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Continuum damage mechanics for sintered powder metals

Continuum damage mechanics for sintered powder metals
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摘要 Sintered metals are characterized by the high porosity(8%)and voids/micro-cracks in microns.Inelastic behavior of the materials is coupled with micro-crack propagation and coalescence of open voids.In the present work the damage evolution of the sintered iron under multi-axial monotonic loading conditions was investigated experimentally and computationally.The tests indicated that damage of the sintered iron initiated already at a stress level much lower than the macroscopic yield stress.The damage process can be divided into the stress-dominated elastic damage and the plastic damage described by the plastic strain.Based on the uniaxial tensile tests an elastic-plastic continuum damage model was developed which predicts both elastic damage and plastic damage in the sintered iron under general multi-axial monotonic loading conditions.Computational predictions agree with experiments with different multi-axial loading paths.A phenomenological continuum damage model for the sintered metal is developed based on the experimental observations to predict the inelastic behavior and damage process to failure under multi-axial loading conditions.The proposed damage model is experimentally verified under different loading conditions. Sintered metals are characterized by the high porosity (≥ 8%) and voids/micro-cracks in microns. Inelastic behavior of the materials is coupled with micro-crack propagation and coalescence of open voids. In the present work the damage evolution of the sintered iron under multi-axial monotonic loading conditions was investigated experimentally and computationally. The tests indicated that damage of the sintered iron initiated already at a stress level much lower than the macroscopic yield stress. The damage process can be divided into the stress-dominated elastic damage and the plastic damage described by the plastic strain. Based on the uniaxial tensile tests an elastic-plastic continuum damage model was developed which predicts both elastic damage and plastic damage in the sintered iron under general multi-axial monotonic loading conditions. Computational predictions agree with experiments with different multi-axial loading paths. A phenomenological continuum damage model for the sintered metal is developed based on the experimental observations to predict the inelastic behavior and damage process to failure under multi-axial loading conditions. The proposed damage model is experimentally verified under different loading conditions.
出处 《Science China(Physics,Mechanics & Astronomy)》 SCIE EI CAS CSCD 2015年第1期95-106,共12页 中国科学:物理学、力学、天文学(英文版)
基金 supported by the National Natural Science Foundation of China(Grant No.51175041)
关键词 sintered metal porous material damage evolution multi-axial damage continuum damage model 烧结金属粉末 连续损伤力学 实验观测 弹性行为 加载条件 屈服应力 弹性损伤 损伤模型
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参考文献34

  • 1Sonsino C M. Fatigue design principles for sintered steel components. J Strain Anal Eng Des, 2006, 41(7): 497-555.
  • 2Sonsino C M. Zukunftsperspektiven für die Pulvermetallurgie durch die Betriebsfestigkeit. Materialwissenschaft Werkstofftechnik, 2006,37(3): 240-248.
  • 3Schneider M, Yuan H. Experimental and computational investigation of cyclic mechanical behavior of sintered iron. Comput Mater Sci, 2012,57: 48-58.
  • 4Zafari A, Beiss P. Effect of tensile mean stresses on fatigue strength of fe-cu-c steels in as-sintered and heat treated conditions. Powder Metall Prog, 2008, 8(3): 200-209.
  • 5Chen J, Yuan H, Schneider M. Investigation of micromechanical deformation mechanisms in sinter powder metals. Adv Mater Res, 2013,668: 351-355.
  • 6Carabajar S, Verdu C, Fougeres R. Damage mechanisms of a nickel alloyed sintered steel during tensile tests. Mater Sci Eng A, 1997, 232(1-2): 80-87.
  • 7Kabatova M, Dudrova E, Wronski S. Microcrack nucleation, growth, coalescence and propagation in the fatigue failure of a powder metallurgy steel. Fatigue Fracture Eng Mater Struct, 2009, 32(3): 214-222.
  • 8Straffelini G, Molinari A. Evolution of tensile damage in porous iron. Mater Sci Eng A, 2002, 334(1-2): 96-103.
  • 9Chawla N, Jester B, Vonk D. Bauschinger effect in porous sintered steels. Mater Sci Eng A, 2003, 346(1-2): 266-272.
  • 10Chawla N, Deng X. Microstructure and mechanical behavior of porous sintered steels. Mater Sci Eng A, 2005, 390(1-2): 98-112.

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