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<div class="csl-entry">Jadachowski, L., Marko, L., Kugi, A., & Steinböck, A. (2023). Frequency-Based Estimation of the B-H Curve of Steel Strips in a Continuous Induction Furnace*. In H. Ishii, Y. Ebihara, J. Imura, & M. Yamakita (Eds.), <i>22nd IFAC World Congress</i> (pp. 4627–4632). Elsevier. https://doi.org/10.1016/j.ifacol.2023.10.972</div>
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dc.identifier.uri
http://hdl.handle.net/20.500.12708/190080
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dc.description.abstract
A parameter estimation strategy for continuous inductive heating of ferromagnetic steel strips is developed and investigated. During strip processing in an induction furnace, the parameters of the magnetization curve (B-H curve) of the strip material are identified by a moving horizon estimator (MHE). This estimator uses measurements of the resonance frequency of the electric circuit. A tailored 2D harmonic model of the electromagnetic subsystem is used to calculate the complex coil impedance. Other model parameters are identified in a scenario, where the magnetization curve of the strip is known. The approach does not require a thermal model of the induction furnace in favor of the computing time and the achieved accuracy. For model validation, the simulated resonance frequency is compared with measurements. To avoid a high computational effort, the effective magnetization approach is applied to approximate the solution of the nonlinear Maxwell equations. The effective B-H curve is mathematically expressed in terms of a linear and an exponential function and parametrized by two parameters. The MHE is validated in a test scenario using a strip with a known magnetization curve.
en
dc.language.iso
en
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dc.relation.ispartofseries
IFAC-PapersOnLine
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dc.subject
Moving Horizon Estimation
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dc.subject
parameter estimation
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dc.subject
B-H-curve
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dc.subject
Induction heating
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dc.subject
effective magnetization
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dc.subject
nonlinear maxwell equations
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dc.title
Frequency-Based Estimation of the B-H Curve of Steel Strips in a Continuous Induction Furnace*