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Erschienen in: The International Journal of Advanced Manufacturing Technology 11-12/2021

07.06.2021 | ORIGINAL ARTICLE

Finite element analysis of temperature uniformity in transverse induction heating process in ESP rolling

verfasst von: Wen Peng, Xiaorui Chen, Li Zhang, Xudong Li, Jie Sun, Dianhua Zhang

Erschienen in: The International Journal of Advanced Manufacturing Technology | Ausgabe 11-12/2021

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Abstract

To study the transverse temperature uniformity with transverse flux induction heating (TFIH) during endless strip production (ESP) rolling, a coupled electromagnetic-thermal finite element model of transverse flux induction heating is established. The initial temperature distribution at the TFIH inlet is taken into consideration, which is the basis of subsequent numerical studies. Magnetic screens are designed to weaken the influence of edge overheating, and the influence of magnetic shielding amounts on temperature uniformity is discussed. Moreover, an evaluation criterion is provided to determine the temperature uniformity. Furthermore, the effect of different shielding amounts on the edge temperature is studied. An ideal temperature distribution at the TFIH outlet is obtained based on a model combining various shielding amounts, and the temperature standard deviation of this method is 2.01% lower than the traditional arrangement of magnetic shielding amounts. Actual data are collected to verify the results of the proposed model. The temperature deviation between the middle and edge is approximately 12°C, and the temperature uniformity is enhanced with the optimized combination of magnetic shielding amounts.

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Literatur
1.
Zurück zum Zitat Arvedi G, Mazzolari F, Siegl J, Hohenbichler G, Holleis G (2010) Arvedi ESP first thin slab endless casting and rolling results. Ironmak Steelmak 37(4):271–275CrossRef Arvedi G, Mazzolari F, Siegl J, Hohenbichler G, Holleis G (2010) Arvedi ESP first thin slab endless casting and rolling results. Ironmak Steelmak 37(4):271–275CrossRef
2.
Zurück zum Zitat Zhang H, He X (2020) Status and analyses of equipment and technology for ultra- thin hot rolled strip, 716 (4) 1-7 Zhang H, He X (2020) Status and analyses of equipment and technology for ultra- thin hot rolled strip, 716 (4) 1-7
3.
Zurück zum Zitat Lucía O, Maussion P, Dede EJ, Burdío JM (2014) Induction heating technology and its applications: past developments, current technology and future challenges. IEEE Trans Ind Electron 61(5):2509–2520CrossRef Lucía O, Maussion P, Dede EJ, Burdío JM (2014) Induction heating technology and its applications: past developments, current technology and future challenges. IEEE Trans Ind Electron 61(5):2509–2520CrossRef
4.
Zurück zum Zitat Bao L, Wang B, You XP, Li HP, Gu Y, Liu WJ (2020) Numerical and experimental research on localized induction heating process for hot stamping steel sheets. Int J Heat Mass Transf 151:119422CrossRef Bao L, Wang B, You XP, Li HP, Gu Y, Liu WJ (2020) Numerical and experimental research on localized induction heating process for hot stamping steel sheets. Int J Heat Mass Transf 151:119422CrossRef
5.
Zurück zum Zitat Fu X, Wang B, Zhu X, Tang X, Ji H (2016) Numerical and experimental investigations on large-diameter gear rolling with local induction heating process. Int J Adv Manuf Technol 91(1-4):1–11CrossRef Fu X, Wang B, Zhu X, Tang X, Ji H (2016) Numerical and experimental investigations on large-diameter gear rolling with local induction heating process. Int J Adv Manuf Technol 91(1-4):1–11CrossRef
6.
Zurück zum Zitat Cho KH (2012) Coupled electro-magneto-thermal model for induction heating process of a moving billet. Int J Therm Sci 60:195–204CrossRef Cho KH (2012) Coupled electro-magneto-thermal model for induction heating process of a moving billet. Int J Therm Sci 60:195–204CrossRef
7.
Zurück zum Zitat Kranjc M, Zupanic A, Miklavcic D, Jarm T (2010) Numerical analysis and thermographic investigation of induction heating. Int J Heat Mass Transf 53:3585–3591CrossRef Kranjc M, Zupanic A, Miklavcic D, Jarm T (2010) Numerical analysis and thermographic investigation of induction heating. Int J Heat Mass Transf 53:3585–3591CrossRef
8.
Zurück zum Zitat Han Y, Yu E, Zhao T (2016) Three-dimensional analysis of medium-frequency induction heating of steel pipes subject to motion factor. Int J Heat Mass Transf 101:452–460CrossRef Han Y, Yu E, Zhao T (2016) Three-dimensional analysis of medium-frequency induction heating of steel pipes subject to motion factor. Int J Heat Mass Transf 101:452–460CrossRef
9.
Zurück zum Zitat Liu Y, Tani M, Kurata M, Watase C, Nishiyama M (2020) Study on I-shaped section steel braces partially strengthened by induction heating. Eng Struct 210:110341CrossRef Liu Y, Tani M, Kurata M, Watase C, Nishiyama M (2020) Study on I-shaped section steel braces partially strengthened by induction heating. Eng Struct 210:110341CrossRef
10.
Zurück zum Zitat Barba PD, Dughiero F, Savini A (2003) Multiobjective shape design of an inductor for transverse-flux heating of metal strips. IEEE Trans Magn 39(3):1519–1522CrossRef Barba PD, Dughiero F, Savini A (2003) Multiobjective shape design of an inductor for transverse-flux heating of metal strips. IEEE Trans Magn 39(3):1519–1522CrossRef
11.
Zurück zum Zitat Aiello G, Alfonzetti S, Rizzo SA, Salerno N (2020) Optimization of the shape of an induction heating device in the presence of skin effect in the coils. COMPEL International Journal for Computation and Mathematics in Electrical and Electronic Engineering 39(2):525–531CrossRef Aiello G, Alfonzetti S, Rizzo SA, Salerno N (2020) Optimization of the shape of an induction heating device in the presence of skin effect in the coils. COMPEL International Journal for Computation and Mathematics in Electrical and Electronic Engineering 39(2):525–531CrossRef
12.
Zurück zum Zitat Hou XG, Li J, Zhou YM (2016) Development of transverse flux induction heating for wide rang size strip. Baosteel Technology 3:7–15 Hou XG, Li J, Zhou YM (2016) Development of transverse flux induction heating for wide rang size strip. Baosteel Technology 3:7–15
13.
Zurück zum Zitat Wang Z, Yang X, Wang Y, Yan W (2001) Eddy current and temperature field computation in transverse flux induction heating equipment for galvanizing line. IEEE Trans Magn 37(5):3437–3439CrossRef Wang Z, Yang X, Wang Y, Yan W (2001) Eddy current and temperature field computation in transverse flux induction heating equipment for galvanizing line. IEEE Trans Magn 37(5):3437–3439CrossRef
14.
Zurück zum Zitat Mohring JU, Lemann HJ, Muhlbauer A, Nacke B (2007) Numerical and experimental investigations into transverse flux induction heating. European Transactions on Electrical Power 7(3):157–164CrossRef Mohring JU, Lemann HJ, Muhlbauer A, Nacke B (2007) Numerical and experimental investigations into transverse flux induction heating. European Transactions on Electrical Power 7(3):157–164CrossRef
15.
Zurück zum Zitat Tiberiu T, Fireteanu V (2008) Magneto-thermal-motion coupling in transverse flux heating. COMPEL International Journal for Computation and Mathematics in Electrical and Electronic Engineering 27(2):399–407CrossRef Tiberiu T, Fireteanu V (2008) Magneto-thermal-motion coupling in transverse flux heating. COMPEL International Journal for Computation and Mathematics in Electrical and Electronic Engineering 27(2):399–407CrossRef
16.
Zurück zum Zitat Dughiero F, Forzan M, Lupi S, Tasca M (1998) Numerical and experimental analysis of an electro-thermal coupled problem for transverse flux induction heating equipment. IEEE Trans Magn 34(5):3106–3109CrossRef Dughiero F, Forzan M, Lupi S, Tasca M (1998) Numerical and experimental analysis of an electro-thermal coupled problem for transverse flux induction heating equipment. IEEE Trans Magn 34(5):3106–3109CrossRef
17.
Zurück zum Zitat Nerg J, Partanen J (2000) Numerical solution of 2D and 3D induction heating problems with nonlinear material properties taken into account. IEEE Trans Magn 36(5):3119–3121CrossRef Nerg J, Partanen J (2000) Numerical solution of 2D and 3D induction heating problems with nonlinear material properties taken into account. IEEE Trans Magn 36(5):3119–3121CrossRef
18.
Zurück zum Zitat Fireteanu V, Tudorache T (2000) Electromagnetic forces in transverse flux induction heating. IEEE Trans Magn 36(4):1792–1795CrossRef Fireteanu V, Tudorache T (2000) Electromagnetic forces in transverse flux induction heating. IEEE Trans Magn 36(4):1792–1795CrossRef
19.
Zurück zum Zitat Zlobina M, Galunin S, Blinov Y, Nacke B, Nikanorov A, Schülbe H (2003) Numerical modelling of non-linear transverse flux heating systems. Stainless Steel 28(3):639–655 Zlobina M, Galunin S, Blinov Y, Nacke B, Nikanorov A, Schülbe H (2003) Numerical modelling of non-linear transverse flux heating systems. Stainless Steel 28(3):639–655
20.
Zurück zum Zitat Virgiliu F, Monica P, Sorin P, Petrica T (2012) Transversal flux scanning induction heating of magnetic nonlinear steel sheets with temperature dependent properties. J Iron Steel Res Int 19:717–721 Virgiliu F, Monica P, Sorin P, Petrica T (2012) Transversal flux scanning induction heating of magnetic nonlinear steel sheets with temperature dependent properties. J Iron Steel Res Int 19:717–721
21.
Zurück zum Zitat Wang YH, Li B, Yin LX, Wu JC, Wu SP, Liu CC (2019) Velocity-controlled particle swarm optimization (PSO) and its application to the optimization of transverse flux induction heating apparatus. Energies 12:487CrossRef Wang YH, Li B, Yin LX, Wu JC, Wu SP, Liu CC (2019) Velocity-controlled particle swarm optimization (PSO) and its application to the optimization of transverse flux induction heating apparatus. Energies 12:487CrossRef
22.
Zurück zum Zitat Wu JC, Wang S, Wang YH, Liu CC (2020) Sensitivity analysis of design parameters in transverse flux induction heating device. IEEE Trans Appl Supercond 30(4):0600406 Wu JC, Wang S, Wang YH, Liu CC (2020) Sensitivity analysis of design parameters in transverse flux induction heating device. IEEE Trans Appl Supercond 30(4):0600406
23.
Zurück zum Zitat Huang MS, Huang YL (2010) Effect of multi-layered induction coils on efficiency and uniformity of surface heating. Int J Heat Mass Transf 53:2414–2423CrossRef Huang MS, Huang YL (2010) Effect of multi-layered induction coils on efficiency and uniformity of surface heating. Int J Heat Mass Transf 53:2414–2423CrossRef
24.
Zurück zum Zitat Wang YH, Wang JH, Pang LL, Ho SL, Fu WN (2011, 07E511) An advanced double-layer combined windings transverse flux system for thin strip induction heating. J Appl Phys 109 Wang YH, Wang JH, Pang LL, Ho SL, Fu WN (2011, 07E511) An advanced double-layer combined windings transverse flux system for thin strip induction heating. J Appl Phys 109
25.
Zurück zum Zitat Virgiliu F, Philippe R (2013) Finite element analysis of the transverse flux induction heating of moving magnetic steel sheets. International Symposium on Advanced Topics in Electrical Engineering, IEEE Virgiliu F, Philippe R (2013) Finite element analysis of the transverse flux induction heating of moving magnetic steel sheets. International Symposium on Advanced Topics in Electrical Engineering, IEEE
26.
Zurück zum Zitat Dughiero F, Lupi S, Müehlbauer A, Nikanorov A (2003) TFH - transverse flux induction heating of non-ferrous and precious metal strips Results of an EU research project. COMPEL 22(1):134–148CrossRef Dughiero F, Lupi S, Müehlbauer A, Nikanorov A (2003) TFH - transverse flux induction heating of non-ferrous and precious metal strips Results of an EU research project. COMPEL 22(1):134–148CrossRef
27.
Zurück zum Zitat Pevzner MZ (2010) Temperature and property distribution over the width of a strip annealed in a transverse magnetic field. Met. Sci. Heat Treat. MET 52(7-8):382–387CrossRef Pevzner MZ (2010) Temperature and property distribution over the width of a strip annealed in a transverse magnetic field. Met. Sci. Heat Treat. MET 52(7-8):382–387CrossRef
28.
Zurück zum Zitat Mei RB, Li CS, Han B, Liu XH (2008) Finite element analysis of slab steel in the process of induction heating. Mater Sci Forum 575-578:282–287CrossRef Mei RB, Li CS, Han B, Liu XH (2008) Finite element analysis of slab steel in the process of induction heating. Mater Sci Forum 575-578:282–287CrossRef
29.
Zurück zum Zitat Tan Z, Guo GW (1994) Thermophysical properties of engineering alloys. Metallurgical Industry Press, Beijing Tan Z, Guo GW (1994) Thermophysical properties of engineering alloys. Metallurgical Industry Press, Beijing
30.
Zurück zum Zitat Wang YH, Wu JC, Liu CC, Chen L (2019) Simulation and analysis of eddy current field of strips during transverse flux continuous induction heating. Heat Treat Met 44(01):229–234 Wang YH, Wu JC, Liu CC, Chen L (2019) Simulation and analysis of eddy current field of strips during transverse flux continuous induction heating. Heat Treat Met 44(01):229–234
31.
Zurück zum Zitat Zhao X, Kang Y, Liu X, Chen L, Lin H (2011) Numerical simulation of temperature field for the super long slab reheating of semi-endless rolling. J Iron Steel Res Int 23(8):16–20CrossRef Zhao X, Kang Y, Liu X, Chen L, Lin H (2011) Numerical simulation of temperature field for the super long slab reheating of semi-endless rolling. J Iron Steel Res Int 23(8):16–20CrossRef
Metadaten
Titel
Finite element analysis of temperature uniformity in transverse induction heating process in ESP rolling
verfasst von
Wen Peng
Xiaorui Chen
Li Zhang
Xudong Li
Jie Sun
Dianhua Zhang
Publikationsdatum
07.06.2021
Verlag
Springer London
Erschienen in
The International Journal of Advanced Manufacturing Technology / Ausgabe 11-12/2021
Print ISSN: 0268-3768
Elektronische ISSN: 1433-3015
DOI
https://doi.org/10.1007/s00170-021-07386-8

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