Evaluating catalytic (gas–solid) spectroscopic cells as intrinsic kinetic reactors: Methanol-to-hydrocarbon reaction as a case study

[Display omitted] •Evaluation of commercial Specac and Linkam cells as operando/in situ reactors.•Fluid dynamics analyses indicate both cells approach to few non-ideal CSTR.•Measurement of intrinsic kinetics for conversions below 60% at given conditions.•The catalyst deactivation performance is typi...

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Veröffentlicht in:Chemical engineering journal (Lausanne, Switzerland : 1996) Switzerland : 1996), 2022-12, Vol.450, p.137865, Article 137865
Hauptverfasser: Valecillos, José, Elordi, Gorka, Cui, Mengmeng, Aguayo, Andrés T., Castaño, Pedro
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Sprache:eng
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Zusammenfassung:[Display omitted] •Evaluation of commercial Specac and Linkam cells as operando/in situ reactors.•Fluid dynamics analyses indicate both cells approach to few non-ideal CSTR.•Measurement of intrinsic kinetics for conversions below 60% at given conditions.•The catalyst deactivation performance is typical of a CSTR type.•Prevention of external/internal resistances using high flowrates/low catalyst mass. Commercial spectroscopic gas–solid cell reactors are routinely used to analyze the dynamics of the catalyst (catalyst pelletized as a disc) structure and retained/adsorbed species using multiple operando techniques. These instruments have revolutionized the understanding of many catalytic reactions, including the methanol-to-hydrocarbon reactions. We propose a reaction engineering framework to evaluate spectroscopic cells based on (a) analyzing the fluid dynamic performance, (b) comparing their performance with a reference packed-bed reactor, and (c) the assessment of the external and internal mass transfer limitations. We have used a Specac HTHP and a Linkam THMS600 cell reactors coupled with the corresponding gas conditioning, spectroscopic, and mass spectrometry apparatuses. Our results reveal that these cells approach a perfect mixing only with several equivalent tanks in series and they are reliable at low catalyst loadings (thin disc) and high flowrates (low spacetimes). Under these conditions, we can avoid external-internal mass transfer limitations and fluid dynamic artifacts (e.g., bypassing or dead/stagnant volume zones), obtaining intrinsic kinetics with the corresponding operando spectroscopic signatures. The proposed methodology allows to understand the influence of process parameters and potential design modifications on the observed kinetic performance.
ISSN:1385-8947
1873-3212
DOI:10.1016/j.cej.2022.137865