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High temperature deformation behavior of Inconel 718 at temperatures reaching into the mushy zone.

机译:Inconel 718在进入糊状区的温度下的高温变形行为。

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The mechanical response of Inconel 718 with various microstructures (cast directionally-solidified, cast random dendritic, and equiaxed non-dendritic) in the solid and semi-solid state has been characterized. The activation energy for plastic flow in the solid phase was in good agreement with the activation energies for self diffusion and creep in pure nickel and pure iron. When the dendrites were aligned along the compression axis, the directionally solidified materials exhibited a similar activation energy for plastic flow, even at temperatures within the mushy zone. However, in samples containing either the random dendritic or equiaxed non-dendritic microstructures in the semi-solid state, the deformation exhibited a greater dependence on temperature. A simple analysis indicates that this greater temperature dependence is simply a consequence of the transition from plastic flow in the solid to viscous flow in the liquid as the fraction liquid increases (i.e., lubricated flow of the grains due to intergranular liquid in the mushy zone).; The deformation behavior is compared against a number of investigations from the literature and a general constitutive equation relating peak now stress versus temperature compensated strain rate is presented. The temperature compensated strain rate is often termed the Zener-Holloman parameter, Z=e&d2;exp &parl0;QRT&parr0; , where e&d2; is the strain rate, T is the temperature, R is the gas constant, and Q is the activation energy for plastic flow. The results obtained in this investigation for solid state deformation were in good agreement with published literature values and extended the experimental range to higher temperatures and lower strain rates.
机译:表征了具有固态和半固态状态的各种微观结构(铸型定向凝固,铸造随机树枝状和等轴非树枝状)的Inconel 718的机械响应。固相中塑性流动的活化能与纯镍和纯铁中自我扩散和蠕变的活化能非常吻合。当树枝状晶体沿着压缩轴排列时,即使在糊状区域内的温度下,定向凝固的材料也表现出相似的活化能以进行塑性流动。然而,在含有半固态的随机树枝状或等轴非树枝状微观结构的样品中,变形表现出对温度的更大依赖性。一个简单的分析表明,这种更大的温度依赖性仅仅是从固体中的塑性流向液体中的粘性流转变的结果,即随着液体分数的增加(即,由于糊状区域中的晶间液体,导致了谷物的润滑流) 。;将变形行为与文献中的大量研究进行了比较,并提出了一个与峰值应力和温度补偿应变率相关的一般本构方程。温度补偿的应变率通常被称为齐纳-霍洛曼参数,Z = e&d2; exp&parl0; QRT&parr0; ,其中e&d2;是应变率,T是温度,R是气体常数,Q是塑性流动的活化能。在这项研究中获得的固态变形结果与已发表的文献资料非常吻合,并将实验范围扩展到了较高的温度和较低的应变率。

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