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Microsample tensile testing of nanocrystalline metals

机译:纳米晶金属的微样品拉伸试验

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A novel non-contact strain measurement technique has been employed to measure the tensile properties of extremely small 'microsamples' of pure high-density ultrafine-grained Al (ufg-Al) nanocrystalline Cu (n-Cu) and nanocrystalline Ni (n-Ni). These microsample tests confirmed the absence of Young's modulus variations for metals with grain sizes approaching 25 nm. Significant strength enhancements were associated with the nanocrystalline specimens; the tensile stresses achieved in these microsample tests were measured to be an appreciable fraction of the theoretical shear strength for these metals. The ufg-Al samples (diameter, 250 nm) exhibited extensive plasticity while deformation in the n-Ni (diameter, 28 nm) remained almost entirely elastic up to failure at 1500 MPa. The n-Cu samples were found to have a multiscale grain structure that produced an attractive balance of strength and ductility. Transmission electron microscopy investigations of deformed n-Ni failed to produce any evidence of dislocation activity. In the absence of dislocation motion, the tensile strength of truly nanocrystalline metals is remarkably high but currently dominated by intrinsic porosity and mesoscale microcrack coalescence. [References: 37]
机译:一种新颖的非接触应变测量技术已被用于测量极高的“微样品”的拉伸性能,这些样品是纯高密度超细晶粒的Al(ufg-Al)纳米晶Cu(n-Cu)和纳米晶Ni(n-Ni )。这些微量样品测试证实了晶粒尺寸接近25 nm的金属不存在杨氏模量变化。纳米晶体样品的强度显着提高。在这些微量样品测试中获得的拉应力被测量为这些金属的理论剪切强度的相当一部分。 ufg-Al样品(直径250 nm)表现出广泛的可塑性,而n-Ni(直径28 nm)中的变形在1500 MPa直至破坏之前几乎保持完全弹性。发现n-Cu样品具有多尺度晶粒结构,在强度和延展性之间产生了引人注目的平衡。变形n-Ni的透射电子显微镜研究未能提供位错活性的任何证据。在没有位错运动的情况下,真正的纳米晶体金属的抗拉强度非常高,但目前以固有的孔隙率和中尺度微裂纹聚结为主导。 [参考:37]

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