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Load partitioning between the bcc-iron matrix and NiAl-type precipitates in a ferritic alloy on multiple length scales

机译:不同长度尺度上铁素体合金中bcc-铁基体和NiAl型析出物之间的载荷分配

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摘要

An understanding of load sharing among constituent phases aids in designing mechanical properties of multiphase materials. Here we investigate load partitioning between the body-centered-cubic iron matrix and NiAl-type precipitates in a ferritic alloy during uniaxial tensile tests at 364 and 506 °C on multiple length scales by in situ neutron diffraction and crystal plasticity finite element modeling. Our findings show that the macroscopic load-transfer efficiency is not as high as that predicted by the Eshelby model; moreover, it depends on the matrix strain-hardening behavior. We explain the grain-level anisotropic load-partitioning behavior by considering the plastic anisotropy of the matrix and elastic anisotropy of precipitates. We further demonstrate that the partitioned load on NiAl-type precipitates relaxes at 506 °C, most likely through thermally-activated dislocation rearrangement on the microscopic scale. The study contributes to further understanding of load-partitioning characteristics in multiphase materials.
机译:了解组成相之间的负载分担有助于设计多相材料的机械性能。在这里,我们通过原位中子衍射和晶体塑性有限元建模,在多长度尺度上于364和506°C的单轴拉伸试验中研究了铁心合金中体心立方铁基体与NiAl型析出物之间的载荷分配。我们的发现表明,宏观的载荷传递效率不如Eshelby模型所预测的那样高。此外,这取决于基体应变硬化行为。我们通过考虑基体的塑性各向异性和析出物的弹性各向异性来解释晶粒级各向异性的载荷分配行为。我们进一步证明,在NiAl型沉淀物上分配的载荷在506°C时松弛,很可能是通过微观尺度上的热活化位错重排而实现的。该研究有助于进一步理解多相材料中的载荷分配特性。

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