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Christa Fittschen

Researcher at university of lille

Publications -  140
Citations -  3489

Christa Fittschen is an academic researcher from university of lille. The author has contributed to research in topics: Radical & Reaction rate constant. The author has an hindex of 28, co-authored 126 publications receiving 2804 citations. Previous affiliations of Christa Fittschen include Nancy-Université & University of Toronto.

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The 2015 edition of the GEISA spectroscopic database

Nicole Jacquinet-Husson, +58 more
TL;DR: The GEISA database (Gestion et Etude des Informations Spectroscopiques Atmospheriques: Management and Study of Atmospheric Spectroscopic Information) has been developed and maintained by the ARA/ABC(t) group at LMD since 1974.
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Unexpectedly high indoor hydroxyl radical concentrations associated with nitrous acid

TL;DR: It is shown that photolysis of HONO is an important source of OH radicals indoors under certain conditions (i.e., direct solar irradiation inside the room) and the OH concentrations were found to follow a linear dependence with the product J(HonO)⋅[HONO].
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Experimental and modeling study of oxidation and autoignition of butane at high pressure

TL;DR: In this article, the authors compared the experimental results with numerical predictions of an homogeneous adiabatic model based on the Pitz-Westbrook comprehensive chemical mechanism of 1990.
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The sensitizing effects of NO2 and NO on methane low temperature oxidation in a jet stirred reactor

TL;DR: In this article, a detailed kinetic mechanism derived from the POLIMI kinetic framework was used to interpret the experimental data with a good agreement between experimental data and model predictions, and reaction rate and sensitivity analysis have been conducted to illustrate the kinetic regimes.
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Experimental and Modeling Investigation of the Low-Temperature Oxidation of Dimethyl Ether.

TL;DR: A new detailed kinetic model for the oxidation of DME was developed and it was found that the low-temperature reactivity is driven by the relative importance of the second addition to O2 and the competitive decomposition reactions with an inhibiting effect.