Construction of coal fly ash-based spherical grain adsorbents and their adsorption characteristics on phenolic compounds

Xiaoya Jia , Yongjun Liu , Zhuangzhuang Yang , Aining Zhang , Pan Liu , Zhe Liu
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Abstract

Addressing the significant emissions and severe pollution hazards posed by coal fly ash waste in the coal chemical industry, as well as the challenges in recovering phenolic substances from coal chemical wastewater, this study utilized coal fly ash as a raw material to construct two types of spherical grain adsorbents: coal fly ash and coal gangue spherical grain (CFAGsg) and coal fly ash and pyrite spherical grain (CFAPsg). The adsorption performance of CFAGsg and CFAPsg towards phenolic substances in coal chemical wastewater was investigated. The research results demonstrated that CFAGsg and CFAPsg exhibited adsorption capacities of 20.31 mg/L and 30.42 mg/L for phenol, respectively, and maintained stable adsorption performance even after multiple regeneration cycles. Further analysis using kinetic, isotherm, and thermodynamic models, along with various characterization techniques, revealed that the adsorption of phenol onto CFAGsg and CFAPsg was primarily governed by physical and chemical adsorption, involving an endothermic reaction. Moreover, the study on the adsorption mechanism of phenol revealed that the adsorption behavior of CFAGsg and CFAPsg was mainly driven by pore filling, π-π stacking, and hydrogen bonding. Additionally, hydrophobic interactions were involved in the adsorption of phenol onto CFAGsg, while surface complexation forces played a role in the adsorption of phenol onto CFAPsg. Overall, the research findings provide vital theoretical support and practical application prospects for the high-value utilization of coal fly ash and the clean production of the coal chemical industry.

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粉煤灰基球形颗粒吸附剂的构建及其对酚类化合物的吸附特性
针对煤化工行业粉煤灰废弃物排放量大、污染危害严重,以及从煤化工废水中回收酚类物质的难题,本研究以粉煤灰为原料,构建了粉煤灰与煤矸石球形颗粒(CFAGsg)和粉煤灰与黄铁矿球形颗粒(CFAPsg)两种球形颗粒吸附剂。研究了 CFAGsg 和 CFAPsg 对煤化工废水中酚类物质的吸附性能。研究结果表明,CFAGsg 和 CFAPsg 对苯酚的吸附容量分别为 20.31 mg/L 和 30.42 mg/L,并且在多次再生循环后仍能保持稳定的吸附性能。利用动力学、等温线和热力学模型以及各种表征技术进行的进一步分析表明,CFAGsg 和 CFAPsg 对苯酚的吸附主要受物理和化学吸附的支配,涉及内热反应。此外,对苯酚吸附机理的研究表明,CFAGsg 和 CFAPsg 的吸附行为主要由孔隙填充、π-π 堆积和氢键驱动。此外,疏水相互作用参与了苯酚对 CFAGsg 的吸附,而表面复合力则在苯酚对 CFAPsg 的吸附中发挥了作用。总之,研究结果为粉煤灰的高值化利用和煤化工的清洁生产提供了重要的理论支持和实际应用前景。
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