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第 6 期                       刘明, 等: 利用球形压头研究聚碳酸酯的微米划痕性能                                       901

            [16]  Liu Ming, Li Shuo, Gao Chenghui. Study of failure mechanism of  j.wear.2012.05.005.
                 TiN coatings by micro-scratch testing[J]. Acta Metrologica Sinica,  [29]  Wong  M,  Moyse  A,  Lee  F,  et  al.  Study  of  surface  damage  of
                 2020, 41(6): 696–703 (in Chinese) [刘明, 李烁, 高诚辉. 利用微米  polypropylene  under  progressive  loading[J].  Journal  of  Materials
                 划 痕 研 究 TiN涂 层 的 失 效 机 理 [J].  计 量 学 报 ,  2020,  41(6):  Science,  2004,  39(10):  3293–3308.  doi:  10.1023/B:JMSC.
                 696–703]. doi: 10.3969/j.issn.1000-1158.2020.06.11.  0000026930.12462.3d.
            [17]  Arribas A, Bermudez M D, Brostow W, et al. Scratch resistance of a  [30]  Hadal  R,  Dasari  A,  Rohrmann  J,  et  al.  Susceptibility  to  scratch
                 polycarbonate+organoclay nanohybrid[J]. Express Polymer Letters,  surface  damage  of  wollastonite-  and  talc-containing  polypropylene
                 2009, 3(10): 621–629. doi: 10.3144/expresspolymlett.2009.78.  micrometric  composites[J].  Materials  Science  and  Engineering:  A,
            [18]  Damarla  G.  Determination  of  wear  in  polymers  using  multiple  2004, 380(1–2): 326–339. doi: 10.1016/j.msea.2004.03.058.
                 scratch test[D]. Denton: University of North Texas, 2004.  [31]  Sinha  S  K,  Lim  D  B  J.  Effects  of  normal  load  on  single-pass
            [19]  Bhatt  B,  Murthy  T  S  R  C,  Singh  K,  et  al.  Scratch  testing  of  hot-  scratching of polymer surfaces[J]. Wear, 2006, 260(7–8): 751–765.
                                                                   doi: 10.1016/j.wear.2005.04.018.
                 pressed  monolithic  chromium  diboride  (CrB 2 )  and  CrB 2 +MoSi 2
                 composite[J].  Journal  of  Materials  Engineering  and  Performance,  [32]  Geng  Yanquan,  Yan  Yongda,  He  Yang,  et  al.  Investigation  on
                 2017, 26(10): 5043–5055. doi: 10.1007/s11665-017-2922-1.  friction  behavior  and  processing  depth  prediction  of  polymer  in
            [20]  Gao Chenghui, Liu Ming. Effect of sample tilt on measurement of  nanoscale  using  AFM  probe-based  nanoscratching  method[J].
                 friction coefficient by constant-load scratch testing of copper with a  Tribology  International,  2017,  114:  33–41.  doi:  10.1016/j.triboint.
                 spherical  indenter[J].  Journal  of  Testing  and  Evaluation,  2020,  2017.04.009.
                 48(2): 20180719. doi: 10.1520/jte20180719.    [33]  Zhang G, Zhang C, Nardin P, et al. Effects of sliding velocity and
            [21]  McAdams S D, Tsui T Y, Oliver W C, et al. Effects of interlayers on  applied  load  on  the  tribological  mechanism  of  amorphous  poly-
                 the scratch adhesion performance of ultra-thin films of copper and  ether-ether-ketone (PEEK)[J]. Tribology International, 2008, 41(2):
                 gold  on  silicon  substrates[J].  MRS  Online  Proceedings  Library,  79–86. doi: 10.1016/j.triboint.2007.05.002.
                 1994, 356(1): 809–814. doi: 10.1557/PROC-356-809.  [34]  Carrión-Vilches F J, González-Vivas A, Martínez-Mateo I J, et al.
            [22]  Gao Chenghui, Liu Ming. Effects of normal load on the coefficient  Study  of  the  abrasion  resistance  under  scratching  of
                 of  friction  by  microscratch  test  of  copper  with  a  spherical  polybutylenetereftalate-glass   fiber   composites[J].   Tribology
                 indenter[J].  Tribology  Letters,  2018,  67(1):  1–12.  doi:  10.1007/  International,  2015,  92:  365–378.  doi:  10.1016/j.triboint.2015.07.
                 s11249-018-1124-9.                                004.
            [23]  Liu  Ming,  Yan  Fuwen,  Gao  Chenghui.  Effect  of  normal  load  on  [35]  Wong  J  S  S,  Sue  H  J,  Zeng  Kaiyang,  et  al.  Scratch  damage  of
                 microscratch test of copper[J]. Acta Metrologica Sinica, 2020, 41(9):  polymers  in  nanoscale[J].  Acta  Materialia,  2004,  52(2):  431–443.
                 1095–1101 (in Chinese) [刘明, 严富文, 高诚辉. 法向载荷对紫铜     doi: 10.1016/j.actamat.2003.09.028.
                 的微米划痕测试的影响[J]. 计量学报, 2020, 41(9): 1095–1101].  [36]  Bora M Ö. The influence of heat treatment on scratch behavior of
                 doi: 10.3969/j.issn.1000-1158.2020.09.10.         polymethylmethacrylate (PMMA)[J]. Tribology International, 2014,
            [24]  Lafaye S, Gauthier C, Schirrer R. Analysis of the apparent friction of  78: 75–83. doi: 10.1016/j.triboint.2014.04.030.
                 polymeric  surfaces[J].  Journal  of  Materials  Science,  2006,  41(19):  [37]  Wong  M,  Lim  G  T,  Moyse  A,  et  al.  A  new  test  methodology  for
                 6441–6452. doi: 10.1007/s10853-006-0710-7.        evaluating  scratch  resistance  of  polymers[J].  Wear,  2004,
            [25]  Pelletier  H,  Gauthier  C,  Schirrer  R.  Wear  simulation  of  polymer  256(11–12): 1214–1227. doi: 10.1016/j.wear.2003.10.027.
                 using multiscratch test procedure[J]. Tribology Letters, 2010, 37(3):  [38]  Pereira J I, Tressia G, Machado P C, et al. Scratch test of pearlitic
                 507–515. doi: 10.1007/s11249-009-9546-z.          steels: Influence of normal load and number of passes on the sub-
            [26]  Brostow  W,  Broza  G,  Datashvili  T,  et  al.  Poly(butyl  superficial  layer  formation[J].  Tribology  International,  2018,  128:
                 terephthalate)/oxytetramethylene+oxidized   carbon   nanotubes  337–348. doi: 10.1016/j.triboint.2018.07.040.
                 hybrids:  Mechanical  and  tribological  behavior[J].  Journal  of  [39]  Amitay-Sadovsky E, Wagner H D. Evaluation of Young's modulus
                 Materials  Research,  2012,  27(14):  1815–1823.  doi:  10.1557/jmr.  of polymers from Knoop microindentation tests[J]. Polymer, 1998,
                 2012.116.                                         39(11): 2387–2390. doi: 10.1016/S0032-3861(97)00550-8.
            [27]  Misra R D K, Hadal R, Duncan S J. Surface damage behavior during  [40]  West  G  H,  Senior  J  M.  Frictional  properties  of  polyethylene[J].
                 scratch  deformation  of  mineral  reinforced  polymer  composites[J].  Wear, 1972, 19(1): 37–52. doi: 10.1016/0043-1648(72)90440-1.
                 Acta  Materialia,  2004,  52(14):  4363–4376.  doi:  10.1016/j.actamat.  [41]  Sumitomo  T,  Huang  Han,  Zhou  Libo.  Deformation  and  material
                 2004.06.003.                                      removal  in  a  nanoscale  multi-layer  thin  film  solar  panel  using
            [28]  Kurkcu P, Andena L, Pavan A. An experimental investigation of the  nanoscratch[J].  International  Journal  of  Machine  Tools  and
                 scratch behaviour of polymers: 1. Influence of rate-dependent bulk  Manufacture,  2011,  51(3):  182–189.  doi:  10.1016/j.ijmachtools.
                 mechanical properties[J]. wear, 2012, 290–291: 86–93. doi: 10.1016/  2010.11.012.
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