Comparative study on microstructure and electrochemical corrosion resistance of Al7075 alloy prepared by laser additive manufacturing and forging technology

Jin-liang Zhang , Jie-liang Ye , Bo Song , Rui-di Li , Yu-sheng Shi

Journal of Central South University ›› 2021, Vol. 28 ›› Issue (4) : 1058 -1067.

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Journal of Central South University ›› 2021, Vol. 28 ›› Issue (4) : 1058 -1067. DOI: 10.1007/s11771-021-4679-9
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Comparative study on microstructure and electrochemical corrosion resistance of Al7075 alloy prepared by laser additive manufacturing and forging technology

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Abstract

Al7075 alloy is a typical aviation aluminum with good mechanical properties and anodic oxidation effect. Laser engineered net shaping technology has unique advantages in the integrated forming of high-performance large aircraft structural parts. The manufacturing of 7075 aluminum alloy structural parts by laser engineered net shaping technology has become an important development direction in the future aerospace field. Electrochemical corrosion resistance of aluminum alloys is of vital importance to improve reliability and life-span of lightweight components. A comparative study on microstructure and anti-corrosion performance of Al7075 alloy prepared by laser additive manufacturing and forging technology was conducted. There are hole defects in LENS-fabricated Al7075 alloy with uniformly distributed η phase. No defects are observed in Al7075 forgings. The large S phase particles and small ellipsoidal η phase particles are found in Al matrix. The corrosion mechanisms were revealed according to the analysis of polarization curves and corrosion morphology. It was found that compared with that prepared by forgings, the additive manufactured samples have lower corrosion tendency and higher corrosion rate. Corrosion occurred preferentially at the hole defects. The incomplete passivation film at the defects leads to the formation of a local cell composed of the internal Al, corrosion solution and the surrounding passive film, which further aggravates the corrosion.

Keywords

Al7075 alloy / laser engineered net shaping / forging / electrochemical corrosion resistance

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Jin-liang Zhang, Jie-liang Ye, Bo Song, Rui-di Li, Yu-sheng Shi. Comparative study on microstructure and electrochemical corrosion resistance of Al7075 alloy prepared by laser additive manufacturing and forging technology. Journal of Central South University, 2021, 28(4): 1058-1067 DOI:10.1007/s11771-021-4679-9

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References

[1]

ZhangJ-l, GaoJ-b, SongB, ZhangL-j, HanC-j, CaiC, ZhouK, ShiY-sheng. A novel crack-free Ti-modified Al-Cu-Mg alloy designed for selective laser melting [J]. Additive Manufacturing, 2021, 38: 101829

[2]

ChenJ, PanQ-l, YuX-h, LiM-j, ZouH, XiangH, HuangZ-q, HuQ. Effect of annealing treatment on the microstructure and fatigue crack growth behavior of Al-Zn-Mg-Sc-Zr alloy [J]. Journal of Central South University, 2018, 25(5): 961-975

[3]

ZhangJ-l, SongB, WeiQ-s, BourellD, ShiY-sheng. A review of selective laser melting of aluminum alloys: Processing, microstructure, property and developing trends [J]. Journal of Materials Science & Technology, 2018, 35270-284

[4]

LiR-d, WangM-b, YuanT-c, SongB, ChenC, ZhouK-c, CaoP. Selective laser melting of a novel Sc and Zr modified Al-6.2 Mg alloy: Processing, microstructure, and properties [J]. Powder Tenchnology, 2017, 319: 117-128

[5]

ZhangJ-l, SongB, YangL, LiuR-j, ZhangL, ShiY-sheng. Microstructure evolution and mechanical properties of TiB/Ti6Al4V gradient-material lattice structure fabricated by laser powder bed fusion [J]. Composites Part B-Engineering, 2020, 202: 108419

[6]

YangX, RenY-j, LiuS-f, WangQ-j, ShiM-jun. Microstructure and tensile property of SLM 316L stainless steel manufactured with fine and coarse powder mixtures [J]. Journal of Central South University, 2020, 27(2): 334-343

[7]

ZindaniD, MaityS R, BhowmikS. Decision making tools for optimal material selection: A review [J]. Journal of Central South University, 2020, 27(3): 629-673

[8]

ZhaiY-w, LadosD A, BrownE J, VigilanteG N. Understanding the microstructure and mechanical properties of Ti-6Al-4V and Inconel 718 alloys manufactured by laser engineered net shaping [J]. Additive Manufacturing, 2019, 27334-344

[9]

ShiW-x, RenZ-y, HeW, HouJ-s, XieH-m, LiuS. A technique combining laser spot thermography and neural network for surface crack detection in laser engineered net shaping [J]. Optics and Lasers in Engineering, 2021, 138: 106431

[10]

ZhaiY, LadosD A, LagoyJ L. Additive manufacturing: Making imagination the major limitation [J]. The Journal of the Minerals, Metals & Materials Society, 2014, 66808-816

[11]

ChenH-x, KongD-jun. Comparison on electrochemical corrosion performances of arc and laser thermal sprayed Al-Ti-Ni coatings in marine environment [J]. Materials Chemistry & Physics, 2020, 251: 123200

[12]

AbiolaO K, OtaigbeJ O E. Effect of common water contaminants on the corrosion of aluminium alloys in ethylene glycol-water solution [J]. Corrosion Science, 2008, 50242-247

[13]

ZhangY-j, SongB, MingJ, YanQ, WangM, CaiC, ZhangC, ShiY-sheng. Corrosion mechanism of amorphous alloy strengthened stainless steel composite fabricated by selective laser melting [J]. Corrosion Science, 2020, 163: 108241

[14]

TianW-m, LiS-m, WangB, LiuJ-h, YuM. Pitting corrosion of naturally aged AA 7075 aluminum alloys with bimodal grain size [J]. Corrosion Science, 2016, 1131-16

[15]

CabriniM, LorenziS, PastoreT, TestaC, ManfrediD, LorussoM, CalignanoF, PaveseM, AndreattaF. Corrosion behavior of AlSi10Mg alloy produced by laser powder bed fusion under chloride exposure [J]. Corrosion Science, 2019, 152: 101-108

[16]

GharbiO, JiangD, FeenstraD R, KairyS K, WuY, HutchinsonC R, BirbilisN. On the corrosion of additively manufactured aluminium alloy AA2024 prepared by selective laser melting [J]. Corrosion Science, 2018, 1743: 93-106

[17]

ZhangC, LiX-m, LiuS-q, LiuH, YuL, LiuL. 3D printing of Zr-based bulk metallic glasses and components for potential biomedical applications [J]. Journal of Alloys & Compounds, 2019, 790: 963-973

[18]

LiuG-l, FangG-liang. Grain-boundary segregation and corrosion mechanism of Al-Zn-Mg-Cu ultra high strength aluminum alloys [J]. Rare Metal Materials and Engineering, 2009, 28: 1598-1601(in Chinese)

[19]

XiaoS, WangC, ChenTThe application of the discrete variational method in the density functional theory to chemistry and materials physics [M], 1998, Beijing, Science Press(in Chinese)

[20]

TsuruT, YamaguchiM, EbiharaK, ItakuraM, ShiiharaY, MatsudaK, TodaH. First-principles study of hydrogen segregation at the MgZn2, precipitate in Al-Mg-Zn alloys [J]. Computational Materials Science, 2018, 148: 301-306

[21]

ZouX-l, YanH, ChenX-hui. Evolution of second phases and mechanical properties of 7075 Al alloy processed by solution heat treatment [J]. Transactions of Nonferrous Metals Society of China, 2017, 27: 2146-2155

[22]

JiangF-l, ZurobH S, PurdyG R, ZhangH. Characterizing precipitate evolution of an Al-Zn-Mg-Cu-based commercial alloy during artificial aging and non-isothermal heat treatments by in situ electrical resistivity monitoring [J]. Materials Characterization, 2016, 117: 47-56

[23]

YangW-c, JiS-x, WangM-p, LiZ. Precipitation behaviour of Al-Zn-Mg-Cu alloy and diffraction analysis from η′ precipitates in four variants [J]. Journal of Alloys & Compounds, 2014, 610: 623-629

[24]

ZhangX, ZhouX, NilssonJ O. Corrosion behaviour of AA6082 Al-Mg-Si alloy extrusion: The influence of quench cooling rate [J]. Corrosion Science, 2019, 150: 100-109

[25]

Santos-GüemesR, BellónB, EstebanmanzanaresG, SeguradoJ, CapolungoL, LlorcaJ. Multiscale modelling of precipitation hardening in Al-Cu alloys: Dislocation dynamics simulations and experimental validation [J]. Acta Materialia, 2020, 1880: 475-485

[26]

GhiaasiaanR, AmirkhizB S, ShankarS. Quantitative metallography of precipitating and secondary phases after strengthening treatment of net shaped casting of Al-Zn-Mg-Cu (7000) alloys [J]. Materials Science & Engineering A, 2017, 698: 206-217

[27]

LiaoF, FanS-t, DengY-l, et al.. First-principle calculations of mechanical properties of Al2Cu, Al2CuMg and MgZn2 intermetallics in high strength aluminum alloys [J]. Journal of Aeronautical Materials, 2016, 36: 1-8(in Chinese)

[28]

LiJ F, ZhengZ Q, LiS C, ChenW J, RenW D, ZhaoX S. Simulation study on function mechanism of some precipitates in localized corrosion of Al alloys [J]. Corrosion Science, 2007, 49: 2436-2449

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