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dc.contributor.authorGao, Connie Wu
dc.contributor.authorLiu, Mengjie
dc.contributor.authorGreen Jr, William H
dc.date.accessioned2020-03-06T18:20:04Z
dc.date.available2020-03-06T18:20:04Z
dc.date.issued2020-02
dc.date.submitted2019-12
dc.identifier.issn0538-8066
dc.identifier.issn1097-4601
dc.identifier.urihttps://hdl.handle.net/1721.1/124020
dc.description.abstractUncertainty analysis is a useful tool for inspecting and improving detailed kinetic mechanisms because it can identify the greatest sources of model output error. Owing to the very nonlinear relationship between kinetic and thermodynamic parameters and computed concentrations, model predictions can be extremely sensitive to uncertainties in some parameters while uncertainties in other parameters can be irrelevant. Error propagation becomes even more convoluted in automatically generated kinetic models, where input uncertainties are correlated through kinetic rate rules and thermodynamic group values. Local and global uncertainty analyses were implemented and used to analyze error propagation in Reaction Mechanism Generator (RMG), an open‐source software for generating kinetic models. A framework for automatically assigning parameter uncertainties to estimated thermodynamics and kinetics was created, enabling tracking of correlated uncertainties. Local first‐order uncertainty propagation was implemented using sensitivities computed natively within RMG. Global uncertainty analysis was implemented using adaptive Smolyak pseudospectral approximations as implemented in the MIT Uncertainty Quantification Library to efficiently compute and construct polynomial chaos expansions to approximate the dependence of outputs on a subset of uncertain inputs. Cantera was used as a backend for simulating the reactor system in the global analysis. Analyses were performed for a phenyldodecane pyrolysis model. Local and global methods demonstrated similar trends; however, many uncertainties were significantly overestimated by the local analysis. Both local and global analyses show that correlated uncertainties based on kinetic rate rules and thermochemical groups drastically reduce a model's degrees of freedom and have a large impact on the determination of the most influential input parameters. These results highlight the necessity of incorporating uncertainty analysis in the mechanism generation workflow. Keywords: automatic reaction mechanism generation; chemical kinetics; polynomial chaos expansion; sensitivity analysis; uncertainty analysisen_US
dc.description.sponsorshipUnited States. Department of Energy. Office of Basic Energy Sciences (Award DE‐SC0014901)en_US
dc.publisherWileyen_US
dc.relation.isversionofhttp://dx.doi.org/10.1002/kin.21348en_US
dc.rightsCreative Commons Attribution-Noncommercial-Share Alikeen_US
dc.rights.urihttp://creativecommons.org/licenses/by-nc-sa/4.0/en_US
dc.sourceProf. Greenen_US
dc.titleUncertainty analysis of correlated parameters in automated reaction mechanism generationen_US
dc.typeArticleen_US
dc.identifier.citationGao, Connie Wu et al. "Uncertainty analysis of correlated parameters in automated reaction mechanism generation." International Journal of Chemical Kinetics 52, 4 (February 2020): 266-282 © 2020 Wileyen_US
dc.contributor.departmentMassachusetts Institute of Technology. Department of Chemical Engineeringen_US
dc.relation.journalInternational Journal of Chemical Kineticsen_US
dc.eprint.versionAuthor's final manuscripten_US
dc.type.urihttp://purl.org/eprint/type/JournalArticleen_US
eprint.statushttp://purl.org/eprint/status/PeerRevieweden_US
dspace.date.submission2020-01-21T18:28:45Z
mit.journal.volume52en_US
mit.journal.issue4en_US
mit.licenseOPEN_ACCESS_POLICY
mit.metadata.statusComplete


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