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dc.contributor.advisorElbashir, Nimir O
dc.contributor.advisorLinke, Patrick
dc.creatorChalliwala, Mohamedsufiyan A
dc.date.accessioned2020-02-27T20:24:24Z
dc.date.available2020-02-27T20:24:24Z
dc.date.created2016-05
dc.date.issued2016-04-08
dc.date.submittedMay 2016
dc.identifier.urihttps://hdl.handle.net/1969.1/187423
dc.description.abstractDry reforming of methane is one of the few chemical reactions which can effectively convert carbon dioxide (CO2), a major green-house gas, into a valuable chemical precursor, syngas (a mixture of CO and H2), that can be converted into chemicals and fuels via different synthesis routes such as the Fischer Tropsch synthesis. The inherent limitations of dry reforming reaction, for instance, rapid catalyst deactivation by coke deposition and the very high energy requirements, has restricted its use as a commercial technology. This study was performed to evaluate the potential of overcoming the limitations of dry reforming by integrating it with other commercial methane reforming technologies such as steam reforming and partial oxidation reforming in the context of industrial operating conditions. A thermodynamic and kinetic analysis of the combined reforming has been conducted using the software suite MATLAB®. The aim of this complicated assessment is to identify optimized combination of the three reformers and also the corresponding operating conditions that would utilize significant amount of CO2 while ensuring CO2 fixation, minimum carbon formation and optimum energy requirements. The thermodynamic equilibrium product distribution calculations involved the Peng Robinson (PR), Redlich Kwong (RK) and Soave Redlich Kwong (SRK) equations of state (EOS) to identify the best EOS that accounts for the non-ideality associated with the high pressure operation. The study evaluated simultaneous effects of temperature (200 °C to 1200 °C), pressure (1 to 20 bar) and feed mole ratios (of methane, steam, carbon dioxide and oxygen) on the equilibrium product distribution. The addition of oxygen and steam to dry reforming helped in decreasing energy requirements while simultaneously increasing the syngas yield ratio (H2:CO ratio). The numerical evaluation revealed an optimized operating condition of ~750 °C at 1 bar pressure at a feed mole ratio CH4: H2O: O2: CO2 of 1:0.4:0.3:1. For this optimization, the system boundaries were limited only to a reformer block without considering the upstream and downstream processes. At this optimized condition, the carbon deposition was eliminated and the CO2 conversion was observed to be 52% with an energy requirement of 180 kJ. The study is further extended to include kinetic analysis of combined dry and steam reforming of methane. The preliminary findings of kinetic evaluation indicated an excellent agreement between combined kinetic models with the thermodynamic equilibrium results. This work thus lays a foundation for the experimental investigation which will be aimed at the development of a very noble class of catalysts that will be able to resist carbon deposition in a dry reforming process.en
dc.format.mimetypeapplication/pdf
dc.language.isoen
dc.subjectdry reformingen
dc.subjectreformingen
dc.subjectpartial oxidationen
dc.subjectcombined reformingen
dc.subjectsteam reformingen
dc.subjectkineticsen
dc.subjectthermodynamicsen
dc.titleKKinetic and Thermodynamic Analysis of Combined Dry, Steam and Partial Oxidation Reforming of Methaneen
dc.typeThesisen
thesis.degree.departmentChemical Engineeringen
thesis.degree.disciplineChemical Engineeringen
thesis.degree.grantorTexas A&M Universityen
thesis.degree.nameMaster of Scienceen
thesis.degree.levelMastersen
dc.contributor.committeeMemberQaraqe, Khalid
dc.type.materialtexten
dc.date.updated2020-02-27T20:24:24Z
local.etdauthor.orcid0000-0001-8013-7688


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