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Residual stress evolution with compressive plastic deformation in 6061A1-15 vol. percent SiC_w composites as studied by neutron diffraction

机译:在6061A1-15 vol中,残余应力随着压缩塑性变形而演化。中子衍射研究的SiC_w复合材料百分比

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The evolution of the residual stress (RS) with compressive plastic deformation of several discontinuously reinforced 6061 Al-15 vol. percent SiC_w metal-matrix composites (MMCs) has been investigated. The composites were obtained by a powder metallurgical route and heat treated to a fully hardened, T6 condition. The RS was determined from neutron diffraction. The results show that deformation relaxes the hydrostatic component of the macroscopic RS (M-RS) progressively until a minimum is reached, around 2-5 percent plastic strain. Similarly, the hydrostatic component of the microscopic RS (m-RS) relaxes rapidly with deformation. Relaxation continues with further strain and at approx = 15 percent this m-RS component disappears. The deviatoric components of both the M-RS and the m-RS, however, remain unaltered with increasing plastic strain. The increase of the full width at the half maximum (FWHM) of the Al diffraction peaks with strain reveals the increased lattice distortion and microscopic RS gradient around the reinforcing particles. The linear correlation found between the FWHM of the two phases suggests also the activation of a lattice distortion transfer mechanism from the Al phase to the SiC phase.
机译:残余应力(RS)的演变与几个不连续增强的6061 Al-15 vol的压缩塑性变形。对SiC_w金属基复合材料(MMC)的百分比进行了研究。通过粉末冶金路线获得复合材料,并将其热处理至完全硬化的T6条件。从中子衍射确定RS。结果表明,变形逐渐放松了宏观RS(M-RS)的静水压力,直至达到最小值,塑性应变约为2%至5%。类似地,微观RS(m-RS)的静液压分量会随着变形而迅速松弛。随着进一步的应变,松弛继续进行,并且在大约= 15%时,该m-RS分量消失。然而,M-RS和m-RS的偏斜分量都不会随着塑性应变的增加而改变。 Al衍射峰的半峰全宽(FWHM)随应变的增加显示出增强颗粒周围晶格畸变和微观RS梯度增加。在两相的FWHM之间发现的线性相关性还暗示了从Al相到SiC相的晶格畸变传递机制的激活。

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