成形A-100钢基体组织及性能的影响 [J]. 航空制造技术 , 2017 , 60 ( 13 ): 89 - 92+99 .
陈汉宾 , 李忠盛 , 代野 , 等 . 激光直接沉积A-100钢薄壁环形件的组织与应力 [J]. 金属热处理 , 2018 , 43 ( 8 ): 220 - 223 .
Ran X Z , Liu D , Li J , et al . Effects of post homogeneity heat treatment processes on microstructure evolution behavior and tensile mechanical properties of laser additive manufactured ultrahigh-strength AerMet100 steel [J]. Materials Science and Engineering: A , 2018 , 723 : 8 - 21 .
于梦晓 , 李佳 , 李卓 , 等 . 热处理对激光增材制造AerMet100超高强度钢动态力学性能的影响 [J]. 中国激光 , 2020 , 47 ( 11 ): 62 - 70 .
许忠智 , 黄顺喆 , 戴建科 , 等 . 淬火温度对电弧微铸锻AerMet100钢组织与性能的影响 [J]. 金属热处理 , 2023 , 48 ( 2 ): 124 - 130 .
王志会 , 王华明 , 刘栋 . 激光增材制造AF1410超高强度钢组织与力学性能研究 [J]. 中国激光 , 2016 , 43 ( 4 ): 59 - 65 .
Li Y F , Cheng X , Liu D , et al . Influence of last stage heat treatment on microstructure and mechanical properties of laser additive manufactured AF1410 steel [J]. Materials Science and Engineering: A , 2018 , 713 : 75 - 80 .
廉学魁 , 厉勇 , 刘宪民 , 等 . 二次硬化超高强度钢AF1410奥氏体晶粒长大行为 [J]. 特殊钢 , 2010 , 31 ( 5 ): 61 - 63 .
Telasang G , Dutta Majumdar J , Padmanabham G , et al . Effect of laser parameters on microstructure and hardness of laser clad and tempered AISI H13 tool steel [J]. Surface and Coatings Technology , 2014 , 258 : 1108 - 1118 .
Joshi S S , Sharma S , Mazumder S , et al . Solidification and microstructure evolution in additively manufactured H13 steel via directed energy deposition: Integrated experimental and computational approach [J]. Journal of Manufacturing Processes , 2021 , 68 : 852 - 866 .
Oliveira A P , Lima L H Q R , Felipe B C A , et al . Effect of microstructure and defect formation on the bending properties of additive manufactured H13 tool steel [J]. Journal of Materials Research and Technology , 2021 , 15 : 3598 - 3609 .
Blakey-Milner B , Gradl P , Snedden G , et al . Metal additive manufacturing in aerospace: A review [J]. Materials & Design , 2021 , 209 : 110008 .
Gradl P R , Cervone A , Gill E . Surface texture characterization for thin-wall NASA HR-1 Fe–Ni–Cr alloy using laser powder directed energy deposition (LP-DED) [J]. Advances in Industrial and Manufacturing Engineering , 2022 , 4 : 100084 .
Soltani-Tehrani A , Chen P S , Katsarelis C , et al . Laser powder directed energy deposition (LP-DED) NASA HR-1 alloy: Laser power and heat treatment effects on microstructure and mechanical properties [J]. Additive Manufacturing Letters , 2022 , 3 : 100097 .
黄永建 , 刘军会 , 杨进航 , 等 . 增材制造模具的研究进展 [J]. 中国冶金 , 2019 , 29 ( 11 ): 6 - 15 .
周燕 , 文世峰 , 魏青松 , 等 . 增材制造专用模具钢粉末材料设计、制备及其制造技术 [J]. 中国材料进展 , 2020 , 39 ( 5 ): 356 - 363 .
张亮亮 , 周阳 , 刘世锋 , 等 . 模具钢增材制造及其性能的研究进展 [J]. 中国冶金 , 2022 , 32 ( 3 ): 1 - 8 .
Murr L E , Martinez E , Hernandez J , et al . Microstructures and Properties of 17-4 PH Stainless Steel Fabricated by Selective Laser Melting [J]. Journal of Materials Research and Technology , 2012 , 1 ( 3 ): 167 - 177 .
LeBrun T , Nakamoto T , Horikawa K , et al . Effect of retained austenite on subsequent thermal processing and resultant mechanical properties of selective laser melted 17–4 PH stainless steel [J]. Materials & Design , 2015 , 81 : 44 - 53 .
Pasebani S , Ghayoor M , Badwe S R , et al . Effects of atomizing media and post processing on mechanical properties of 17-4 PH stainless steel manufactured via selective laser melting [J]. Additive Manufacturing , 2018 , 22 : 127 - 137 .
Nezhadfar P D , Anderson-Wedge K , Daniewicz S , et al . Improved high cycle fatigue performance of additively manufactured 17-4 PH stainless steel via in-process refining micro-/defect-structure [J]. Additive Manufacturing , 2020 , 36 : 101604 .
Wang X F , Liu Y , Shi T Y , et al . Strain rate dependence of mechanical property in a selective laser melted 17–4 PH stainless steel with different states [J]. Materials Science and Engineering: A , 2020 , 792 : 139776 .
Yu Z Y , Zheng Y , Chen J M , et al . Effect of laser remelting processing on microstructure and mechanical properties of 17-4 PH stainless steel during laser direct metal deposition [J]. Journal of Materials Processing Technology , 2020 , 284 : 116738 .
Rafi H K , Starr T L , Stucker B E . A comparison of the tensile, fatigue, and fracture behavior of Ti–6Al–4V and 15-5 PH stainless steel parts made by selective laser melting [J]. The International Journal of Advanced Manufacturing Technology , 2013 , 69 ( 5-8 ): 1299 - 1309 .
Wang C J , Liu C , Zhang M X , et al . Effect of Yttrium on the Microstructure and Mechanical Properties of PH13-8Mo Stainless Steels Produced by Selective Laser Melting [J]. Materials , 2022 , 15 ( 15 ): 5441 .
Liu C , Liang J X , Wang C J , et al . Synergistic improvement of strength and ductility via doping cerium into PH13-8Mo stainless steel by laser powder bed fusion [J]. Journal of Materials Science & Technology , 2023 (accpeted).
王长军 , 梁剑雄 , 刘振宝 , 等 . 一种SLM用高强度不锈钢粉末、制备方法及其打印工艺 [P]. 北京 : CN114393206B [P]. 2022-12-16 .
王云阁 , 王向明 , 王华明 . 一种 300 M超高强钢飞机起落架的制造方法 : CN101229586 [P]. 2008-07-30 .
崔灿 , 王向明 , 吴斌 , 等 . 激光直接沉积成形A-100钢起落架制件质量一致性检验方法 : CN105458255A [P]. 2016-04-06 .
Ning J , Yu Z S , Sun K , et al . Comparison of microstructures and properties of X80 pipeline steel additively manufactured based on laser welding with filler wire and cold metal transfer [J]. Journal of Materials Research and Technology , 2021 , 10 : 752 - 768 .
胡美娟 , 马秋荣 , 吉玲康 , 等 . 一种油气输送用厚壁大口径三通管件的电弧增材制造方法 : CN112935276B [P]. 2022-10-04 .
掌握先进技术、打造国之重器—中石协组织增材制造低温厚壁大口径三通产品鉴定 . https://www.cpei.org.cn/11/202209/4250.html, 2022 .
Bandyopadhyay A , Traxel K D , Lang M , et al . Alloy design via additive manufacturing: Advantages, challenges, applications and perspectives [J]. Materials Today . 2022 , 52 : 207 - 224 .
杜宇雷 . 3D打印材料 [M]. 北京 : 化学工业出版社 , 2020 .
汤慧萍 . 3D打印金属材料 [M]. 北京 : 化学工业出版社 , 2020 .
魏青松 , 宋波 , 文世峰 . 金属粉床激光增材制造技术 [M]. 北京 : 化学工业出版社 , 2019 .
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