A modified cyclic elastoplastic constitutive model considering the variational dynamic recovery term of back stress for FGH95 under asymmetrical cyclic loading

IF 5.7 2区 材料科学 Q1 ENGINEERING, MECHANICAL
Mengsen Qin , Chuanyong Chen , Haijun Xuan , Yang Liu , Bin Huang
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Abstract

The asymmetric cyclic loading process occurs in aero-engine turbine discs. A constitutive model that accurately describes the cyclic elastoplastic behaviour of the material is important for structural design and low cycle fatigue life prediction of turbine discs. In this paper, the low cycle fatigue test of FGH95 was carried out at 620℃ under 0.5%, 0.6%, 0.7%, 0.8%, 0.9%, 1.0% and 1.1% strain amplitude with strain ratio equal to 0. The material exhibited cyclic hardening followed by cyclic softening at high strain amplitudes and cyclic softening at low strain amplitudes. The mean stress relaxation rate was similar for each strain amplitude. In addition, the evolution of effective stress and back stress was obtained through the method of internal stress division. Then, the relationship between the change in stress amplitude and the change in internal stress was discussed. The results showed that with cyclic loading, cyclic hardening/softening of FGH95 was affected by the competition mechanism of back and effective stresses. Considering that slip deformation and crystal lattice rotation coexist in plastic deformation, the dynamic recovery term of the Abdel-Karim and Ohno model was used. In order to characterize the different magnitudes of back stress change in materials at different plastic strain intervals, a dynamic recovery term coefficient was introduced to the dynamic recovery term and the critical surface of the back stress. The modified model was used to compare with experimental results. Then, it gives a good description of the material’s mean stress relaxation and strain amplitude variation and gives good agreement on the hysteresis loop.

考虑到非对称循环加载下 FGH95 背应力的可变动态恢复项的修正循环弹塑性构成模型
航空发动机涡轮盘存在非对称循环加载过程。准确描述材料循环弹塑性行为的构成模型对于涡轮盘的结构设计和低循环疲劳寿命预测非常重要。本文对 FGH95 进行了低循环疲劳试验,试验温度为 620℃,应变振幅分别为 0.5%、0.6%、0.7%、0.8%、0.9%、1.0% 和 1.1%,应变比等于 0。各应变幅的平均应力松弛率相似。此外,还通过内应力划分法获得了有效应力和背应力的演变。然后,讨论了应力振幅变化与内应力变化之间的关系。结果表明,在循环加载下,FGH95 的循环硬化/软化受到背应力和有效应力竞争机制的影响。考虑到塑性变形中同时存在滑移变形和晶格旋转,因此采用了 Abdel-Karim 和 Ohno 模型的动态恢复项。为了描述材料在不同塑性应变区间背应力变化的不同幅度,在动态恢复项和背应力临界面上引入了动态恢复项系数。修改后的模型与实验结果进行了比较。结果表明,该模型很好地描述了材料的平均应力松弛和应变振幅变化,并与滞后环有很好的一致性。
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来源期刊
International Journal of Fatigue
International Journal of Fatigue 工程技术-材料科学:综合
CiteScore
10.70
自引率
21.70%
发文量
619
审稿时长
58 days
期刊介绍: Typical subjects discussed in International Journal of Fatigue address: Novel fatigue testing and characterization methods (new kinds of fatigue tests, critical evaluation of existing methods, in situ measurement of fatigue degradation, non-contact field measurements) Multiaxial fatigue and complex loading effects of materials and structures, exploring state-of-the-art concepts in degradation under cyclic loading Fatigue in the very high cycle regime, including failure mode transitions from surface to subsurface, effects of surface treatment, processing, and loading conditions Modeling (including degradation processes and related driving forces, multiscale/multi-resolution methods, computational hierarchical and concurrent methods for coupled component and material responses, novel methods for notch root analysis, fracture mechanics, damage mechanics, crack growth kinetics, life prediction and durability, and prediction of stochastic fatigue behavior reflecting microstructure and service conditions) Models for early stages of fatigue crack formation and growth that explicitly consider microstructure and relevant materials science aspects Understanding the influence or manufacturing and processing route on fatigue degradation, and embedding this understanding in more predictive schemes for mitigation and design against fatigue Prognosis and damage state awareness (including sensors, monitoring, methodology, interactive control, accelerated methods, data interpretation) Applications of technologies associated with fatigue and their implications for structural integrity and reliability. This includes issues related to design, operation and maintenance, i.e., life cycle engineering Smart materials and structures that can sense and mitigate fatigue degradation Fatigue of devices and structures at small scales, including effects of process route and surfaces/interfaces.
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