用反方法解释考虑局部颈缩的单轴蠕变损伤特性和断裂寿命

IF 5.3 2区 工程技术 Q1 MECHANICS
M. Li , R.Q. Guo , B. Zhou , X.F. Gong , Z.X. Wen , Z.F. Yue , W. Sun
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引用次数: 0

摘要

蠕变延性材料在单轴蠕变试验中发生的三级蠕变诱发的局部颈缩,一直是恒载和恒应力条件下蠕变断裂寿命解释中的一个长期关注的问题。在本研究中,对一种新开发的回火马氏体MarBN钢进行了一系列短期、高应力状态、在一定应力和温度范围内蠕变断裂试验,以了解颈缩力学和潜在的变形机制。在逆向优化方案中,利用实测的局部颈缩变形形状,提出了一种基于有限元的逆方法来确定大变形条件下的全阶段蠕变损伤特性。在此基础上,建立了恒载和恒应力蠕变断裂试验间蠕变断裂寿命随温度变化的经验关系。以G115马氏体钢蠕变试验数据为例,对所提关系的可行性和准确性进行了验证。讨论了这种关系对更广泛和更一般的条件(例如,应力范围,温度,材料)和实际应用的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Interpretation of uniaxial creep damage properties and rupture life considering local necking via an inverse approach
Tertiary creep-induced local necking, which occurs during uniaxial creep tests for creep-ductile materials, has been a long-term concern in the interpretation of creep rupture life under both constant load and constant stress conditions. In this study, a set of short-term, high stress regime, creep rupture tests, in a range of stress and temperature, for a newly developed tempered martensitic MarBN steel, were used to understand the necking mechanics and the underlying deformation mechanisms. An FE-based, inverse approach is developed to determine the full stage creep damage properties under large deformation conditions, utilizing the measured deformed shapes of local necking within the inverse optimization scheme. On this basis, a temperature-dependent empirical relationship of the creep rupture lives between constant load and constant stress creep rupture tests is established. As a demonstration, the feasibility and accuracy of the proposed relationship was evaluated through a benchmark case using the data from the G115 martensitic steel creep tests. The implications of this relationship for broader and more general conditions (e.g., stress range, temperature, materials) and practical applications are discussed.
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来源期刊
CiteScore
8.70
自引率
13.00%
发文量
606
审稿时长
74 days
期刊介绍: EFM covers a broad range of topics in fracture mechanics to be of interest and use to both researchers and practitioners. Contributions are welcome which address the fracture behavior of conventional engineering material systems as well as newly emerging material systems. Contributions on developments in the areas of mechanics and materials science strongly related to fracture mechanics are also welcome. Papers on fatigue are welcome if they treat the fatigue process using the methods of fracture mechanics.
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