Numerical modelling of CFRP induction heating using temperature-dependent material properties

被引:29
作者
Lundstrom, Fredrik [1 ]
Frogner, Kenneth [1 ,2 ]
Andersson, Mats [1 ]
机构
[1] Lund Univ, Div Prod & Mat Engn, Ole Romers Vag 1, SE-22363 Lund, Sweden
[2] Corebon AB, Kantyxegatan 5, SE-21376 Malmo, Sweden
关键词
A; Carbon fibre; B; Thermal properties; Electrical properties; C; Finite element analysis (FEA); Induction heating; TRANSFER COEFFICIENT; FIBER; COMPOSITES; FIELD;
D O I
10.1016/j.compositesb.2021.108982
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Induction heating of CFRP is an energy-efficient and fast method that may be used for example during consolidation of thermoset-based CFRP or welding of thermoplastic-based CFRP. This study investigates how induction heating of CFRP is affected by the temperature dependence of the thermal and electrical properties and presents a simple numerical model for computation of the temperature distribution during induction heating with a circular coil. Temperature-dependent electrical and thermal properties are measured on a macroscopic level and used in the numerical model. Thermographic recordings are made during induction heating to validate the results from the numerical model. The result shows the importance of using temperature-dependent thermal properties in the numerical model, while it might not be necessary to use temperature-dependent electrical conductivity because of the small impact on the computed heat generation and temperature.
引用
收藏
页数:12
相关论文
共 50 条
[31]   Characterization of temperature-dependent photoluminescence properties of InAlGaN quaternary alloys [J].
Hu, S. Y. ;
Lee, Y. C. ;
Weng, Y. H. ;
Ferguson, I. T. ;
Feng, Z. C. .
JOURNAL OF ALLOYS AND COMPOUNDS, 2014, 587 :153-157
[32]   Temperature-Dependent Electrical Properties of Cr Doped Magnetoplumbite Ferrites [J].
S. Fatima-tuz-Zahra ;
Z. Kanwal ;
M. Khan .
Journal of Superconductivity and Novel Magnetism, 2017, 30 :2011-2015
[33]   Induction Mold Heating: Modelling and Hardware-In-The-Loop Simulation for Temperature Control [J].
Prist, M. ;
Pallotta, E. ;
Cicconi, P. ;
Monteriu, A. ;
Germani, M. ;
Longhi, S. .
2018 IEEE INTERNATIONAL CONFERENCE ON ENVIRONMENT AND ELECTRICAL ENGINEERING AND 2018 IEEE INDUSTRIAL AND COMMERCIAL POWER SYSTEMS EUROPE (EEEIC / I&CPS EUROPE), 2018,
[34]   Investigation and modelling of work roll temperature in induction heating by finite element method [J].
Bao, L. ;
Qi, X-W. ;
Mei, R-B. ;
Zhang, X. ;
Li, G-L. .
JOURNAL OF THE SOUTHERN AFRICAN INSTITUTE OF MINING AND METALLURGY, 2018, 118 (07) :735-743
[35]   Modelling and measuring of temperature distribution in explosive cladded materials under induction heating [J].
Waindok, Andrzej ;
Zuzalek, Michal ;
Piekielny, Pawel .
APPLIED THERMAL ENGINEERING, 2024, 250
[36]   Deriving temperature-dependent material models for structural steel through artificial intelligence [J].
Naser, M. Z. .
CONSTRUCTION AND BUILDING MATERIALS, 2018, 191 :56-68
[37]   Modelling of induction heating of carbon steel tubes: Mathematical analysis, numerical simulation and validation [J].
Di Luozzo, N. ;
Fontana, M. ;
Arcondo, B. .
JOURNAL OF ALLOYS AND COMPOUNDS, 2012, 536 :S564-S568
[38]   Determination of the frequency- and temperature-dependent stiffness and damping properties of thermoplastics for the prediction of the vibration and heating behaviour during ultrasonic welding [J].
Hopmann, Christian ;
Dahlmann, Rainer ;
Weihermueller, Max ;
Wipperfuerth, Jens ;
Sommer, Jan .
WELDING IN THE WORLD, 2023, 67 (02) :435-445
[39]   The Numerical Analysis of Temperature Field During Moveable Induction Heating of Steel Plate [J].
Zhang, Xue-biao ;
Yang, Yu-long ;
Liu, Yu-jun .
JOURNAL OF SHIP PRODUCTION AND DESIGN, 2012, 28 (02) :73-81
[40]   Neutron Diffraction Measurements and Micromechanical Modelling of Temperature-Dependent Variations in TATB Lattice Parameters [J].
Yeager, John D. ;
Luscher, Darby J. ;
Vogel, Sven C. ;
Clausen, Bjorn ;
Brown, Donald W. .
PROPELLANTS EXPLOSIVES PYROTECHNICS, 2016, 41 (03) :514-525