On-Line runaway detection in batch reactors using chaos theory techniques

In this work nonlinear time‐series analysis using delay coordinate embedding was applied to simulated temperature data from isoperibolic batch reactors to develop an early‐warning detection system of the runaway. In the first part of this study an early‐warning detection criterion, that is, when the...

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Veröffentlicht in:AIChE journal 1999-11, Vol.45 (11), p.2429-2443
Hauptverfasser: Strozzi, F., Zaldívar, J. M., Kronberg, A. E., Westerterp, K. R.
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container_end_page 2443
container_issue 11
container_start_page 2429
container_title AIChE journal
container_volume 45
creator Strozzi, F.
Zaldívar, J. M.
Kronberg, A. E.
Westerterp, K. R.
description In this work nonlinear time‐series analysis using delay coordinate embedding was applied to simulated temperature data from isoperibolic batch reactors to develop an early‐warning detection system of the runaway. In the first part of this study an early‐warning detection criterion, that is, when the divergence of the system becomes positive on a segment of the reaction path, was developed and compared with previous criteria. This criterion has the property of being preserved under phase‐space reconstruction and, hence, it is possible to calculate it when only temperature data are available. This reconstructed divergence is compared with the theoretically calculated divergence using temperature and conversion data. The comparison demonstrates the validity of such an approach finding a new path, lying between the simple use of measured variables and the complex model‐based reconstruction techniques, to assess in advance hazardous situations in chemical reactors.
doi_str_mv 10.1002/aic.690451116
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subjects Applied sciences
Chemical engineering
Exact sciences and technology
Reactors
title On-Line runaway detection in batch reactors using chaos theory techniques
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