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Rennard Rennard, Swift Swift (1984)
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Vergleichende Untersuchungen zur Pyrolyse von Höhersiedenden Kohlenwasserstoff‐FraktionenErdoel Kohle, Erdgas, Petrochem. Brennst.‐Chem., 37
Bodenstein Bodenstein, Lütkemeyer Lütkemeyer (1924)
Die photochemische Bildung von Bromwasserstoff und die Bildungsgeschwindigkeit der Brommolekel aus den AtomenZ. Physik. Chem., 114
Kopinke Kopinke, Bach Bach, Ondruschka Ondruschka, Zimmermann Zimmermann (1985)
Relative Reaktivitäten von C‐H‐Bindungen bei der thermischen Spaltung Gesättigter KohlenwasserstoffeZ. Physik. Chem., 266
Green Green, Zdonik Zdonik, Hallee Hallee (1975)
Olefins Production by Gas Oil CrackingHydrocarbon Process., 54
Lohr Lohr, Ditmann Ditmann (1977)
New Gas‐Oil Model Calculates Ethylene YieldOil Gas J., 75
Allara Allara, Shaw Shaw (1980)
A Compilation of Kinetic Parameters for the Thermal Degradation of n ‐Alkane MoleculesJ. Phys. Chem. Ref. Data, 9
Clymans Clymans, Froment Froment (1984)
Computer Generation of Reaction Paths and Rate Equations in the Thermal Cracking of Normal and Branched ParaffinsComput. Chem. Eng., 8
Reaction schemes for the thermal cracking of paraffins, naphthenes, olefins, and aromatics, and the associated rate equations, are generated by an algorithm based upon Boolean relation matrices. In order to reduce calculation times for the heavier components, a self‐learning system is introduced. This self‐learning system avoids repetition of identical calculations by recognizing intermediate species, for which the reaction schemes have already been generated. The software includes routines for standardizing the representation of the species, an information retrieval system, and libraries containing the necessary information for recognition of the species and the reaction schemes for these species.
Aiche Journal – Wiley
Published: Jan 1, 1988
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