期刊文献+

纳米压痕过程的三维有限元数值试验研究 被引量:31

3D FINITE ELEMENT SIMULATION OF THE NANOINDENTATION PROCESS
在线阅读 下载PDF
导出
摘要 采用有限元方法模拟了纳米压痕仪的加、卸载过程,三维有限元模型考虑了纳米压痕仪的标准Berkovich压头.介绍了有限元模型的几何参数、边界条件、材料特性与加载方式,讨论了摩擦、滑动机制、试件模型的大小对计算结果的影响,进行了计算绐果与标准试样实验结果的比较,证实了模拟的可靠性.在此基础上,重点研究了压头尖端曲率半径对纳米压痕实验数据的影响.对比分析了尖端曲率半径r=0与r=100nm两种压头的材料压痕载荷一位移曲线.结果表明,当压头尖端曲率半径r≠0时,基于经典的均匀连续介质力学本构理论、传统的实验手段与数据处理方法,压痕硬度值会随着压痕深度的减小而升高. In recent years, micro-scale indentation, especially nanoindentation has become a standard test to measure mechanical properties of various new type surface materials. However, numerical simulation by finite element method (FEM) to simulate the micro-scale indentation process plays an important role as well in explaining experimental phenomena and obtaining more accurate parameters of material surface mechanical properties. Bhattacharya, Nix, Laursen and Sino developed the researd in this field earlier. In order to save computation cost, Vickers indenter and Berkovich indenter as a standard indenter of microhardness and nanoindentation equipment with geometrical shapes of regular four-sided pyramid and triangular pyramid were substituted by conic indenter and thus the 2D axial symmetrical element model was adopted to simulate the micro-indentation process is their study. As a mather of fact, the micro-scale indenters are not axisymmetric due to unevenness of all material in micro-scale. These properties could not be presented in 2D cone model. In this paper 3D finite element method is used to explore the mechanics of the nanoindentation process for Berkovich indenter. The mesh and boundary condition of this model and the material property of sample in FE simulation are introduced. The tests of standard sample are comducted for FEA. The influence of friction, slide -and sample size on the results is discussed. Based on the 3D finite element simulation, the effects of tip radius on nano-indenter are investigated. The nanoindentation results obtained by ideal Berkovich indenter and blunt tip indenter are comparatively analyzed, indicating that the measured hardness by using of blunt tip indenter decrease with the depth of indentation, even for the materials complying with traditional homogeneous continuum constitutive relation under regular testing and evaluating condition. The effect of tip radius on nanoindentation is an explanation other than the strain graduate effect.
出处 《力学学报》 EI CSCD 北大核心 2003年第3期257-264,共8页 Chinese Journal of Theoretical and Applied Mechanics
基金 中国科学院KGCX1-11项目 中国博士后基金资助项目.
关键词 压痕尺度效应 纳米压痕 有限元模拟 硬度 边界条件 滑动机制 材料力学 材料表面处理技术 nanoindentation, finite element simulation, hardness, indentation size effect
  • 相关文献

参考文献18

  • 1Tabor D. Indenteation hardness: fifty years on a personal view. Philo Mag A, 1996, 74(5): 1207-1212.
  • 2Oliver WC, Pharr GM. An improved technique for determining hardness and elastic modulus using load and displacement sensing indentation experiments. J Mater Res,1992, 7(6): 1546-1583.
  • 3Cheng Che-min, Cheng Yang-tse. On the initial unloading slope in indentation of elastic-plastic solids by an indenter with an axisymmetric smooth profile. Appl Phys Lett,1997, 71(18): 2623-2625.
  • 4Pethica JB, Hutchings R, Oliver WC. Hardness measurement at penetration depths as small as 20nm. Philo Mag A, 1983, 48:593.
  • 5Xu KW, Hou GL, et al. Prediction of nanoindentation hardness profile from a load-displacement curve. J Mater Res, 1998, 13(12): 3519-3526.
  • 6Iost A, Bigot R. Indentation size effort: reality or artefact.J Mater Sci, 1996, 31:3573-3577.
  • 7Begley MR, Hutchinson JW. The mechanics of size dependent indentation. J Mech Phvs Solids, 1998, 46(10):2049-2068.
  • 8Shu JY, Fleck NA. The prediction of a size effact in microindenteation, lnt J Solids and Structures, 1998, 35(13):1363-1383.
  • 9Ma Q, Clarke R. Size dependent hardness of silver single crystals. J Mater Res, 1995, 10(4): 853-863.
  • 10Cheng Yang-tse, Cheng Che-min. Scaling relationships in concial indentation of elastic-perfectly plastic solids. Inter J of Solids and Structures, 1999, 36:1231-1243.

同被引文献292

引证文献31

二级引证文献81

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部