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      KCI등재 SCI SCIE SCOPUS

      Plastic Deformation Mechanism of Ductile Fe50Ni30P13C7 Metallic Glass

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      https://www.riss.kr/link?id=A106058113

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      다국어 초록 (Multilingual Abstract)

      Shear band (SB) multiplication is considered as an essential characteristic of the plastic deformation in metallic glasses(MGs). In this work, the evolutionary characteristics of SBs and serrated behavior in ductile Fe50Ni30P13C7MGs werestudied by the...

      Shear band (SB) multiplication is considered as an essential characteristic of the plastic deformation in metallic glasses(MGs). In this work, the evolutionary characteristics of SBs and serrated behavior in ductile Fe50Ni30P13C7MGs werestudied by the finite element method simulation. The study demonstrated that the stress field would redistribute and becomeinhomogeneous during SB sliding, where the stress perpendicular to the original SB gradually accumulates until reachingthe magnitude of yielding strength and triggering new SBs. The results of simulation are in good agreement with the SBsintersection morphologies observed in SEM images and the serration flows on the stress–strain curves. Furthermore, severalfactors affecting stress field distribution in MGs, such as contact friction, aspect ratio, and boundary confinement, werealso analyzed and discussed. The overall results indicate that the ductility of Fe-based MGs could be achieved without anyinhomogeneous structure, and scientifically explicate the dependence of SB multiplication on both material properties andloading condition, which can provide us with a deeper understanding on plastic deformation mechanism of MGs.

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      참고문헌 (Reference)

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      2 G. N. Yang, "The shear band controlled deformation in metallic glass : a perspective from fracture" 6 : 21852-, 2016

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      4 G. N. Yang, "The multiple shear bands and plasticity in metallic glasses : a possible origin from stress redistribution" 695 : 3457-3466, 2017

      5 D. Klaumünzer, "Stick–slip dynamics and recent insights into shear banding in metallic glasses" 26 (26): 1453-1463, 2011

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      7 G. P. Zheng, "Simulation of shear banding and crack propagation in bulk metallic glass matrix composites" 509 : S136-S140, 2011

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      1 S. H. Hong, "Work-hardening and plastic deformation behavior of Ti-based bulk metallic glass composites with bimodal sized B2 particles" 62 : 36-42, 2015

      2 G. N. Yang, "The shear band controlled deformation in metallic glass : a perspective from fracture" 6 : 21852-, 2016

      3 P. Tao, "The relationship between shear bands and deformability in bulk metallic glasses" 536 : 226-230, 2012

      4 G. N. Yang, "The multiple shear bands and plasticity in metallic glasses : a possible origin from stress redistribution" 695 : 3457-3466, 2017

      5 D. Klaumünzer, "Stick–slip dynamics and recent insights into shear banding in metallic glasses" 26 (26): 1453-1463, 2011

      6 H. Y. Zhang, "Simulation of shear banding in bulk metallic glass composites containing dendrite phases" 586 : S262-S266, 2014

      7 G. P. Zheng, "Simulation of shear banding and crack propagation in bulk metallic glass matrix composites" 509 : S136-S140, 2011

      8 Z. Wang, "Signature of viscous flow units in apparent elastic regime of metallic glasses" 101 (101): 869-, 2012

      9 A. L. Greer, "Shear bands in metallic glasses" 74 (74): 71-132, 2013

      10 A. V. Sergueeva, "Shear band formation and ductility of metallic glasses" 383 (383): 219-223, 2004

      11 R. Maaß, "Propagation dynamics of individual shear bands during inhomogeneous flow in a Zr-based bulk metallic glass" 59 (59): 3205-3213, 2011

      12 H. Y. Ding, "Preparation of a Pd–Cu–Si bulk metallic glass with a diameter up to 11 mm" 27 (27): 126101-, 2010

      13 D. H. Kim, "Phase separation in metallic glasses" 58 (58): 1103-1172, 2013

      14 B. Sarac, "Origin of large plasticity and multiscale effects in iron-based metallic glasses" 9 (9): 1333-, 2018

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      30 A. Cai, "Effects of aspect ratio and loading rate on room-temperature mechanical properties of Cu-based bulk metallic glasses" 26 (26): 2617-2632, 2016

      31 Yuan X-d, "Effect of pre-existing shear bands on mechanical properties and serration behaviors in bulk metallic glasses" 24 (24): 402-410, 2017

      32 K. B. Kim, "Effect of local chemistry, structure and length scale of heterogeneities on the mechanical properties of a Ti45Cu40Ni7.5Zr5Sn2.5bulk metallic glass" 88 (88): 75-81, 2008

      33 N. Nagendra, "Effect of crystallinity on the impact toughness of a La-based bulk metallic glass" 48 (48): 2603-2615, 2000

      34 J. T. Kim, "Effect of boron addition on thermal and mechanical properties of Co–Cr–Mo–C–(B)glassforming alloys" 99 : 1-7, 2018

      35 Z. D. Sha, "Effect of aspect ratio on the mechanical properties of metallic glasses" 93 : 36-39, 2014

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      37 Hyo Jin Park, "Development of High Strength Ni–Cu–Zr–Ti–Si–Sn In-Situ Bulk Metallic Glass Composites Reinforced by Hard B2 Phase" 대한금속·재료학회 24 (24): 241-247, 2018

      38 A. Dubach, "Constitutive model for inhomogeneous flow in bulk metallic glasses" 57 (57): 881-892, 2009

      39 F. F. Wu, "Compressive properties of bulk metallic glass with small aspect ratio" 22 (22): 501-507, 2007

      40 Y. Chen, "Collective evolution dynamics of multiple shear bands in bulk metallic glasses" 50 : 18-36, 2013

      41 C. Wang, "Chaotic state to selforganized critical state transition of serrated flow dynamics during brittle-to-ductile transition in metallic glass" 119 (119): 487-, 2016

      42 L. F. Liu, "Behavior of multiple shear bands in Zr-based bulk metallic glass" 93 (93): 174-177, 2005

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