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Removal of petroleum sulfonate from aqueous solution by hydroxide precipitates generated from leaching solution of white mud

机译:由白泥浸出溶液产生的氢氧化物沉淀从水溶液中去除石油磺酸盐

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Freshly generated hydroxide precipitates (FGHPs), which was prepared by adding the leaching solution of white mud (LSWM) to highly alkaline solution, was used to remove petroleum sulfonate (PS) from aqueous solution. The chemical composition of the white mud and petroleum sulfonate were determined by X-ray fluorescence spectrometry and gas chromatography-mass spectrometry. The surface properties of the FGHPs and PS-FGHPs were characterized by X-ray diffraction, transmission electron microscopy, Fourier transform infrared spectroscopy and zeta potential analyzer. The FGHPs displayed excellent treatment efficiency for PS at pH 12.0. The maximum equilibrium removal efficiency of PS was reached within 60 s. The maximum adsorption capacity of FGHPs for PS was 3798.06 mg/g at 303 K and pH 12.0. The Langmuir isotherm was the best choice to describe the adsorption behavior. The kinetic data fitted the pseudo-second-order kinetic model. Thermodynamic parameters suggested that the adsorption of PS onto FGHPs occurred via physisorption and was exothermic. Electrostatic attraction and hydrogen bonding were the main adsorption mechanisms. Moreover, adhesion and cohesion also strong affected the co-precipitation/adsorption process. Liquid bridges via hydrogen bonding, adhesive and cohesive forces linked up with MOH+/M(OH)(2) particles and the surfactant molecules to form a three-dimensional network structure and lead to deposition. (C) 2014 Elsevier B.V. All rights reserved.
机译:通过将白泥浸出液(LSWM)添加到高碱性溶液中而制备的新鲜生成的氢氧化物沉淀(FGHP)用于从水溶液中去除石油磺酸盐(PS)。通过X射线荧光光谱法和气相色谱-质谱法测定白泥和石油磺酸盐的化学组成。通过X射线衍射,透射电子显微镜,傅立叶变换红外光谱和Zeta电位分析仪对FGHP和PS-FGHP的表面性能进行了表征。 FGHP在pH 12.0时对PS表现出出色的处理效率。 PS的最大平衡去除效率在60 s内达到。 FGHP对PS的最大吸附容量在303 K和pH 12.0时为3798.06 mg / g。 Langmuir等温线是描述吸附行为的最佳选择。动力学数据拟合伪二级动力学模型。热力学参数表明,PS通过物理吸附发生在FGHP上的吸附是放热的。静电吸引和氢键是主要的吸附机理。而且,粘附力和内聚力也强烈影响共沉淀/吸附过程。液体通过氢键,粘附力和内聚力与MOH + / M(OH)(2)颗粒和表面活性剂分子连接,形成三维网络结构并导致沉积。 (C)2014 Elsevier B.V.保留所有权利。

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