Articles | Volume 13, issue 2
https://doi.org/10.5194/jsss-13-237-2024
https://doi.org/10.5194/jsss-13-237-2024
Regular research article
 | 
04 Dec 2024
Regular research article |  | 04 Dec 2024

Soft sensor system for in-process eddy current microstructure characterization

Sebastian Hütter, Yury Simonin, Gerhard Mook, and Thorsten Halle

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Cited articles

Altpeter, I., Becker, R., Dobmann, G., Kern, R., Theiner, W., and Yashan, A.: Robust solutions of inverse problems in electromagnetic non-destructive evaluation, Inverse Probl., 18, 1907–1921, https://doi.org/10.1088/0266-5611/18/6/328, 2002. 
Bihan, Y. L.: Study on the transformer equivalent circuit of eddy current nondestructive evaluation, NDT&E Int., 36, 297–302, https://doi.org/10.1016/s0963-8695(03)00003-3, 2003. 
Brosius, A., Tulke, M., and Guilleaume, C.: Non-linear model-predictive-control for thermomechanical ring rolling, in: Proceedings of the XV International Conference on Computational Plasticity: fundamentals and applications (COMPLAS 2019), 3–5 September 2019, Barcelona, Spain, ISBN 978-84-949194-7-3, http://hdl.handle.net/2117/181968 (last access: 4 December 2024), 2019. 
Desjardins, D., Krause, T. W., and Clapham, L.: Transient response of a driver-pickup coil probe in transient eddy current testing, NDT&E Int., 75, 8–14, https://doi.org/10.1016/j.ndteint.2015.04.008, 2015. 
Desjardins, D. R., Krause, T. W., Tetervak, A., and Clapham, L.: Concerning the derivation of exact solutions to inductive circuit problems for eddy current testing, NDT&E Int., 68, 128–135, https://doi.org/10.1016/j.ndteint.2014.07.008, 2014. 
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Short summary
A simple physically motivated model for measurements obtained by nondestructive testing and evaluation using eddy-current methods is created by using equivalent circuit networks that include all relevant effects. The transfer function of a network is derived and its physical meaning discussed. For use in process control, a sensor system with low-latency parameter identification is integrated into a forming process, and its abilities to monitor microstructure changes are demonstrated.