Dynamic Behavior of Reverse Flow Reactor for Lean Methane Combustion

The stability of reactor operation for catalytic oxidation of lean CH4 has been investigated through modeling and simulation, particularly the influence of switching time and heat extraction on reverse flow reactor (RFR) performance. A mathematical model of the RFR was developed, based on one-dimens...

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Main Authors: Yogi W. Budhi, M. Effendy, Yazid Bindar, Subagjo
Format: Article
Language:English
Published: ITB Journal Publisher 2014-09-01
Series:Journal of Engineering and Technological Sciences
Subjects:
Online Access:http://journals.itb.ac.id/index.php/jets/article/view/880/533
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spelling doaj-f71c96492877444d9b4b447562e4dfe72020-11-25T03:58:33ZengITB Journal PublisherJournal of Engineering and Technological Sciences2337-57792338-55022014-09-0146329931710.5614/j.eng.technol.sci.2014.46.3.5Dynamic Behavior of Reverse Flow Reactor for Lean Methane CombustionYogi W. Budhi0M. Effendy1Yazid Bindar2Subagjo3Department of Chemical Engineering, Faculty of Industrial Technology, Institut Teknologi Bandung, Bandung, IndonesiaDepartment of Chemical Engineering, Faculty of Industrial Technology, Institut Teknologi Bandung, Bandung, IndonesiaDepartment of Chemical Engineering, Faculty of Industrial Technology, Institut Teknologi Bandung, Bandung, IndonesiaDepartment of Chemical Engineering, Faculty of Industrial Technology, Institut Teknologi Bandung, Bandung, IndonesiaThe stability of reactor operation for catalytic oxidation of lean CH4 has been investigated through modeling and simulation, particularly the influence of switching time and heat extraction on reverse flow reactor (RFR) performance. A mathematical model of the RFR was developed, based on one-dimensional pseudo-homogeneous model for mass and heat balances, incorporating heat loss through the reactor wall. The configuration of the RFR consisted of inert-catalyst-inert, with or without heat extraction that makes it possible to store the energy released by the exothermic reaction of CH4 oxidation. The objective of this study was to investigate the dynamic behavior of the RFR for lean methane oxidation and to find the optimum condition by exploring a stability analysis of the simple reactor. The optimum criteria were defined in terms of CH4 conversion, CH4 slip, and heat accumulation in the RFR. At a switching time of 100 s, the CH4 conversion reached the maximum value, while the CH4 slip attained its minimum value. The RFR could operate autothermally with positive heat accumulation, i.e. 0.02 J/s. The stability of the RFR in terms of heat accumulation was achieved at a switching time of 100 s.http://journals.itb.ac.id/index.php/jets/article/view/880/533fixed bed reactoroxidationmodeling and simulationdynamic behavior
collection DOAJ
language English
format Article
sources DOAJ
author Yogi W. Budhi
M. Effendy
Yazid Bindar
Subagjo
spellingShingle Yogi W. Budhi
M. Effendy
Yazid Bindar
Subagjo
Dynamic Behavior of Reverse Flow Reactor for Lean Methane Combustion
Journal of Engineering and Technological Sciences
fixed bed reactor
oxidation
modeling and simulation
dynamic behavior
author_facet Yogi W. Budhi
M. Effendy
Yazid Bindar
Subagjo
author_sort Yogi W. Budhi
title Dynamic Behavior of Reverse Flow Reactor for Lean Methane Combustion
title_short Dynamic Behavior of Reverse Flow Reactor for Lean Methane Combustion
title_full Dynamic Behavior of Reverse Flow Reactor for Lean Methane Combustion
title_fullStr Dynamic Behavior of Reverse Flow Reactor for Lean Methane Combustion
title_full_unstemmed Dynamic Behavior of Reverse Flow Reactor for Lean Methane Combustion
title_sort dynamic behavior of reverse flow reactor for lean methane combustion
publisher ITB Journal Publisher
series Journal of Engineering and Technological Sciences
issn 2337-5779
2338-5502
publishDate 2014-09-01
description The stability of reactor operation for catalytic oxidation of lean CH4 has been investigated through modeling and simulation, particularly the influence of switching time and heat extraction on reverse flow reactor (RFR) performance. A mathematical model of the RFR was developed, based on one-dimensional pseudo-homogeneous model for mass and heat balances, incorporating heat loss through the reactor wall. The configuration of the RFR consisted of inert-catalyst-inert, with or without heat extraction that makes it possible to store the energy released by the exothermic reaction of CH4 oxidation. The objective of this study was to investigate the dynamic behavior of the RFR for lean methane oxidation and to find the optimum condition by exploring a stability analysis of the simple reactor. The optimum criteria were defined in terms of CH4 conversion, CH4 slip, and heat accumulation in the RFR. At a switching time of 100 s, the CH4 conversion reached the maximum value, while the CH4 slip attained its minimum value. The RFR could operate autothermally with positive heat accumulation, i.e. 0.02 J/s. The stability of the RFR in terms of heat accumulation was achieved at a switching time of 100 s.
topic fixed bed reactor
oxidation
modeling and simulation
dynamic behavior
url http://journals.itb.ac.id/index.php/jets/article/view/880/533
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