Identifying the stress–strain curve of materials by microimpact testing. Application on pure copper, pure iron, and aluminum alloy 6061-T651

被引:0
作者
Halim Al Baida
Cécile Langlade
Guillaume Kermouche
Ricardo Rafael Ambriz
机构
[1] Université Bourgogne Franche-Comté,UTBM
[2] Ecole des Mines de Saint-Etienne,Centre SMS, LGF UMR 5307 CNRS
[3] Instituto Politécnico Nacional CIITEC-IPN,Cerrada de Cecati S/N
来源
Journal of Materials Research | 2015年 / 30卷
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摘要
The mechanical response of materials under repeated impact loading is of primary importance to model different types of surface mechanical treatments, such as shot peening. A reverse identification method of stress–strain curves using repeated impact has been developed by Kermouche et al. [Kermouche et al., Mater. Sci. Eng., A569, 71–77 (2013)] and later improved by Al Baida et al. [Al Baida et al., Mech. Mater.86, 11–20 (2015)]. This study deals with the experimental validation of this method on three materials: a home-made pure iron, a commercially pure copper, and an industrial aluminum alloy. An approximate method derived from cone indentation theory to check the reverse method reliability. Balls of different sizes have been used to cover a wide enough range of strain. The results are also compared with macroscopic compression and traction tests. The effect of the strain rate on the stress–strain curve is discussed. The conclusion section highlights the rapidity and the ease of use of the reverse identification method.
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页码:2222 / 2230
页数:8
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  • [1] Abramov VO(1998)Surface hardening of metals by ultrasonically accelerated small metal balls Ultrasonics 36 1013-1019
  • [2] Abramov OV(2010)Experimental study of shot peening and stress peen forming J. Mater. Process. Technol. 210 2089-2102
  • [3] Sommer F(2015)A combined DEM–FEM numerical method for shot peening parameter optimization Adv. Eng. Softw. 79 13-26
  • [4] Gradov OM(2011)Numerical modelling of shot peening process and corresponding products: Residual stress, surface roughness and cold work prediction Surf. Coat. Technol. 205 4480-4494
  • [5] Smirnov OM(2002)Material behaviour in conditions similar to metal cutting: Flow stress in the primary shear zone J. Mater. Process. Technol. 122 322-330
  • [6] Miao HY(2006)Evaluation of the stress–strain curve of metallic materials by spherical indentation Int. J. Solids Struct. 43 2441-2459
  • [7] Demers D(2009)Experimental evaluation of the stress–strain curve by continuous indentation using different indenter shapes Mater. Sci. Eng., A 501 140-145
  • [8] Larose S(2008)Use of spherical indentation data changes to materials characterization based on a new multiple cyclic loading protocol Mater. Sci. Eng., A 488 608-622
  • [9] Perron C(2013)Local identification of the stress–strain curves of metals at a high strain rate using repeated micro-impact testing Mater. Sci. Eng., A 569 71-77
  • [10] Lévesque M(2013)Damage phenomena of thin hard coatings submitted to repeated impacts: Influence of the substrate and film properties Mater. Sci. Eng., A 560 296-305