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A Novel Dual Fuel Reaction Mechanism for Ignition in Natural Gas–Diesel Combustion

doi: 10.3390/en12224396
A Novel Dual Fuel Reaction Mechanism for Ignition in Natural Gas–Diesel Combustion
In this study, a reaction mechanism is presented that is optimized for the simulation of the dual fuel combustion process using n-heptane and a mixture of methane/propane as surrogate fuels for diesel and natural gas, respectively. By comparing the measured and calculated ignition delay times (IDTs) of different homogeneous methane–propane–n-heptane mixtures, six different n-heptane mechanisms were investigated and evaluated. The selected mechanism was used for computational fluid dynamics (CFD) simulations to calculate the ignition of a diesel spray injected into air and a natural gas–air mixture. The observed deviations between the simulation results and the measurements performed with a rapid compression expansion machine (RCEM) and a combustion vessel motivated the adaptation of the mechanism by adjusting the Arrhenius parameters of individual reactions. For the identification of the reactions suitable for the mechanism adaption, sensitivity and flow analyzes were performed. The adjusted mechanism is able to describe ignition phenomena in the context of natural gas–diesel, i.e., dual fuel combustion.
Technology, dual fuel combustion; methane–propane–<i>n</i>-heptane mixtures; ignition delay time; reaction kinetics; computational fluid dynamics simulation; rapid compression machine; shock tube; sensitivity analysis; flow analysis, T, shock tube, dual fuel combustion, rapid compression machine, sensitivity analysis, flow analysis, computational fluid dynamics simulation, ignition delay time, reaction kinetics, methane–propane–<i>n</i>-heptane mixtures
Technology, dual fuel combustion; methane–propane–<i>n</i>-heptane mixtures; ignition delay time; reaction kinetics; computational fluid dynamics simulation; rapid compression machine; shock tube; sensitivity analysis; flow analysis, T, shock tube, dual fuel combustion, rapid compression machine, sensitivity analysis, flow analysis, computational fluid dynamics simulation, ignition delay time, reaction kinetics, methane–propane–<i>n</i>-heptane mixtures
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