Effect of Heat Input on Microstructure and Mechanical Properties of Marine High Strength Steel Fabricated by Wire Arc Additive Manufacturing

被引:1
|
作者
Hou Xuru [1 ,2 ]
Zhao Lin [2 ]
Ren Shubin [1 ]
Peng Yun [2 ]
Ma Chengyong [2 ]
Tian Zhiling [2 ]
机构
[1] Univ Sci & Technol Beijing, Inst Adv Mat & Technol, Beijing 100083, Peoples R China
[2] Cent Iron & Steel Res Inst, Beijing 100081, Peoples R China
关键词
marine high strength steel; wire arc additive manufacturing; heat input; acicular ferrite; martensite-austenite (M-A) constituent; mechanical property; ACICULAR FERRITE; AFFECTED ZONE; IMPACT TOUGHNESS; DIFFRACTION; COMPONENTS;
D O I
10.11900/0412.1961.2022.00161
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
Marine-grade high strength steel (yield strength = 590 MPa) is a low-carbon, low-alloy steel characterized by high strength and toughness, excellent weldability, and seawater corrosion resistance. Thus, it is suitable for structural applications and widely used in the shipbuilding industry. Recently, wire arc additive manufacturing (WAAM) has attracted significant attention worldwide because of its high deposition rates and material utilization ratios, low material and equipment costs, and good structural integrity. However, the research on WAAM of 590 MPa marine-grade high strength steel is limited. In this work, 590 MPa marine-grade high strength steel components were produced by cold metal transfer and pulse-arc additive manufacturing (CMT + P-WAAM). The effect of the heat input on the microstructures and mechanical properties of the developed steel were investigated using several techniques, including OM, SEM, EBSD, and TEM. The results indicate that at a heat input of 5.6 kJ/cm, the microstructures of the WAAM deposited metals are mainly upper bainite and granular bainite, the area fraction of the martensite-austenite (M-A) constituents accounts for about 14.82%, the length ratio of the effective highangle grain boundary (grain boundary angle alpha > 45 degrees) is 36.3%, the tensile strength of the deposited metals are 843 and 858 MPa in the horizontal and vertical directions, respectively, and the average microhardness is about 286 HV. However, its impact absorbed energy at -50 degrees C is only 15 and 16 J in the horizontal and vertical directions, respectively. At a heat input of 13.5 kJ/cm, the low cooling rate and the high inclusion (inclusion size d > 0.4 mu m) content promote the formation of a large quantity of acicular ferrites with lath bainites and a small amount of granular bainites. The area fraction of the M-A constituents is reduced to 4.21%, and the length ratio of the effective high-angle grain boundary is increased to 52.4%. The tensile strength of the deposited metals in the horizontal and vertical directions is reduced to 723 and 705 MPa, respectively. Similarly, the average microhardness is also reduced to 258 HV, but the low-temperature impact absorbed energy is greatly improved, reaching 109 and 127 J, respectively, which is 7-8 times that of the WAAM deposited metal at a low heat input. The impact fracture characteristics also changed from a quasi-cleavage fracture to a typical ductile fracture.
引用
收藏
页码:1311 / 1323
页数:13
相关论文
共 37 条
  • [1] FORMATION OF ACICULAR FERRITE AT OXIDE PARTICLES IN STEELS
    BARBARO, FJ
    KRAUKLIS, P
    EASTERLING, KE
    [J]. MATERIALS SCIENCE AND TECHNOLOGY, 1989, 5 (11) : 1057 - 1068
  • [2] Sensitivity of Ti-6Al-4V components to oxidation during out of chamber Wire plus Arc Additive Manufacturing
    Bermingham, M. J.
    Thomson-Larkins, J.
    St John, D. H.
    Dargusch, M. S.
    [J]. JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2018, 258 : 29 - 37
  • [3] [曹睿 Cao Rui], 2010, [焊接学报, Transactions of the China Welding Institution], V31, P93
  • [4] CLEAVAGE INITIATION IN THE INTERCRITICALLY REHEATED COARSE-GRAINED HEAT-AFFECTED ZONE .1. FRACTOGRAPHIC EVIDENCE
    DAVIS, CL
    KING, JE
    [J]. METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 1994, 25 (03): : 563 - 573
  • [5] DAVIS CL, 1993, MATER SCI TECH SER, V9, P8, DOI 10.1179/026708393790171494
  • [6] Additive manufacturing of metallic components - Process, structure and properties
    DebRoy, T.
    Wei, H. L.
    Zuback, J. S.
    Mukherjee, T.
    Elmer, J. W.
    Milewski, J. O.
    Beese, A. M.
    Wilson-Heid, A.
    De, A.
    Zhang, W.
    [J]. PROGRESS IN MATERIALS SCIENCE, 2018, 92 : 112 - 224
  • [7] A review of wire arc additive manufacturing and advances in wire arc additive manufacturing of aluminium
    Derekar, K. S.
    [J]. MATERIALS SCIENCE AND TECHNOLOGY, 2018, 34 (08) : 895 - 916
  • [8] Wire Arc Additive Manufacturing (WAAM) process of nickel based superalloys - A review
    Dhinakaran, V.
    Ajith, J.
    Fahmidha, A. Fathima Yasin
    Jagadeesha, T.
    Sathish, T.
    Stalin, B.
    [J]. MATERIALS TODAY-PROCEEDINGS, 2020, 21 : 920 - 925
  • [9] Analysis of different acicular ferrite microstructures in low-carbon steels by electron backscattered diffraction.: Study of their toughness behavior
    Díaz-Fuentes, M
    Iza-Mendia, A
    Gutiérrez, I
    [J]. METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 2003, 34A (11): : 2505 - 2516
  • [10] Electron backscattering diffraction study of acicular ferrite, bainite, and martensite steel microstructures
    Gourgues, AF
    Flower, HM
    Lindley, TC
    [J]. MATERIALS SCIENCE AND TECHNOLOGY, 2000, 16 (01) : 26 - 40