Multi-physics model verification based on the law of energy conservation

被引:0
|
作者
Sakura M. [1 ]
Sawada K. [2 ]
Kaneko O. [1 ]
Shin S. [1 ]
Matsuda I. [3 ]
Murakami T. [3 ]
机构
[1] Faculty of Informatics and Engineering, University of Electro-Communications, 1-5-1, Chofugaoka, Chofu, Tokyo
[2] Info-Powered Energy System Research Center, University of Electro-Communications, 1-5-1, Chofugaoka, Chofu, Tokyo
[3] Technology Development Div., GAIO TECHNOLOGY Co., Ltd, 2-2-4, Tennousu First Tower 25F, Higashishinagawa, Shinagawa-ku, Tokyo
关键词
Model based development (MBD); Model verification; Multi-physics model; Multiple CAE;
D O I
10.1541/ieejeiss.139.1293
中图分类号
学科分类号
摘要
In model based development (MBD) of the automobile industry, it is necessary to create a model including multiple physical characteristics. Integration testing of such models is not easy because of its cross-sectional development. In this paper, we propose an integration test method based on the law of energy conservation for multi-physics model. The proposed method is consisted of two steps. The first step is a model hierarchical representation considering the type of energy. The second step is an energy flow diagram based on the hierarchized model. In addition, by creating a model verification tool based on the proposed method, model verification becomes partially automatic. Through the numerical experiments, we show that the proposed method and verification tools have the possibility of judging whether the model is normal or not. In the numerical experiments, we use a model that is developed via MATLAB/Simlink®, MapleSim®, and IPG-CarMaker®. © 2019 The Institute of Electrical Engineers of Japan.
引用
收藏
页码:1293 / 1303
页数:10
相关论文
共 50 条
  • [41] An Objective Approach to Generating Multi-Physics Ensemble Precipitation Forecasts Based on the WRF Model
    Chenwei Shen
    Qingyun Duan
    Wei Gong
    Yanjun Gan
    Zhenhua Di
    Chen Wang
    Shiguang Miao
    Journal of Meteorological Research, 2020, 34 : 601 - 620
  • [42] Model-based Systems Engineering methodology for defining multi-physics simulation models
    Galisson, Gregoire
    Hammadi, Moncef
    Gherib, Mehdi
    Choley, Jean-Yves
    SYSCON 2022: THE 16TH ANNUAL IEEE INTERNATIONAL SYSTEMS CONFERENCE (SYSCON), 2022,
  • [43] Multi-Physics Graphical Model-Based Fault Detection and Isolation in Wind Turbines
    Mojallal, Aslan
    Lotfifard, Saeed
    IEEE TRANSACTIONS ON SMART GRID, 2018, 9 (06) : 5599 - 5612
  • [44] An Objective Approach to Generating Multi-Physics Ensemble Precipitation Forecasts Based on the WRF Model
    Chenwei SHEN
    Qingyun DUAN
    Wei GONG
    Yanjun GAN
    Zhenhua DI
    Chen WANG
    Shiguang MIAO
    JournalofMeteorologicalResearch, 2020, 34 (03) : 601 - 626
  • [45] Study of oscillation characteristics for quartz crystal oscillators based on equivalent multi-physics model
    Chen Z.
    Zhu Y.
    Advanced Control for Applications: Engineering and Industrial Systems, 2024, 6 (04):
  • [46] An analytical approach based on coupled multi-physics model for photovoltaic arrays performance simulation
    Yao, Yuanqing
    Wang, Yibo
    Jia, Hongjie
    Mu, Yunfei
    ELECTRIC POWER SYSTEMS RESEARCH, 2023, 224
  • [47] Multi-Physics Equivalent Circuit Model for MEMS Sensors and Actuators
    Konishi, T.
    Machida, K.
    Masu, K.
    Toshiyoshi, H.
    INTERNATIONAL SYMPOSIUM ON FUNCTIONAL DIVERSIFICATION OF SEMICONDUCTOR ELECTRONICS, 2012, 50 (14): : 55 - 61
  • [48] Multi-physics model of DC micro motors for dynamic operations
    Reato, F. M.
    Ricci, C.
    Misfatto, J.
    Calzaferri, M.
    Cinquemani, S.
    SENSORS AND ACTUATORS A-PHYSICAL, 2023, 361
  • [49] A multi-physics transient wear model for helical gear pairs
    Walker, J.
    Mohammadpour, M.
    Theodossiades, S.
    Bewsher, S. R.
    Offner, G.
    Bansal, H.
    Leighton, M.
    Braunstingl, M.
    Flesch, H-G
    TRIBOLOGY INTERNATIONAL, 2022, 169
  • [50] A hierarchical multi-physics model for design of high toughness steels
    Hao, S
    Moran, B
    Liu, WK
    Olson, GB
    JOURNAL OF COMPUTER-AIDED MATERIALS DESIGN, 2003, 10 (02): : 99 - 142