• International Journal of Extreme Manufacturing
  • Vol. 3, Issue 2, 22001 (2021)
Tao Zhang1、2、3, Feng Jiang1、2, Hui Huang1、2, Jing Lu1、2, Yueqin Wu1、2, Zhengyi Jiang3, and Xipeng Xu1、2、*
Author Affiliations
  • 1National and Local Joint Engineering Research Center for Intelligent Manufacturing Technology of Brittle Material Products, Xiamen 361021, People’s Republic of China
  • 2Institute of Manufacturing Engineering, National Huaqiao University, Xiamen 361021, People’s Republic of China
  • 3School of Mechanical, Materials, Mechatronic and Biomedical Engineering, University of Wollongong, Wollongong NSW 2522, Australia
  • show less
    DOI: 10.1088/2631-7990/abdfd7 Cite this Article
    Tao Zhang, Feng Jiang, Hui Huang, Jing Lu, Yueqin Wu, Zhengyi Jiang, Xipeng Xu. Towards understanding the brittle–ductile transition in the extreme manufacturing[J]. International Journal of Extreme Manufacturing, 2021, 3(2): 22001 Copy Citation Text show less
    References

    [1] Li C, Li X L, Wu Y Q, Zhang F H and Huang H 2019 Deformation mechanism and force modelling of the grinding of YAG single crystals Int. J. Mach. Tools Manuf. 143 23–37

    [2] Goel S 2014 The current understanding on the diamond machining of silicon carbide J. Phys. D: Appl. Phys. 47 243001

    [3] Zhou M, Ngoi B K A, Zhong Z W and Chin C S 2001 Brittle-ductile transition in diamond cutting of silicon single crystals Mater. Manuf. Process. 16 447–60

    [4] Huang H, Li X L, Mu D K and Lawn B R 2021 Science and art of ductile grinding of brittle solids Int. J. Mach. Tools Manuf. 161 103675

    [5] Neo W K, Kumar A S and Rahman M 2012 A review on the current research trends in ductile regime machining Int. J. Adv. Manuf. Technol. 63 465–80

    [6] Zhou P, Wang Z G, Yan Y, Huang N, Kang R K and Guo D M 2020 Sensitivity analysis of the surface integrity of monocrystalline silicon to grinding speed with same grain depth-of-cut Adv. Manuf. 8 97–106

    [7] Li C, Zhang F and Ma Z 2018 Study on grinding surface deformation and subsurface damage mechanism of reaction-bonded SiC ceramics Proc. Inst. Mech. Eng. B 232 1986–95

    [8] Li B Z, Ni J M, Yang J G and Liang S Y 2014 Study on high-speed grinding mechanisms for quality and process efficiency Int. J. Adv. Manuf. Technol. 70 813–9

    [9] Wang B and Liu Z Q 2017 Acoustic emission signal analysis during chip formation process in high speed machining of 7050-T7451 aluminum alloy and Inconel 718 superalloy J. Manuf. Process. 27 114–25

    [10] Yin J F, Bai Q and Zhang B 2018 Methods for detection of subsurface damage: a review Chin. J. Mech. Eng. 31 41

    [11] Peng Y, Jiang T and Ehmann K F 2014 Research on single-point diamond fly-grooving of brittle materials Int. J. Adv. Manuf. Technol. 75 1577–86

    [12] Zhou H X, Guo M and Wang X Z 2017 Ultraprecision grinding of silicon wafers using a newly developed diamond wheel Mater. Sci. Semicond. Process. 68 238–44

    [13] Bi Z, Tokura H and Yoshikawa M 1988 Study on surface cracking of alumina scratched by single-point diamonds J. Mater. Sci. 23 3214–24

    [14] Goel S, Luo X C, Agrawal A and Reuben R L 2015 Diamond machining of silicon: a review of advances in molecular dynamics simulation Int. J. Mach. Tools Manuf. 88 131–64

    [15] Zhang Z Y, Wu Y Q, Guo D M and Huang H 2011 Phase transformation of single crystal silicon induced by grinding with ultrafine diamond grits Scr. Mater. 64 177–80

    [16] Li C, Wu Y Q, Li X L, Ma L J, Zhang F H and Huang H 2020 Deformation characteristics and surface generation modelling of crack-free grinding of GGG single crystals J. Mater. Process. Technol. 279 116577

    [17] Zhang H, Gu H, Jetter J, Quandt E, James R D and Greer J R 2021 Size-dependence of zirconia-based ceramics via deformation twinning Extreme Mech. Lett. 42 101124

    [18] Liu K, Wang H and Zhang X Q 2020 Ductile Mode Cutting of Brittle Materials (Berlin: Springer) pp 17–38

    [19] Lee S H and Ahn B W 2006 Monitoring of brittle-ductile transition during AFM machining using acoustic emission Key Eng. Mater. 326–328 405–8

    [20] Koshimizu S and Otsuka J 2001 Detection of ductile to brittle transition in microindentation and microscratching of single crystal silicon using acoustic emission Mach. Sci. Technol. 5 101–14

    [21] Zhang Z Y, Huo F W, Wu Y Q and Huang H 2011 Grinding of silicon wafers using an ultrafine diamond wheel of a hybrid bond material Int. J. Mach. Tools Manuf. 51 18–24

    [22] Duan N, Yu Y Q, Wang W S and Xu X P 2017 SPH and FE coupled 3D simulation of monocrystal SiC scratching by single diamond grit Int. J. Refract. Met. Hard Mater. 64 279–93

    [23] Wang N C, Jiang F, Xu X P, Duan N, Wen Q L and Lu X Z 2019 Research on the machinability of A-plane sapphire under diamond wire sawing in different sawing directions Ceram. Int. 45 10310–20

    [24] Duan N, Yu Y Q, Wang W S and Xu X P 2017 Analysis of grit interference mechanisms for the double scratching of monocrystalline silicon carbide by coupling the FEM and SPH Int. J. Mach. Tools Manuf. 120 49–60

    [25] Huang H and Xu X P 2004 Interfacial interactions between diamond disk and granite during vertical spindle grinding Wear 256 623–9

    [26] Xu X P, Li Y, Zeng W Y and Li L B 2002 Quantitative analysis of the loads acting on the abrasive grits in the diamond sawing of granites J. Mater. Process. Technol. 129 50–55

    [27] Tan Y Q, Yang D M and Sheng Y 2008 Study of polycrystalline Al2O3 machining cracks using discrete element method Int. J. Mach. Tools Manuf. 48 975–82

    [28] Tan Y Q, Yang D M and Sheng Y 2009 Discrete element method (DEM) modeling of fracture and damage in the machining process of polycrystalline SiC J. Eur. Ceram. Soc. 29 1029–37

    [29] Huang H, Li X X and Xu X P 2017 An experimental research on the force and energy during the sapphire sawing using reciprocating electroplated diamond wire saw J. Manuf. Sci. Eng. 139 121011

    [30] Wang L J, Hu Z W, Chen Y, Yu Y Q and Xu X P 2020 Material removal mechanism of sapphire substrates with four crystal orientations by double-sided planetary grinding Ceram. Int. 46 7813–22

    [31] Jiang F, Luan X S, Wang N C, Xu X P, Lu X Z and Wen Q L 2018 Research on the dynamic mechanical properties of C-plane sapphire under impact loading Ceram. Int. 44 9839–47

    [32] Cheng X, Jin S S, Liao T K and Jiang F 2017 Optimizing the geometric parameters of chamfered edge for rough machining Fe–Cr–Ni stainless steel Int. J. Adv. Manuf. Technol. 91 137–46

    [33] Jiang F, Zhang T and Yan L 2016 Analytical model of milling forces based on time-variant sculptured shear surface Int. J. Mech. Sci. 115–116 190–201

    [34] Liao T K, Jiang F, Yan L and Cheng X 2017 Optimizing the geometric parameters of cutting edge for finishing machining of Fe–Cr–Ni stainless steel Int. J. Adv. Manuf. Technol. 88 2061–73

    [35] Maas P, Mizumoto Y, Kakinuma Y and Min S 2018 Anisotropic brittle-ductile transition of monocrystalline sapphire during orthogonal cutting and nanoindentation experiments Nanotechnol. Precis. Eng. 1 157–71

    [36] Bakir B, Mohammadi H and Patten J A 2017 Ductile regime scratching of a rock sample in a laser assisted machining technique Proc. ASME 2017 12th Int. Manufacturing Science and Engineering Conf. Collocated with the JSME/ASME 2017 6th Int. Conf. on Materials and Processing (Los Angeles, CA: ASME)

    [37] Ravindra D and Patten J 2014 Micro-laser-assisted machining: the future of manufacturing ceramics and semiconductors Sensors Mater. 26 417–27

    [38] Sutter G and List G 2013 Very high speed cutting of Ti–6Al–4V titanium alloy–change in morphology and mechanism of chip formation Int. J. Mach. Tools Manuf. 66 37–43

    [39] Abdulkadir L N, Abou-El-Hossein K, Jumare A I, Odedeyi P B, Liman M M and Olaniyan T A 2018 Ultra-precision diamond turning of optical silicon—a review Int. J. Adv. Manuf. Technol. 96 173–208

    [40] Goel S, Luo X C, Comley P, Reuben R L and Cox A 2013 Brittle–ductile transition during diamond turning of single crystal silicon carbide Int. J. Mach. Tools. Manuf. 65 15–21

    [41] Beaucamp A, Simon P, Charlton P, King C, Matsubara A and Wegener K 2017 Brittle-ductile transition in shape adaptive grinding (SAG) of SiC aspheric optics Int. J. Mach. Tools Manuf. 115 29–37

    [42] Xiao Y, Chen M J, Yang Y T and Cheng J 2015 Research on the critical condition of brittle-ductile transition about micro-milling of KDP crystal and experimental verification Int. J. Precis. Eng. Manuf. 16 351–9

    [43] Chen M J, Zhao Q L, Dong S and Li D 2005 The critical conditions of brittle–ductile transition and the factors influencing the surface quality of brittle materials in ultra-precision grinding J. Mater. Process. Technol. 168 75–82

    [44] Wang S F, An C H, Zhang F H, Wang J, Lei X Y and Zhang J F 2016 An experimental and theoretical investigation on the brittle ductile transition and cutting force anisotropy in cutting KDP crystal Int. J. Mach. Tools Manuf. 106 98–108

    [45] Li Z P, Zhang F H and Luo X C 2018 Subsurface damages beneath fracture pits of reaction-bonded silicon carbide after ultra-precision grinding Appl. Surf. Sci. 448 341–50

    [46] Wu C J, Li B Z, Pang J Z and Liang S Y 2016 Ductile grinding of Silicon carbide in high speed grinding J. Adv. Mech. Des. Syst. Manuf. 10 16–00014

    [47] Antwi E K, Liu K and Wang H 2018 A review on ductile mode cutting of brittle materials Front. Mech. Eng. 13 251–63

    [48] Liu K, Li X P, Rahman M, Neo K S and Liu X D 2007 A study of the effect of tool cutting edge radius on ductile cutting of silicon wafers Int. J. Adv. Manuf. Technol. 32 631–7

    [49] Sun S, Brandt M and Dargusch M S 2010 Thermally enhanced machining of hard-to-machine materials—a review Int. J. Mach. Tools Manuf. 50 663–80

    [50] Kizaki T, Sugita N and Mitsuishi M 2016 Experimental analysis of the machinability in the thermally assisted milling process of zirconia ceramics Precis. Eng. 45 176–86

    [51] Leshock C E, Kim J N and Shin Y C 2001 Plasma enhanced machining of Inconel 718: modeling of workpiece temperature with plasma heating and experimental results Int. J. Mach. Tools Manuf. 41 877–97

    [52] Anderson M, Patwa R and Shin Y C 2006 Laser-assisted machining of Inconel 718 with an economic analysis Int. J. Mach. Tools. Manuf. 46 1879–91

    [53] ?zler L, ˙Inan A and ?zel C 2001 Theoretical and experimental determination of tool life in hot machining of austenitic manganese steel Int. J. Mach. Tools Manuf. 41 163–72

    [54] Amin A K M N and Abdelgadir M 2003 The effect of preheating of work material on chatter during end milling of medium carbon steel performed on a vertical machining center (VMC) J. Manuf. Sci. Eng. 125 674–80

    [55] Chryssolouris G, Anifantis N and Karagiannis S 1997 Laser assisted machining: an overview J. Manuf. Sci. Eng. 119 766–9

    [56] Dumitrescu P, Koshy P, Stenekes J and Elbestawi M A 2006 High-power diode laser assisted hard turning of AISI D2 tool steel Int. J. Mach. Tools Manuf. 46 2009–16

    [57] Rozzi J C, Pfefferkorn F, Shin Y C and Incropera F P 2000 Experimental evaluation of the laser assisted machining of silicon nitride ceramics J. Manuf. Sci. Eng. 122 666–70

    [58] Ma Z L, Wang Z, Wang X Z and Yu T B 2020 Effects of laser-assisted grinding on surface integrity of zirconia ceramic Ceram. Int. 46 921–9

    [59] Sokovi′c M, Kopaˇc J, Dobrza′nski L A and Adamiak M 2004 Wear of PVD-coated solid carbide end mills in dry high-speed cutting J. Mater. Process. Technol. 157–158 422–6

    [60] Sutter G and Molinari A 2005 Analysis of the cutting force components and friction in high speed machining J. Manuf. Sci. Eng. 127 245–50

    [61] Longbottom J M and Lanham J D 2006 A review of research related to Salomon’s hypothesis on cutting speeds and temperatures Int. J. Mach. Tools Manuf. 46 1740–7

    [62] Abukhshim N A, Mativenga P T and Sheikh M A 2006 Heat generation and temperature prediction in metal cutting: a review and implications for high speed machining Int. J. Mach. Tools Manuf. 46 782–800

    [63] Abukhshim N A, Mativenga P T and Sheikh M A 2005 Investigation of heat partition in high speed turning of high strength alloy steel Int. J. Mach. Tools Manuf. 45 1687–95

    [64] Wang B, Liu Z Q and Yang Q B 2013 Investigations of yield stress, fracture toughness, and energy distribution in high speed orthogonal cutting Int. J. Mach. Tools Manuf. 73 1–8

    [65] Ye G G, Xue S F, Ma W and Dai L H 2017 Onset and evolution of discontinuously segmented chip flow in ultra-high-speed cutting Ti-6Al-4V Int. J. Adv. Manuf. Technol. 88 1161–74

    [66] Dolin?ek S, Ekinovic S and Kopac J 2004 A contribution to the understanding of chip formation mechanism in high-speed cutting of hardened steel J. Mater. Process. Technol. 157–158 485–90

    [67] Gu L Y 2018 Mechanism study on adiabatic shear fracture induced isolated segment formation during high-speed machining Proc. CIRP 77 348–50

    [68] Wang B 2016 Influence Mechanism of Material Deformation and Fracture Behavior on Chip Formation during High Speed Machining (Jinan: Shandong University) pp 23–86

    [69] Gu L Y, Wang M J and Duan C Z 2013 On adiabatic shear localized fracture during serrated chip evolution in high speed machining of hardened AISI 1045 steel Int. J. Mech. Sci. 75 288–98

    [70] Wang B and Liu Z Q 2016 Investigations on deformation and fracture behavior of workpiece material during high speed machining of 7050-T7451 aluminum alloy CIRP J. Manuf. Sci. Technol. 14 43–54

    [71] Wang B, Liu Z Q, Su G S and Ai X 2015 Brittle removal mechanism of ductile materials with ultrahigh-speed machining J. Manuf. Sci. Eng. 137 061002

    [72] Wu Y Q, Gao S, Kang R K and Huang H 2019 Deformation patterns and fracture stress of beta-phase gallium oxide single crystal obtained using compression of micro-pillars J. Mater. Sci. 54 1958–66

    [73] Wu Y Q, Huang H, Zou J, Zhang L C and Dell J M 2010 Nanoscratch-induced phase transformation of monocrystalline Si Scr. Mater. 63 847–50

    [74] Cui F Y and Vinci R P 2017 A chevron-notched bowtie micro-beam bend test for fracture toughness measurement of brittle materials Scr. Mater. 132 53–57

    [75] Wu Y Q, Huang H and Zou J 2011 Transmission electron microscopy characterization of the deformation of CdZnTe single crystals induced by nanoscratching Scr. Mater. 65 392–5

    [76] Fang F Z, Liu B and Xu Z W 2015 Nanometric cutting in a scanning electron microscope Precis. Eng. 41 145–52

    [77] Wang J H, Guo B, Zhao Q L, Zhang C Y, Zhang Q L and Zhai W J 2017 Evolution of material removal modes of sapphire under varied scratching depths Ceram. Int. 43 10353–60

    [78] Yonenaga I 2015 An overview of plasticity of Si crystals governed by dislocation motion Eng. Fract. Mech. 147 468–79

    [79] ?stlund F, Howie P R, Ghisleni R, Korte S, Leifer K, Clegg W B and Michler J 2011 Ductile-brittle transition in micropillar compression of GaAs at room temperature Phil. Mag. 91 1190–9

    [80] Soler R, Molina-Aldareguia J M, Segurado J, Llorca J, Merino R I and Orera V M 2012 Micropillar compression of LiF [1 1 1] single crystals: effect of size, ion irradiation and misorientation Int. J. Plast. 36 50–63

    [81] Huang L, Bonifacio C, Song D, van Benthem K, Mukherjee A K and Schoenung J M 2011 Investigation into the microstructure evolution caused by nanoscratch-induced room temperature deformation in M-plane sapphire Acta Mater. 59 5181–93

    [82] Lai A L, Du Z H, Gan C L and Schuh C A 2013 Shape memory and superelastic ceramics at small scales Science 341 1505–8

    [83] Guo J J, Madhav Reddy K, Hirata A, Fujita T, Gazonas G A, McCauley J W and Chen M W 2015 Sample size induced brittle-to-ductile transition of single-crystal aluminum nitride Acta Mater. 88 252–9

    [84] Korte S and Clegg W J 2011 Discussion of the dependence of the effect of size on the yield stress in hard materials studied by microcompression of MgO Phil. Mag. 91 1150–62

    [85] Liu K, Li X P and Liang S Y 2007 The mechanism of ductile chip formation in cutting of brittle materials Int. J. Adv. Manuf. Technol. 33 875–84

    [86] Akbari M, Buhl S, Leinenbach C and Wegener K 2016 A new value for Johnson Cook damage limit criterion in machining with large negative rake angle as basis for understanding of grinding J. Mater. Process. Technol. 234 58–71

    [87] Zhang X Q, Kumar A S, Rahman M and Liu K 2013 Modeling of the effect of tool edge radius on surface generation in elliptical vibration cutting Int. J. Adv. Manuf. Technol. 65 35–42

    [88] Rawat S and Mitra N 2020 Twinning, phase transformation and dislocation evolution in single crystal titanium under uniaxial strain conditions: a molecular dynamics study Comput. Mater. Sci. 172 109325

    [89] Nie A M et al 2020 Direct observation of room-temperature dislocation plasticity in diamond Matter 2 1222–32

    [90] Banerjee A et al 2018 Ultralarge elastic deformation of nanoscale diamond Science 360 300–2

    [91] Camposilvan E and Anglada M 2016 Size and plasticity effects in zirconia micropillars compression Acta Mater. 103 882–92

    [92] Chen M, Wehrs J, Sologubenko A S, Rabier J, Michler J and Wheeler J M 2020 Size-dependent plasticity and activation parameters of lithographically-produced silicon micropillars Mater. Des. 189 108506

    [93] Lawn B R 2004 Fracture and deformation in brittle solids: a perspective on the issue of scale J. Mater. Res. 19 22–29

    [94] Bifano T G, Dow T A and Scattergood R O 1991 Ductile-regime grinding: a new technology for machining brittle materials J. Eng. Ind. 113 184–9

    [95] Sun Y L, Zuo D W, Li D S, Chen R F and Wang M 2008 Mechanism of brittle-ductile transition of single silicon wafer using nanoindentation techniques Key Eng. Mater. 375–376 52–56

    [96] Choi D H, Lee J R, Kang N R, Je T J, Kim J Y and Jeon E C 2017 Study on ductile mode machining of single-crystal silicon by mechanical machining Int. J. Mach. Tools Manuf. 113 1–9

    [97] Lee S H 2012 Analysis of ductile mode and brittle transition of AFM nanomachining of silicon Int. J. Mach. Tools Manuf. 61 71–79

    [98] Meng B B, Zhang F H and Li Z P 2015 Deformation and removal characteristics in nanoscratching of 6H–SiC with Berkovich indenter Mater. Sci. Semicond. Process. 31 160–5

    [99] Li C, Zhang Q, Zhang Y, Zhang F H, Wang X and Dong G J 2020 Nanoindentation and nanoscratch tests of YAG single crystals: an investigation into mechanical properties, surface formation characteristic, and theoretical model of edge-breaking size Ceram. Int. 46 3382–93

    [100] Cai L Q, Guo X G, Gao S, Li Z Y and Kang R K 2019 Material removal mechanism and deformation characteristics of AlN ceramics under nanoscratching Ceram. Int. 45 20545–54

    [101] Zhang Z Z, Yao P, Wang J, Huang C Z, Zhu H T, Liu H L and Zou B 2020 Nanomechanical characterization of RB-SiC ceramics based on nanoindentation and modelling of the ground surface roughness Ceram. Int. 46 6243–53

    [102] Sun Y L, Zuo D W, Wang H Y, Zhu Y W and Li J 2011 Mechanism of brittle-ductile transition of a glass-ceramic rigid substrate Int. J. Miner. Metall. Mater. 18 229–33

    [103] Korte S, Barnard J S, Stearn R J and Clegg W J 2011 Deformation of silicon—insights from microcompression testing at 25–500 ?C Int. J. Plast. 27 1853–66

    [104] John C S 1975 The brittle-to-ductile transition in pre-cleaved silicon single crystals Phil. Mag. 32 1193–212

    [105] Korte S and Clegg W J 2009 Micropillar compression of ceramics at elevated temperatures Scr. Mater. 60 807–10

    [106] Li J F and Watanabe R 1999 Brittle-to-ductile transition and high-temperature deformation in ZrO2(Y2O3) and Al2O3 ceramics as evaluated by small punch test Mater. Trans. 40 508–13

    [107] Rao X S, Zhang F H, Luo X C, Ding F, Cai Y K, Sun J N and Liu H T 2019 Material removal mode and friction behaviour of RB-SiC ceramics during scratching at elevated temperatures J. Eur. Ceram. Soc. 39 3534–45

    [108] Callister W D Jr 2001 Fundamentals of Materials Science and Engineering: An Interactive E.text 5th edn (New York: Wiley) pp 10–68

    [109] Zhang S H, Legut D and Zhang R F 2019 PNADIS: an automated Peierls–Nabarro analyzer for dislocation core structure and slip resistance Comput. Phys. Commun. 240 60–73

    [110] Meyers M A 1994 Plastic deformation at high strain rates Dynamic Behavior of Materials ed M A Meyers (New York: Wiley) pp 323–81

    [111] Meyers M A, Benson D J, V?hringer O, Kad B K, Xue Q and Fu H H 2002 Constitutive description of dynamic deformation: physically-based mechanisms Mater. Sci. Eng. A 322 194–216

    [112] Wang S L and Pirouz P 2007 Mechanical properties of undoped GaAs. II: the brittle-to-ductile transition temperature Acta Mater. 55 5515–25

    [113] Yu T X and Qiu X M 2011 Impact Dynamics (Beijing: Tsinghua University Press) pp 20–36

    [114] George A and Rabier J 1987 dislocations and plasticity in semiconductors. I—Dislocation structures and dynamics Rev. Phys. Appl. 22 941–66

    [115] Pirouz P, Zhang M, Demenet J L and Hobgood H M 2002 Transition from brittleness to ductility in SiC J. Phys.: Condens. Matter 14 12929–45

    [116] Pirouz P, Zhang M, Demenet J L and Hobgood H M 2003 Yield and fracture properties of the wide band-gap semiconductor 4H–SiC J. Appl. Phys. 93 3279–90

    [117] Lauener C M, Petho L, Chen M, Xiao Y, Michler J and Wheeler J M 2018 Fracture of Silicon: influence of rate, positioning accuracy, FIB machining, and elevated temperatures on toughness measured by pillar indentation splitting Mater. Des. 142 340–9

    [118] Demenet J L, Hong M H and Pirouz P 2000 Plastic behavior of 4H–SiC single crystals deformed at low strain rates Scr. Mater. 43 865–70

    [119] Du J, Liu Z Q and Lv S Y 2014 Deformation-phase transformation coupling mechanism of white layer formation in high speed machining of FGH95 Ni-based superalloy Appl. Surf. Sci. 292 197–203

    [120] Segebade E, Kümmel D, Zanger F, Schneider J and Schulze V 2018 Influence of cutting edge asymmetry on grain refinement of Ti6Al4V Proc. CIRP 71 232–7

    [121] Madopothula U, Nimmagadda R B and Lakshmanan V 2018 Assessment of white layer in hardened AISI 52100 steel and its prediction using grinding power Mach. Sci. Technol. 22 299–319

    [122] Liao Z R, Polyakov M, Diaz O G, Axinte D, Mohanty G, Maeder X, Michler J and Hardy M 2019 Grain refinement mechanism of nickel-based superalloy by severe plastic deformation—mechanical machining case Acta Mater. 180 2–14

    [123] Liu Y C, Huang Y X, Guan M, Meng X C and Xie Y M 2020 Grain refinement in surficial cryogenic grinding Metall. Mater. Trans. A 51 3349–53

    [124] Huang T L, Shuai L F, Wakeel A, Wu G L, Hansen N and Huang X X 2018 Strengthening mechanisms and Hall-Petch stress of ultrafine grained Al-0.3%Cu Acta Mater. 156 369–78

    [125] Immanuel R J, Panigrahi S K, Racineux G and Marya S 2017 Investigation on crashworthiness of ultrafine grained A356 sheets and validation of Hall-Petch relationship at high strain-rate deformation Mater. Sci. Eng. A 701 226–36

    [126] Yu H H, Xin Y C, Wang M Y and Liu Q 2018 Hall-Petch relationship in Mg alloys: a review J. Mater. Sci. Technol. 34 248–56

    [127] Tschopp M A, Murdoch H A, Kecskes L J and Darling K A 2014 “Bulk” nanocrystalline metals: review of the current state of the art and future opportunities for copper and copper alloys JOM 66 1000–19

    [128] Suryanarayana C 2012 Mechanical behavior of emerging materials Mater. Today 15 486–98

    [129] Liu H T, Shen Y, Ma J W, Zheng P F and Zhang L 2016 Grain size dependence of uniform elongation in single-phase FCC/BCC metals J. Mater. Eng. Perform. 25 3599–605

    [130] Legros M, Elliott B R, Rittner M N, Weertman J R and Hemker K J 2000 Microsample tensile testing of nanocrystalline metals Phil. Mag. A 80 1017–26

    [131] Fang T H, Li W L, Tao N R and Lu K 2011 Revealing extraordinary intrinsic tensile plasticity in gradient nano-grained copper Science 331 1587–90

    [132] Meyers M A, Mishra A and Benson D J 2006 Mechanical properties of nanocrystalline materials Prog. Mater. Sci. 51 427–556

    [133] Brink T and Albe K 2018 From metallic glasses to nanocrystals: molecular dynamics simulations on the crossover from glass-like to grain-boundary-mediated deformation behaviour Acta Mater. 156 205–14

    [134] Jiang Z Y, Zhao J W and Xie H B 2017 Simulation of micro compression Microforming Technology ed Z Y Jiang, J W Zhao and H B Xie (New York: Academic) pp 271–88

    [135] Zhao J W, Jiang Z Y and Lee C S 2013 Enhancing impact fracture toughness and tensile properties of a microalloyed cast steel by hot forging and post-forging heat treatment processes Mater. Des. 47 227–33

    [136] Conrad H and Narayan J 2000 On the grain size softening in nanocrystalline materials Scr. Mater. 42 1025–30

    [137] Shan Z, Stach E A, Wiezorek J M K, Knapp J A, Follstaedt D M and Mao S X 2004 Grain boundary-mediated plasticity in nanocrystalline nickel Science 305 654–7

    [138] Brown M, Crawforth P, M’Saoubi R, Larsson T, Wynne B, Mantle A and Ghadbeigi H 2019 Quantitative characterization of machining-induced white layers in Ti–6Al–4V Mater. Sci. Eng. A 764 138220

    [139] Wang Q Q, Liu Z Q, Yang D and Mohsan A U H 2017 Metallurgical-based prediction of stress-temperature induced rapid heating and cooling phase transformations for high speed machining Ti-6Al-4V alloy Mater. Des. 119 208–18

    [140] Zhang F Y, Duan C Z, Sun W and Ju K 2019 Effects of cutting conditions on the microstructure and residual stress of white and dark layers in cutting hardened steel J. Mater. Process. Technol. 266 599–611

    [141] Xu X, Zhang J, Outeiro J, Xu B B and Zhao W H 2020 Multiscale simulation of grain refinement induced by dynamic recrystallization of Ti6Al4V alloy during high speed machining J. Mater. Process. Technol. 286 116834

    [142] Zhang J, Xu X, Outeiro J, Liu H G and Zhao W H 2020 Simulation of grain refinement induced by high-speed machining of OFHC copper using cellular automata method J. Manuf. Sci. Eng. 142 91006

    [143] Liu H G, Zhang J, Xu B B, Xu X and Zhao W H 2020 Prediction of microstructure gradient distribution in machined surface induced by high speed machining through a coupled FE and CA approach Mater. Des. 196 109133

    [144] Li C F, Liu D H, Yu H P and Ji Z B 2009 Research on formability of 5052 aluminum alloy sheet in a quasi-static–dynamic tensile process Int. J. Mach. Tools Manuf. 49 117–24

    [145] Tiamiyu A A, Eskandari M, Nezakat M, Wang X, Szpunar J A and Odeshi A G 2016 A comparative study of the compressive behaviour of AISI 321 austenitic stainless steel under quasi-static and dynamic shock loading Mater. Des. 112 309–19

    [146] List G, Sutter G, Bi X F, Molinari A and Bouthiche A 2013 Strain, strain rate and velocity fields determination at very high cutting speed J. Mater. Process. Technol. 213 693–9

    [147] Leopold J, Schmidt G and Günther H 2003 Metal cutting-investigated with a new 3D-visioplasticity method Proc. 6th CIRP Int. Workshop on Modeling of Machining Operations (Hamilton: McMaster University)

    [148] Wang B, Liu Z Q, Su G S, Song Q H and Ai X 2015 Investigations of critical cutting speed and ductile-to-brittle transition mechanism for workpiece material in ultra-high speed machining Int. J. Mech. Sci. 104 44–59

    [149] Sakui S 1979 Two aspects of impact tests on metals Trans. Japan Inst. Met. 20 279–84

    [150] Wang L L 2007 Foundations of Stress Waves (Amsterdam: Elsevier) pp 25–68

    [151] Abrate S 2011 Impact dynamics Impact Engineering of Composite Structures ed S Abrate (Berlin: Springer) pp 71–96

    [152] Sen S, Banerjee B and Shaw A 2020 Taylor impact test revisited: determination of plasticity parameters for metals at high strain rate Int. J. Solids Struct. 193–194 357–74

    [153] Kumagai T, Sakai S, Hata H and Yamada H 2020 A modified ‘Hawkyard’s method to predict the deformation of projectiles in Taylor impact tests Int. J. Impact. Eng. 138 103468

    [154] Rakv?g K G, B?rvik T, Westermann I and Hopperstad O S 2013 An experimental study on the deformation and fracture modes of steel projectiles during impact Mater. Des. 51 242–56

    [155] Wei G, Zhang W, Huang W, Ye N, Gao Y B and Ni Y G 2014 Effect of strength and ductility on deformation and fracture of three kinds of aluminum alloys during Taylor tests Int. J. Impact. Eng. 73 75–90

    [156] Chen X W, Chen G and Zhang F J 2008 Deformation and failure modes of soft steel projectiles impacting harder steel targets at increasing velocity Exp. Mech. 48 335–54

    [157] Woodward R L, O’Donnell R G and Flockhart C J 1992 Failure mechanisms in impacting penetrators J. Mater. Sci. 27 6411–6

    [158] Chen Z, Bong H J, Li D Y and Wagoner R H 2016 The elastic-plastic transition of metals Int. J. Plast. 83 178–201

    [159] Borodin E N, Gruzdkov A A, Mayer A E and Selyutina N S 2018 Physical nature of strain rate sensitivity of metals and alloys at high strain rates J. Phys.: Conf. Ser. 991 012012

    [160] Regazzoni G, Kocks U F and Follansbee P S 1987 Dislocation kinetics at high strain rates Acta Metall. 35 2865–75

    [161] Kim K H, Watanabe M, Kawakita J and Kuroda S 2008 Grain refinement in a single titanium powder particle impacted at high velocity Scr. Mater. 59 768–71

    [162] Lemiale V, Estrin Y, Kim H S and O’Donnell R 2011 Forming nanocrystalline structures in metal particle impact Metall. Mater. Trans. A 42 3006–12

    [163] Nie A M et al 2019 Approaching diamond’s theoretical elasticity and strength limits Nat. Commun. 10 5533

    [164] Wheeler J M, Niederberger C, Tessarek C, Christiansen S and Michler J 2013 Extraction of plasticity parameters of GaN with high temperature, in situ micro-compression Int. J. Plast. 40 140–51

    [165] Gagliardi J J, Kim D, Sokol J J, Zazzera L A, Romero V D, Atkinson M R, Nabulsi F and Zhang H 2013 A case for 2-body material removal in prime LED sapphire substrate lapping and polishing J. Manuf. Process. 15 348–54

    [166] Lu J, Luo Q F, Xu X P, Huang H and Jiang F 2019 Removal mechanism of 4H- and 6H–SiC substrates (0001 and 000ˉ1) in mechanical planarization machining Proc. Inst. Mech. Eng. B 233 69–76

    [167] Vora H D and Dahotre N B 2013 Laser machining of structural ceramics Am. Ceram. Soc. Bull. 92 29–30

    [168] Jeon Y and Lee C M 2012 Current research trend on laser assisted machining Int. J. Precis. Eng. Manuf. 13 311–7

    [169] Song Q H, Ai X and Tang W X 2011 Prediction of simultaneous dynamic stability limit of time–variable parameters system in thin-walled workpiece high-speed milling processes Int. J. Adv. Manuf. Technol. 55 883–9

    [170] Al-Ghamdi K A and Iqbal A 2015 A sustainability comparison between conventional and high-speed machining J. Clean. Prod. 108 192–206

    [171] Warsi S S, Jaffery S H I, Ahmad R, Khan M, Agha M H and Ali L 2018 Development and analysis of energy consumption map for high-speed machining of Al 6061-T6 alloy Int. J. Adv. Manuf. Technol. 96 91–102

    [172] Liu Z Q, Wan Y and Liu J G 2004 The impact of tool materials and cutting parameters on surface roughness in high-speed face-milling Key Eng. Mater. 259–260 462–5

    [173] Liu K and Melkote S N 2006 Effect of plastic side flow on surface roughness in micro-turning process Int. J. Mach. Tools Manuf. 46 1778–85

    Tao Zhang, Feng Jiang, Hui Huang, Jing Lu, Yueqin Wu, Zhengyi Jiang, Xipeng Xu. Towards understanding the brittle–ductile transition in the extreme manufacturing[J]. International Journal of Extreme Manufacturing, 2021, 3(2): 22001
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