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首页> 外文期刊>Mechanics of materials >Thermomechanical behavior of laser metal deposited Inconel 718 superalloy over a wide range of temperature and strain rate: Testing and constitutive modeling
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Thermomechanical behavior of laser metal deposited Inconel 718 superalloy over a wide range of temperature and strain rate: Testing and constitutive modeling

机译:激光金属沉积的Inconel 718高温合金在很宽的温度和应变率范围内的热力学行为:测试和本构模型

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摘要

The lack of comprehensive insight and accurate description on the dynamic thermomechanical behaviors in high-temperature and high-strain-rate loading environment could be one of the major obstacles to extend the laser metal deposited (LMD) Inconel 718 to engineering applications in aeroengine. In this study, to obtain in-depth understanding of plastic flow behavior of the LMD Inconel 718, uniaxial compressive experiments were conducted over a wide range of temperature (298-1273 K) and strain rate (0.001-5300/s). Based on a great number of experimental results, not only the anisotropy of compressive property, but the dependence of the plastic flow stress on temperature and strain rate were investigated systematically. The flow stress of the as deposited alloy in laser scanning direction is higher than that in depositing direction, which is attributed to the columnar grains epitaxially growing along the build direction and featuring the high length-diameter ratio within the as-deposited sample. Since the small-size precipitates in the under-aged (as-deposited) Inconel 718 alloy could be cut by the moving dislocations directly during plastic deformation, they have various effect on the interaction between moving dislocations and interstitial elements at different strain rate. The third-type of strain aging (3rd SA) effect, exhibiting an anomalous bell-shaped flow stress vs. temperature relation, was observed more apparently than that in the post-aged Inconel 718 reported by other literatures. As for the strain-rate effect, the flow stress of the alloy exhibits inconspicuous strain-rate sensitivity over the range of strain rate below similar to 10(3)/s, while increases sharply with the strain rate once it exceeds similar to 10(3)/s. Finally, taking into account the mechanical anisotropy, as well as the anomalous temperature and strain rate sensitivities of the flow stress, we developed a constitutive model based on a physical frame. In this model, an anisotropy component was introduced to consider the effective size of columnar grains in the corresponding loading direction, the strain rate hardening was enhanced as the strain rate gets close to a certain level, and a normal distribution with temperature was used to describe the 3rd SA effect. The developed model was shown to be able to accurately reproduce the plastic flow behavior of the LMD Inconel 718 over a wide range of temperature and strain rate.
机译:缺乏对高温和高应变率加载环境中动态热力学行为的全面了解和准确描述,可能是将激光金属沉积(LMD)Inconel 718扩展到航空发动机工程应用的主要障碍之一。在这项研究中,为了深入了解LMD Inconel 718的塑性流动行为,在很宽的温度(298-1273 K)和应变速率(0.001-5300 / s)范围内进行了单轴压缩实验。基于大量的实验结果,不仅研究了压缩性能的各向异性,而且还系统地研究了塑性流动应力对温度和应变率的依赖性。所沉积的合金在激光扫描方向上的流动应力高于在沉积方向上的流动应力,这归因于沿构造方向外延生长的柱状晶粒,并且在所沉积的样品内具有高的长径比。由于在塑性变形过程中,未成熟(已沉积)Inconel 718合金中的小尺寸析出物可被运动位错直接切割,因此,它们对不同应变率下的运动位错与间隙元素之间的相互作用具有多种影响。与其他文献报道的后效Inconel 718相比,观察到了第三种应变时效(3rd SA)效应,表现出异常的钟形流动应力与温度的关系。至于应变率效应,合金的流动应力在低于10(3)/ s的应变率范围内表现出不起眼的应变率敏感性,而一旦超过10(3)/ s,则随应变率急剧增加。 3)/秒。最后,考虑到机械各向异性以及流动应力的异常温度和应变率敏感性,我们开发了基于物理框架的本构模型。在该模型中,引入各向异性分量以考虑相应加载方向上柱状晶粒的有效尺寸,当应变速率接近一定水平时,应变速率硬化得到增强,并使用温度的正态分布来描述第三SA效果。所开发的模型显示出能够在很宽的温度和应变率范围内准确再现LMD Inconel 718的塑性流动行为。

著录项

  • 来源
    《Mechanics of materials 》 |2019年第8期| 13-25| 共13页
  • 作者

  • 作者单位

    Northwestern Polytech Univ Sch Aeronaut Xian 710072 Shaanxi Peoples R China;

    Northwestern Polytech Univ State Key Lab Solidificat Proc Xian 710072 Shaanxi Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Laser metal deposition; Inconel 718; Anisotropy; Plastic flow; Constitutive model;

    机译:激光金属沉积;因科镍合金718;各向异性塑性流;本构模型;

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