Leandro G. Aguiar
University of São Paulo
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Featured researches published by Leandro G. Aguiar.
Environmental Technology | 2018
Hélcio José Izário Filho; Adriano Francisco Siqueira; Marco Aurélio Kondracki de Alcântara; Leandro G. Aguiar; Alessandro Sampaio Cavalcanti
ABSTRACT Natural effluents with marked variation in their chemical composition over decomposition time in the matrix from which they are generated have a complex composition and are not totally known in most cases. Landfill leachate can be considered an effluent with complex composition, requiring imminent and more comprehensive studies on organic load degradation. Such complexity of numerous organic compounds (most of them recalcitrant humic and fulvic substances) demands a large number of kinetic equations to satisfactorily describe the temporal evolution of such conversion. Thereby, this work aims to study a kinetic approach grounded on previously consolidated chemical reactions of radical generation through the photo-Fenton mechanism. A molar balance was developed for each species in a batch photo-Fenton process and the resulting ordinary differential equations were numerically solved in MATLABTM. The kinetic model satisfactorily described an organic load conversion of the effluent under the various experimental conditions studied herein. Experimental trends could be represented by a free-radical mechanism and a degradation rate equation of first order for organic carbon, hydroxyl radical and H+. The model fittings revealed a hydroxyl radical/organic carbon stoichiometric ratio of 2:1. The kinetic study has confirmed the importance of pH levels for the reaction medium, and indicated that degradation rate depends on the medium organic composition, which provided an exponential function of conversion for the degradation rate coefficient. The model simulations corroborated the positive effect of sunlight on the radical generation through decomposition reaction with a rate coefficient in the range 4 × 10−3–2 × 10−1 s−1. GRAPHICAL ABSTRACT
Macromolecular Reaction Engineering | 2014
Leandro G. Aguiar; Miguel Gonçalves; Virgínia Pinto; Rolando Dias; Mário Rui P. F. N. Costa; Reinaldo Giudici
Macromolecular Reaction Engineering | 2013
Miguel Gonçalves; Virgínia Pinto; Rolando Dias; Mário Rui P. F. N. Costa; Leandro G. Aguiar; Reinaldo Giudici
Macromolecular Reaction Engineering | 2014
Leandro G. Aguiar; Miguel Gonçalves; Virgínia Pinto; Rolando Dias; Mário Rui P. F. N. Costa; Reinaldo Giudici
Macromolecular Theory and Simulations | 2015
Leandro G. Aguiar
Macromolecular Theory and Simulations | 2011
Leandro G. Aguiar; Pedro de Alcântara Pessôa-Filho; Reinaldo Giudici
Macromolecular Reaction Engineering | 2017
Vinícius Rafael Neris dos Santos; Leandro G. Aguiar; Reinaldo Giudici
Heat and Mass Transfer | 2016
Vanessa de Cassia Raymundi; Leandro G. Aguiar; Esmar F. Souza; Ana Claudia Sato; Reinaldo Giudici
European Polymer Journal | 2016
Leandro G. Aguiar; Esmar F. Souza; Reinaldo Giudici
Polymer International | 2016
Leandro G. Aguiar