Sensitivity of Offline and Inline Indicators for Fiber Stretching in Continuous Polyacrylonitrile Stabilization

Author:

Sadeghi Bogar Mohsen12ORCID,Wolf Jan12ORCID,Wolz Daniel Sebastian Jens12ORCID,Seidel-Greiff Robert12,Dmitrieva Evgenia3,Israel Noel3ORCID,Rosenkranz Marco3,Behnisch Thomas12,Müller Michael Thomas4,Gude Maik12ORCID

Affiliation:

1. Institute of Lightweight Engineering and Polymer Technology (ILK), Technical University of Dresden, 01307 Dresden, Germany

2. Research Center Carbon Fibers Saxony (RCCF), Technical University of Dresden, 01069 Dresden, Germany

3. Leibniz Institute for Solid State and Materials Research Dresden (IFW), 01069 Dresden, Germany

4. Leibniz Institute for Polymer Research Dresden (IPF), 01069 Dresden, Germany

Abstract

In carbon fiber (CF) production, the stabilization process step is the most energy- and time-consuming step in comparison with carbonization and graphitization. To develop optimization routes for energy and productivity, the stabilization needs to be monitored continuously via inline analysis methods. To prognose the evolution of high-performance CF, the density of stabilized fibers has been identified as a robust pre-indicator. As the offline analysis of density is not feasible for inline analysis, a density-soft sensor based on the stabilization indices of Fourier Transform Infrared spectrum (FTIR)-analysis and Electron Paramagnetic Resonance (EPR) Spectroscopy could potentially be used for inline monitoring. In this study, a Polyacrylonitrile-based precursor fiber (PF) stabilized in a continuous thermomechanical stabilization line with varying stretching profiles was incrementally analyzed using density, FTIR-based relative cyclization index (RCI), and EPR-based free radical concentration (FRC). Our findings show RCI and EPR dependencies for density, correlated for RCI with sensitivity by stretching to cubic model parameters, while FRC exhibits linear relationships. Therefore, this study identifies two possible soft sensors for inline density measurement, enabling autonomous energy optimization within industry 4.0-based process systems.

Funder

German Federal Ministry of Education and Research

Publisher

MDPI AG

Subject

Mechanics of Materials,Biomaterials,Civil and Structural Engineering,Ceramics and Composites

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