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Cyclic plasticity of single crystal nickel oriented for single slip

机译:单晶镍取向单晶的循环可塑性

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The cyclic deformation behavior of single crystal nickel was investigated by performing uniaxial fully reversed constant plastic strain amplitude fatigue experiments at plastic shear strain amplitudes ranging from 1.1 × 10~(-4) to 8.8 × 10~(-3). Digitally acquired stress-strain hysteresis loops were used to calculate friction and back stresses and to relate the shapes of the loops to the evolving dislocation structures and magnetomechanical effects. The results indicate that the cyclic stress-strain curve exhibits a plateau of 50 MPa between plastic strain amplitudes of 1 × 10~(-4) and 7 × 10~(-3). Saturation friction stress, calculated using the Cottrell method, is reasonably constant over the entire range of plastic strain amplitudes at a value of 15 MPa. The back stress is 35 MPa within the plateau and increases to 48 MPa at the highest strain amplitude. When cycled at low plastic strain amplitude, magnetomechanical effects account for a significant portion of the measured inelastic strain.
机译:通过在1.1×10〜(-4)至8.8×10〜(-3)的塑性剪切应变幅度下进行单轴完全反向恒定塑性应变幅度疲劳试验,研究了单晶镍的循环变形行为。数字获取的应力-应变磁滞回线用于计算摩擦力和背应力,并将回线的形状与不断发展的位错结构和磁机械效应相关联。结果表明,在1×10〜(-4)和7×10〜(-3)的塑性应变幅度之间,循环应力-应变曲线呈现出50 MPa的平稳期。使用Cottrell方法计算出的饱和摩擦应力在整个塑性应变幅度范围内均保持恒定,值为15 MPa。平台内的背应力为35 MPa,在最高应变幅度下会增加到48 MPa。当以低塑性应变幅度循环时,磁机械效应占所测得的非弹性应变的很大一部分。

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