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Effect of low-temperature plastic deformation of bcc-lattice metals on a stress-strain state at the crack-tip

机译:bcc晶格金属的低温塑性变形对裂纹尖端应力应变状态的影响

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摘要

We describe plastic strain at a crack-tip with the use of a physical criterion of creep in a complex stressed state proposed earlier. As distinct from von Mises criterion, the above criterion allows consideration of low-temperature deformation features of bcc metals. Simulation of loading was performed on a center-cracked plate specimen (400×160 mm) in plane deformation. It was shown that a decrease in shear resistance under the action of normal tensile stresses induced by low-temperature plastic deformation of bcc metals and alloys affects parameters of a stress-strain state at a crack-tip. This gives rise to an extension of the local plastic strain region, an enhancement of maximum strain at the crack-tip, and a change in the ratio between normal and tangential stresses in the plastic-flow region. Application of a physical criterion of creep is shown to be reasonable for stress-strain state calculations by the finite-element method in cracked bcc metals and alloys at low temperatures.
机译:我们使用较早提出的复杂应力状态下的蠕变物理准则来描述裂纹尖端处的塑性应变。与冯·米塞斯(von Mises)准则不同的是,上述准则允许考虑bcc金属的低温变形特征。对中心开裂的板状试样(400×160 mm)的平面变形进行了载荷模拟。结果表明,在bcc金属和合金的低温塑性变形引起的正常拉伸应力的作用下,抗剪强度的降低会影响裂纹尖端的应力应变状态参数。这导致局部塑性应变区域的扩展,裂纹尖端处最大应变的增强以及塑性流动区域中法向应力和切向应力之比的变化。对于有限的方法,在低温下裂纹的密件抄送金属和合金中,采用有限元方法计算应力蠕变状态的物理准则是合理的。

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