Kinetics and influential factors of nanoscale iron-facilitated nitrate nitrogen removal

Song, Y. & Song, S. (March-April, 2017). Kinetics and influential factors of nanoscale iron-facilitated nitrate nitrogen removal. Water Technology and Sciences (in Spanish), 8(2), 93-103. In this paper, a new nanoscale iron adsorbent was prepared using the liquid phase reduction method. The effe...

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Published in:Tecnología y ciencias del agua
Main Authors: Song Yujia, Song Shoufa
Format: Article
Language:English
Published: Instituto Mexicano de Tecnología del Agua 2017-08-01
Subjects:
Online Access:https://www.revistatyca.org.mx/ojs/index.php/tyca/article/view/1310
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author Song Yujia
Song Shoufa
author_facet Song Yujia
Song Shoufa
author_sort Song Yujia
collection DOAJ
container_title Tecnología y ciencias del agua
description Song, Y. & Song, S. (March-April, 2017). Kinetics and influential factors of nanoscale iron-facilitated nitrate nitrogen removal. Water Technology and Sciences (in Spanish), 8(2), 93-103. In this paper, a new nanoscale iron adsorbent was prepared using the liquid phase reduction method. The effects of the initial nitrate nitrogen concentration, pH, and reaction temperature on the nitrate nitrogen removal efficiency of the nanoscale iron were investigated. The experimental results indicated that the initial nitrate nitrogen concentration significantly affected the reaction rate, but not the removal efficiency of the nanoscale iron. In addition, the optimal pH for the removal of nitrate nitrogen was 2.0. As the temperature increased, the nitrate nitrogen removal rate increased. A pseudo-second-order kinetic equation, in which the nitrate nitrogen concentration at reaction time t was used as the initial concentration, was developed in order to determine the reaction rate constant k at different temperatures. According to the results, the maximum value of k (0.014 mg/(L/min)) was observed at 50°C. The reaction activation energy Ea was approximately 17.18 kJ/mol. The reaction was primarily influenced by the mass transfer. In a neutral solution, in this case water, the reduction product of the nitrate nitrogen was ammonia nitrogen.
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spelling doaj-art-4574aa3fdfd647039bed27a2e2cb69bb2025-08-19T23:56:19ZengInstituto Mexicano de Tecnología del AguaTecnología y ciencias del agua0187-83362007-24222017-08-01829310310.24850/j-tyca-2017-02-091197Kinetics and influential factors of nanoscale iron-facilitated nitrate nitrogen removalSong Yujia0Song Shoufa1Changchun University of Science and Technology, ChinaNortheast Coal Industry Institute of Environmental Protection, ChinaSong, Y. & Song, S. (March-April, 2017). Kinetics and influential factors of nanoscale iron-facilitated nitrate nitrogen removal. Water Technology and Sciences (in Spanish), 8(2), 93-103. In this paper, a new nanoscale iron adsorbent was prepared using the liquid phase reduction method. The effects of the initial nitrate nitrogen concentration, pH, and reaction temperature on the nitrate nitrogen removal efficiency of the nanoscale iron were investigated. The experimental results indicated that the initial nitrate nitrogen concentration significantly affected the reaction rate, but not the removal efficiency of the nanoscale iron. In addition, the optimal pH for the removal of nitrate nitrogen was 2.0. As the temperature increased, the nitrate nitrogen removal rate increased. A pseudo-second-order kinetic equation, in which the nitrate nitrogen concentration at reaction time t was used as the initial concentration, was developed in order to determine the reaction rate constant k at different temperatures. According to the results, the maximum value of k (0.014 mg/(L/min)) was observed at 50°C. The reaction activation energy Ea was approximately 17.18 kJ/mol. The reaction was primarily influenced by the mass transfer. In a neutral solution, in this case water, the reduction product of the nitrate nitrogen was ammonia nitrogen.https://www.revistatyca.org.mx/ojs/index.php/tyca/article/view/1310nitrate nitrogen, water pollution, reaction kinetics, nanometer, adsorption
spellingShingle Song Yujia
Song Shoufa
Kinetics and influential factors of nanoscale iron-facilitated nitrate nitrogen removal
nitrate nitrogen, water pollution, reaction kinetics, nanometer, adsorption
title Kinetics and influential factors of nanoscale iron-facilitated nitrate nitrogen removal
title_full Kinetics and influential factors of nanoscale iron-facilitated nitrate nitrogen removal
title_fullStr Kinetics and influential factors of nanoscale iron-facilitated nitrate nitrogen removal
title_full_unstemmed Kinetics and influential factors of nanoscale iron-facilitated nitrate nitrogen removal
title_short Kinetics and influential factors of nanoscale iron-facilitated nitrate nitrogen removal
title_sort kinetics and influential factors of nanoscale iron facilitated nitrate nitrogen removal
topic nitrate nitrogen, water pollution, reaction kinetics, nanometer, adsorption
url https://www.revistatyca.org.mx/ojs/index.php/tyca/article/view/1310
work_keys_str_mv AT songyujia kineticsandinfluentialfactorsofnanoscaleironfacilitatednitratenitrogenremoval
AT songshoufa kineticsandinfluentialfactorsofnanoscaleironfacilitatednitratenitrogenremoval