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The effect of γ' particle size on the deformation mechanism in an advanced polycrystalline nickel-base superalloy

机译:γ'粒径对先进多晶镍基超合金变形机理的影响

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The deformation mechanisms under tensile loading in a 48 vol.% γ' polycrystalline nickel-base superalloy (RR1000) have been studied in-situ using neutron diffraction at 20°C, 500°C and 750°C. In addition, post-mortem microstructural studies were carried out on deformed samples using an ultra high resolution field emission gun scanning electron microscope (FEGSEM). Deformation studies were carried out on three different model microstructures with a uni-modal γ' mean particle size of 80 nm, 120 nm and 250 nm. The elastic response of γ and γ' during in-situ loading was measured by neutron diffraction and load transfer from γ to γ' was observed during plastic deformation at high temperature in samples with a coarse γ' mean particle size. It was found that as the testing temperature increases, load transfer can be observed first only for the coarse γ' microstructure and at 750°C for the medium and coarse γ' microstructure showing that there is a combined particle size/temperature dependency for γ to γ' load transfer. No significant load transfer was detectable in samples with a fine mean γ' particle size at any temperature. In some cases a region of plastic deformation without load transfer was succeeded by γ to γ' load transfer when a certain level of plastic straining had been exceeded. FEGSEM studies of the samples plastically deformed at 500°C showed sheared particles only in the fine γ' microstructure but not in samples with coarse γ'. The data recorded during the in-situ loading experiment demonstrate that such experiments are suitable for detecting changes of the deformation mode. But it is only in combination with post mortem electron microscopy studies that the load transfer observed can be related to a specific change of slip mode. So far, the experimental data suggest that fine γ' is sheared during plastic deformation at room and high temperature up to 750°C whereas in coarse γ' Orowan looping is the most likely deformation mechanism at high temperature although cutting by strongly coupled dislocation might also explain the observed load transfer.
机译:在48体积的48体积中的拉伸载荷下的变形机制已经在20℃,500℃和750℃下使用中子衍射原位研究了%γ'多晶镍基超合金(RR1000)。此外,使用超高分辨率场发射枪扫描电子显微镜(FEGSEM)在变形样品上进行验尸微观结构研究。在三种不同的模型微观结构上进行变形研究,其中单模γ'平均粒径为80nm,120nm和250nm。在原位加载期间γ和γ'的弹性响应通过中子衍射测量,并且在具有粗γ'平均粒度的样品中的塑性变形期间观察到从γ至γ'的负载转移。结果发现,随着测试温度升高,可以首先仅针对粗γ'微观结构观察负载转移,并且在750℃下进行介质和粗γ'微结构,显示出具有γ的组合粒度/温度依赖性γ'负载转移。在任何温度下,在具有精细平均值γ'粒度的样品中没有检测到明显的载体转移。在一些情况下,在超过一定水平的塑性紧张时,通过γ至γ'负载转移成功地成功了塑性变形区域。在500℃下塑性变形的样品的FEGSEM研究仅在细γ'微观结构中显示剪切颗粒,但不含粗γ'的样品。在原位加载实验期间记录的数据表明这种实验适用于检测变形模式的变化。但它仅与后验证电子显微镜研究相结合,即观察到的负载转移可能与滑动模式的特定变化有关。到目前为止,实验数据表明,在塑料变形期间剪切,高温高达750°C,而在粗γ'环上的塑料变形是高温下最有可能的变形机制,尽管通过强烈耦合的脱位切割也可能解释观察到的负载转移。

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