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應變速率對電沉積納米晶銅拉伸性能的影響

Strain rate effects on tensile properties of electrodeposited nanocrystalline Cu

  • 摘要: 采用直流電沉積工藝,制備了平均晶粒尺寸為56nm的致密納米晶銅.室溫下進行單向拉伸實驗,發現納米晶銅的強度和韌性均隨應變速率的升高而增大,特別是韌性的速率敏感十分顯著.應變速率由1.04×10-5s-1升至1.04s-1時,斷裂應變由23.2%增至39.4%,同時抗拉強度由309MPa增至451MPa.這一現象可歸因于兩個方面:首先,納米晶銅的應變硬化行為隨應變速率的升高而增大,從而使其均勻變形階段的應變增加;其次,高應變速率下納米晶銅頸縮時發生晶粒轉動,這有助于其失穩階段的應變增加.

     

    Abstract: Fully dense nanocrystalline Cu with an average grain size of 56 nm was synthesized by a direct-current electrodeposition technique. Tensile tests performed at room temperature indicated that both the strength and the ductility of the nanocrystalline Cu increased by the increment of strain rate, especially a pronounced strain rate dependence of tensile ductility was observed. As the strain rate was raised from 1.04×10-5s-1 to 1.04 s-1, the fracture strain increased from 23.2% to 39.4%, and the ultimate tensile strength increased from 309 MPa to 451 MPa. Two reasons might be responsible for this phenomenon. First, the strain hardening behavior increased with increasing strain rate, resulting in an enhanced uniform elongation. Second, the collective grain-rotations were revealed when the nanocrystalline Cu necked at a higher strain rate, which contributed to the increase of strain after instability.

     

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