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Gutierrez-Urrutia I, Raabe D. Multistage strain hardening through dislocation substructure and twinning in a high strength and ductile weight-reduced Fe-Mn-Al-C steel. Acta Materialia, 2012, 60(16): 5791–5802.
Yang H K, Tian Y Z, Zhang Z F. Revealing the mechanical properties and microstructure evolutions of Fe-22Mn-0.6C-(x)Al TWIP steels via Al alloying control. Materials Science and Engineering: A, 2018, 731: 61–70.
Zhang L, Liu X H, Shu K Y. Microstructure and mechanical properties of hot-rolled Fe-Mn-C-Si TWIP steel. Journal of Iron and Steel Research International, 2011, 18(12): 45–48.
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Zheng, Zb., Yang, Hk., Shatrava, A.P. et al. Revealing effect of aluminum alloying on work hardening and impact behaviors of low-density Fe-18Mn-1.3C-2Cr-(4, 11)Al casting steel. China Foundry 19, 359–368 (2022). https://doi.org/10.1007/s41230-022-2004-3
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Hao-kun Yang Doctor, graduated from Institute of Metal Research, Chinese Academy of Sciences, and currently works with the Hong Kong Productivity Council, China. His research interests mainly focus on high-performance casting iron and steel fabrication and mechanical properties evaluation. E-mail: hkyang@hkpc.org
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An X H, Qu S, Wu S D, et al. Effects of stacking fault energy on the thermal stability and mechanical properties of nanostructured Cu-Al alloys during thermal annealing. Journal of Materials Research, 2011, 26(3): 407–415.
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The present study designed two kinds of Fe-18Mn-1.3C-2Cr-(4, 11)Al (wt.%) low-density steels. Tensile and impact tests were carried out to evaluate the work hardening and impact toughness properties via aluminum (Al) alloying control. Meanwhile, microstructure evolution and fracture morphology were investigated by X-ray diffraction (XRD), a scanning electron microscope (SEM) equipped with electron backscatter diffraction (EBSD), a transmission electron microscope (TEM), and a stereo-optical microscope (OM). It is found that the Al addition obviously promotes the dislocation planar slipping, resulting in cleavage and brittle impact fracture in 11wt.% Al steel. Besides, the microband-induced plasticity (MBIP) mechanism is found in 4wt.% Al containing steel, introducing considerable work hardening capacity and impact toughness of 156.8±17.4 J. The present study provides a direct illustration of the relationship between work hardening and impact toughness behaviors of these two low-density steels for potential application as impact-resistant components.
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Institute of New Materials, Guangdong Academy of Sciences, Guangdong Provincial Key Laboratory of Metal Toughening Technology and Application, Guangzhou, 510650, China
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This work was financially supported by the Guangdong Province Key Area R&D Program (Grant No. 2020B0101340004), the International Science and Technology Cooperation Project of Guangdong Province (Grant No. 2021A0505030051), the Innovation and Technology Fund (ITF) (Grant No. ITP/020/21AP), the Young Talent Support Project of Guangzhou Association for Science and Technology (Grant No. QT20220101075), and the GDAS’ Project of Science and Technology Development (Grant No. 2022GDASZH-2022010103).
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Guangdong Provincial Iron Matrix Composite Engineering Research Center, National Engineering Research Center of Powder Metallurgy of Titanium & Rare Metals, Guangzhou, 510650, China
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