Removal of Model Aromatic Hydrocarbons from Aqueous Media with a Ferric Sulfate–Lime Softening Coagulant System

Surfaces Pub Date : 2022-09-22 DOI:10.3390/surfaces5040030
Deysi J. Venegas-García, L. Wilson
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引用次数: 1

Abstract

The removal of model hydrocarbon oil systems (4-nitrophenol (PNP) and naphthalene) from laboratory water was evaluated using a ferric sulfate and a lime-softening coagulant system. This study addresses the availability of a methodology that documents the removal of BTEX related compounds and optimizes the ferric-based coagulant system in alkaline media. The Box–Behnken design with Response Surface Methodology enabled the optimization of the conditions for the removal (%) of the model compounds for the coagulation process. Three independent variables were considered: coagulant dosage (10–100 mg/L PNP and 30–100 mg/L naphthalene), lime dosage (50–200%), and initial pollutant concentration (1–35 mg/L PNP and 1–25 mg/L naphthalene). The response optimization showed a 28% removal of PNP at optimal conditions: 74.5 mg/L ferric sulfate, 136% lime dosage, and initial PNP concentration of 2 mg/L. The optimal conditions for naphthalene removal were 42 mg/L ferric sulfate, 50% lime dosage, and an initial concentration of naphthalene (16.3 mg/L) to obtain a 90% removal efficiency. The coagulation process was modeled by adsorption isotherms (Langmuir for PNP; Freundlich for Naphthalene). The surface properties of flocs were investigated with pHpzc, solid-state UV absorbance spectra, and optical microscopy to gain insight into the role of adsorption in the ferric coagulation process.
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硫酸铁-石灰软化混凝剂系统去除水介质中模型芳烃
采用硫酸铁和石灰软化混凝剂体系对实验室水中的模型烃类油体系(4-硝基酚(PNP)和萘)的去除效果进行了评价。本研究解决了一种方法的可用性,该方法记录了BTEX相关化合物的去除,并优化了碱性介质中铁基混凝剂系统。采用响应面法的Box-Behnken设计优化了混凝过程中模型化合物去除率(%)的条件。考虑三个自变量:混凝剂用量(10-100 mg/L PNP和30-100 mg/L萘)、石灰用量(50-200%)和初始污染物浓度(1-35 mg/L PNP和1-25 mg/L萘)。在硫酸铁74.5 mg/L、石灰投加量136%、初始PNP浓度为2 mg/L的条件下,PNP去除率为28%。对萘的最佳去除率为:硫酸铁42 mg/L、石灰投加量50%、萘初始浓度16.3 mg/L,去除率为90%。用吸附等温线模拟混凝过程(Langmuir for PNP;Freundlich表示萘)。利用pHpzc、固态紫外吸收光谱和光学显微镜对絮凝体的表面性质进行了研究,以了解吸附在铁絮凝过程中的作用。
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