Guy B. Marin

According to our database1, Guy B. Marin authored at least 15 papers between 2006 and 2020.

Collaborative distances:
  • Dijkstra number2 of five.
  • Erdős number3 of four.

Timeline

Legend:

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Article 
PhD thesis 
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Links

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Bibliography

2020
Single-Route Linear Catalytic Mechanism: A New, Kinetico-Thermodynamic Form of the Complex Reaction Rate.
Symmetry, 2020

New Invariant Expressions in Chemical Kinetics.
Entropy, 2020

2019
The switching point between kinetic and thermodynamic control.
Comput. Chem. Eng., 2019

Complex reaction network generation for Steady State Isotopic Transient Kinetic Analysis: Fischer-Tropsch Synthesis.
Comput. Chem. Eng., 2019

2018
Automated reaction database and reaction network analysis: extraction of reaction templates using cheminformatics.
J. Cheminformatics, 2018

2015
Symmetry calculation for molecules and transition states.
J. Comput. Chem., 2015

New Patterns in Steady-State Chemical Kinetics: Intersections, Coincidences, Map of Events (Two-Step Mechanism).
Entropy, 2015

2014
GPU based simulation of reactive mixtures with detailed chemistry in combination with tabulation and an analytical Jacobian.
Comput. Chem. Eng., 2014

2013
Intersections and coincidences in chemical kinetics: Linear two-step reversible-irreversible reaction mechanism.
Comput. Math. Appl., 2013

2012
Coupled simulation of an industrial naphtha cracking furnace equipped with long-flame and radiation burners.
Comput. Chem. Eng., 2012

2011
Comparison of Eulerian-Lagrangian and Eulerian-Eulerian method for dilute gas-solid flow with side inlet.
Comput. Chem. Eng., 2011

Accuracy and convergence rate of steady-state simulation of one-dimensional, reactive gas flow with molar expansion.
Comput. Chem. Eng., 2011

2009
Modeling the evaporation of a hydrocarbon feedstock in the convection section of a steam cracker.
Comput. Chem. Eng., 2009

2007
Molecular reconstruction of naphtha steam cracking feedstocks based on commercial indices.
Comput. Chem. Eng., 2007

2006
CFD simulations of steam cracking furnaces using detailed combustion mechanisms.
Comput. Chem. Eng., 2006


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