The reduced order model for creep using dynamic mode decomposition

被引:0
作者
Wang, Yong [1 ]
Jiang, Naibin [1 ]
机构
[1] Sun Yat Sen Univ, Sino French Inst Nucl Engn & Technol, Zhuhai, Guangdong, Peoples R China
关键词
Dynamic mode decomposition; Visco-plastic constitutive model; Reduced order model; Creep deformation; STRESS-RELAXATION; PREDICTION;
D O I
10.1016/j.nucengdes.2024.113441
中图分类号
TL [原子能技术]; O571 [原子核物理学];
学科分类号
0827 ; 082701 ;
摘要
Given the computational challenges associated with finite element methods in analyzing creep behavior in hightemperature components, this work presents an advanced method for modeling thermal creep in complex structures through a reduced order model (ROM) developed via dynamic mode decomposition (DMD). The results indicate that the ROM using DMD can predict long-term structural responses related to creep based on short-term data with high accuracy, enhancing significantly computational efficiency. The application of ROM allows for the rapid estimation of creep effects in complex structures, like monoliths in the MegaPower reactor, thereby improving the design efficiency. The eigenvalues of the creep related ROM all fall in the unit circle on the complex plane, indicating that creep is a stable development process. The DMD with improved time mode coefficient can reconstruct strain-rate related plastic deformation and cyclic visco-plastic deformation process. Additionally, we derive the necessary stress updating algorithm and consistent tangent operator matrix for the 316H unified visco-plastic constitutive equation in 2023 edition ASME code, ensuring accurate modeling of material creep behavior under high temperatures in this paper. This work provides a valuable tool for the safe design and operation of critical components in nuclear engineering and other high-temperature applications.
引用
收藏
页数:16
相关论文
共 33 条
  • [1] Abaqus G., 2011, Abaqus 6.11
  • [2] Higher-order dynamic mode decomposition on-the-fly: A low-order algorithm for complex fluid flows
    Amor, Christian
    Schlatter, Philipp
    Vinuesa, Ricardo
    Le Clainche, Soledad
    [J]. JOURNAL OF COMPUTATIONAL PHYSICS, 2023, 475
  • [3] ASME, 2023, ASME Boiler and Pressure Vessel Code, Section III, Rules for Construction of Nuclear Facility Components
  • [4] Betten J., 2008, Creep Mechanics
  • [5] Brunton SL, 2019, DATA-DRIVEN SCIENCE AND ENGINEERING: MACHINE LEARNING, DYNAMICAL SYSTEMS, AND CONTROL, P117
  • [6] Full-tensor Measurement of Multiaxial Creep Stress Relaxation in Type 316H Stainless Steel
    Coules, H. E.
    Nneji, S. O.
    James, J. A.
    Kabra, S.
    Hu, J. N.
    Wang, Y.
    [J]. EXPERIMENTAL MECHANICS, 2022, 62 (01) : 19 - 33
  • [7] Dynamic-mode decomposition and optimal prediction
    Curtis, Christopher W.
    Alford-Lago, Daniel Jay
    [J]. PHYSICAL REVIEW E, 2021, 103 (01)
  • [8] Fookes A., 2009, 2 INT ECCC C CREEP F, P1
  • [9] Notch Effect on Structural Strength of Components at Elevated Temperature Under Creep, Fatigue, and Creep-Fatigue Loading Conditions: Phenomenon and Mechanism
    Gong, Jian-Guo
    Gong, Cheng
    Xuan, Fu-Zhen
    Chen, Haofeng
    [J]. JOURNAL OF PRESSURE VESSEL TECHNOLOGY-TRANSACTIONS OF THE ASME, 2019, 141 (05):
  • [10] Efficient reduced-order model for multiaxial creep-fatigue analysis based on a unified viscoplastic constitutive model
    Jiang, Genghui
    Kang, Ming
    Cai, Zhenwei
    Wang, Han
    Liu, Yingzheng
    Wang, Weizhe
    [J]. INTERNATIONAL JOURNAL OF FATIGUE, 2023, 175