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第 46 卷 王 强,等: 间隙C掺杂CoCrNi基中熵合金的应变率效应和温度效应 第 3 期
351–354. DOI: 10.1016/0001-6160(72)90028-4.
[52] LEI Z F, LIU X J, WU Y, et al. Enhanced strength and ductility in a high-entropy alloy via ordered oxygen complexes [J].
Nature, 2018, 563(7732): 546–550. DOI: 10.1038/s41586-018-0685-y.
[53] CHEN J, YAO Z H, WANG X B, et al. Effect of C content on microstructure and tensile properties of as-cast CoCrFeMnNi
high entropy alloy [J]. Materials Chemistry and Physics, 2018, 210: 136–145. DOI: 10.1016/j.matchemphys.2017.08.011.
[54] WANG Z W, LU W J, RAABE D, et al. On the mechanism of extraordinary strain hardening in an interstitial high-entropy
alloy under cryogenic conditions [J]. Journal of Alloys and Compounds, 2019, 781: 734–743. DOI: 10.1016/j.jallcom.2018.
12.061.
[55] ZHANG L J, YU P F, FAN J T, et al. Investigating the micro and nanomechanical properties of CoCrFeNi-C X high-entropy
alloys containing eutectic carbides [J]. Materials Science and Engineering: A, 2020, 796: 140065. DOI: 10.1016/j.msea.2020.
140065.
[56] KLIMOVA M V, SEMENYUK A O, SHAYSULTANOV D G, et al. Effect of carbon on cryogenic tensile behavior of
CoCrFeMnNi-type high entropy alloys [J]. Journal of Alloys and Compounds, 2019, 811: 152000. DOI: 10.1016/j.jallcom.
2019.152000.
[57] HAN Y, LI H B, FENG H, et al. Simultaneous enhancement in strength and ductility of Fe 50 Mn 30 Co 10 Cr 10 high-entropy alloy
via nitrogen alloying [J]. Journal of Materials Science and Technology, 2021, 65: 210–215. DOI: 10.1016/j.jmst.2020.04.072.
[58] STEPANOV N D, SHAYSULTANOV D G, CHERNICHENKO R S, et al. Effect of thermomechanical processing on
microstructure and mechanical properties of the carbon-containing CoCrFeNiMn high entropy alloy [J]. Journal of Alloys and
Compounds, 2017, 693: 394–405. DOI: 10.1016/j.jallcom.2016.09.208.
[59] MEYERS M A, VÖHRINGER O, LUBARDA V A. The onset of twinning in metals: a constitutive description [J]. Acta
Materialia, 2001, 49(19): 4025–4039. DOI: 10.1016/S1359-6454(01)00300-7.
[60] WANG L, BEI H, LI T L, et al. Determining the activation energies and slip systems for dislocation nucleation in body-
centered cubic Mo and face-centered cubic Ni single crystals [J]. Scripta Materialia, 2011, 65(3): 179–182. DOI: 10.1016/j.
scriptamat.2011.03.036.
[61] WU Y, ZHANG F, YUAN X Y, et al. Short-range ordering and its effects on mechanical properties of high-entropy alloys [J].
Journal of Materials Science & Technology, 2021, 62: 214–220. DOI: 10.1016/j.jmst.2020.06.018.
[62] BU Y Q, WU Y, LEI Z F, et al. Local chemical fluctuation mediated ductility in body-centered-cubic high-entropy alloys [J].
Materials Today, 2021, 46: 28–34. DOI: 10.1016/j.mattod.2021.02.022.
[63] ZHANG R P, ZHAO S T, DING J, et al. Short-range order and its impact on the CrCoNi medium-entropy alloy [J]. Nature,
2020, 581(7808): 283–287. DOI: 10.1038/s41586-020-2275-z.
[64] CHEN X F, WANG Q, CHENG Z Y, et al. Direct observation of chemical short-range order in a medium-entropy alloy [J].
Nature, 2021, 592(7856): 712–716. DOI: 10.1038/s41586-021-03428-z.
[65] COTTRELL A H, JASWON M A. Distribution of solute atoms round a slow dislocation [J]. Proceedings of the Royal Society
A: Mathematical, Physical and Engineering Sciences, 1949, 199(1056): 104–114. DOI: 10.1098/rspa.1949.0128.
[66] MCCORMICK P G. The Portevin-Le Châtelier effect in a pressurized low carbon steel [J]. Acta Metallurgica, 1973, 21(7):
873–878. DOI: 10.1016/0001-6160(73)90144-2.
[67] PINK E, KUMAR S. Patterns of serrated flow in a low-carbon steel [J]. Materials Science and Engineering: A, 1995, 201(1/2):
58–64. DOI: 10.1016/0921-5093(95)09772-4.
[68] SLEESWYK A W. Slow strain-hardening of ingot iron [J]. Acta Metallurgica, 1958, 6(9): 598–603. DOI: 10.1016/0001-
6160(58)90101-9.
[69] YUAN K B, GUO W G, LI D W, et al. Influence of heat treatments on plastic flow of laser deposited Inconel 718: testing and
microstructural based constitutive modeling [J]. International Journal of Plasticity, 2021, 136: 102865. DOI: 10.1016/j.
ijplas.2020.102865.
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