Removal of polycyclic aromatic hydrocarbons (PAHs) in conventional drinking water treatment processes
The presence of polycyclic aromatic hydrocarbons (PAHs) in water poses a serious threat to the human health due to their toxic effects. Therefore, the removal of these compounds from drinking water in Potable Water Treatment Plants (PWTPs) should be evaluated and optimized to assure the quality of w...
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Published in | Journal of contaminant hydrology Vol. 243; p. 103888 |
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Main Authors | , , , |
Format | Journal Article |
Language | English |
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01.12.2021
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Abstract | The presence of polycyclic aromatic hydrocarbons (PAHs) in water poses a serious threat to the human health due to their toxic effects. Therefore, the removal of these compounds from drinking water in Potable Water Treatment Plants (PWTPs) should be evaluated and optimized to assure the quality of water intended for human consumption. In this work, changes in PAHs levels during drinking water treatment processes have been monitored to evaluate the effectiveness of conventional processes in the removal of these recalcitrant pollutants. Several chemical treatment methods based on the addition of KMnO4, FeCl3 and NaClO were evaluated through jar tests. The analysis of PAH content of aqueous samples was carried out by gas chromatography coupled with mass spectrometry. The highest removal efficiency, over 90%, was obtained for benzo(a)anthracene, benzo(a)pyrene and dibenzo(a,h)anthracene. The most recalcitrant compounds to degradation were fluorene, anthracene, phenanthrene and flouranthene with reduction rates between 45 and 57%. The conventional treatment processes assessed have been proved to be effective reducing the PAH below the legal limits of drinking water quality. The definition of a parameter based on chemical properties of PAHs, i.e., sorption capacity and energy required to remove an electron, enabled the prediction of removal rate of pollutants which represents a valuable information for the plant operation.
•PAHs removal in drinking water using KMnO4, FeCl3 and NaClO.•Parameter based on chemical properties to predict the removal rate of PAHs in water.•Effective reduction of PAHs applying conventional drinking water treatment processes. |
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AbstractList | The presence of polycyclic aromatic hydrocarbons (PAHs) in water poses a serious threat to the human health due to their toxic effects. Therefore, the removal of these compounds from drinking water in Potable Water Treatment Plants (PWTPs) should be evaluated and optimized to assure the quality of water intended for human consumption. In this work, changes in PAHs levels during drinking water treatment processes have been monitored to evaluate the effectiveness of conventional processes in the removal of these recalcitrant pollutants. Several chemical treatment methods based on the addition of KMnO
, FeCl
and NaClO were evaluated through jar tests. The analysis of PAH content of aqueous samples was carried out by gas chromatography coupled with mass spectrometry. The highest removal efficiency, over 90%, was obtained for benzo(a)anthracene, benzo(a)pyrene and dibenzo(a,h)anthracene. The most recalcitrant compounds to degradation were fluorene, anthracene, phenanthrene and flouranthene with reduction rates between 45 and 57%. The conventional treatment processes assessed have been proved to be effective reducing the PAH below the legal limits of drinking water quality. The definition of a parameter based on chemical properties of PAHs, i.e., sorption capacity and energy required to remove an electron, enabled the prediction of removal rate of pollutants which represents a valuable information for the plant operation. The presence of polycyclic aromatic hydrocarbons (PAHs) in water poses a serious threat to the human health due to their toxic effects. Therefore, the removal of these compounds from drinking water in Potable Water Treatment Plants (PWTPs) should be evaluated and optimized to assure the quality of water intended for human consumption. In this work, changes in PAHs levels during drinking water treatment processes have been monitored to evaluate the effectiveness of conventional processes in the removal of these recalcitrant pollutants. Several chemical treatment methods based on the addition of KMnO4, FeCl3 and NaClO were evaluated through jar tests. The analysis of PAH content of aqueous samples was carried out by gas chromatography coupled with mass spectrometry. The highest removal efficiency, over 90%, was obtained for benzo(a)anthracene, benzo(a)pyrene and dibenzo(a,h)anthracene. The most recalcitrant compounds to degradation were fluorene, anthracene, phenanthrene and flouranthene with reduction rates between 45 and 57%. The conventional treatment processes assessed have been proved to be effective reducing the PAH below the legal limits of drinking water quality. The definition of a parameter based on chemical properties of PAHs, i.e., sorption capacity and energy required to remove an electron, enabled the prediction of removal rate of pollutants which represents a valuable information for the plant operation. •PAHs removal in drinking water using KMnO4, FeCl3 and NaClO.•Parameter based on chemical properties to predict the removal rate of PAHs in water.•Effective reduction of PAHs applying conventional drinking water treatment processes. |
ArticleNumber | 103888 |
Author | Gutierrez-Urbano, Isabel Rodriguez-Maroto, Jose M. Villen-Guzman, Maria Perez-Recuerda, Rocio |
Author_xml | – sequence: 1 givenname: Isabel surname: Gutierrez-Urbano fullname: Gutierrez-Urbano, Isabel organization: Malaga Municipal Water Company, (EMASA). 29016 Malaga, Spain – sequence: 2 givenname: Maria surname: Villen-Guzman fullname: Villen-Guzman, Maria email: mvillen@uma.es organization: Department of Chemical Engineering, Faculty of Sciences, University of Malaga, 29071 Malaga, Spain – sequence: 3 givenname: Rocio surname: Perez-Recuerda fullname: Perez-Recuerda, Rocio organization: Malaga Municipal Water Company, (EMASA). 29016 Malaga, Spain – sequence: 4 givenname: Jose M. surname: Rodriguez-Maroto fullname: Rodriguez-Maroto, Jose M. organization: Department of Chemical Engineering, Faculty of Sciences, University of Malaga, 29071 Malaga, Spain |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/34592638$$D View this record in MEDLINE/PubMed |
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Keywords | Jar tests PAHs removal Conventional treatment Potable water purification plant |
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SubjectTerms | Benzo(a)pyrene - analysis Conventional treatment Drinking Water - analysis Humans Jar tests PAHs removal Polycyclic Aromatic Hydrocarbons - analysis Potable water purification plant Water Pollutants, Chemical - analysis Water Purification Water Quality |
Title | Removal of polycyclic aromatic hydrocarbons (PAHs) in conventional drinking water treatment processes |
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