磁颗粒在含油废水油水分离中的应用

Application of magnetic particles in oil-water separation of oily wastewater

  • 摘要: 含油废水会损害工业生产、经济和环境,甚至危害人体健康。应用磁颗粒处理含油废水具备性能优异、制备简单、绿色清洁、能够循环使用等优点,具有强大的应用潜力。本文从含油废水的来源与性质出发,介绍了磁颗粒处理含油废水的油水分离原理与过程,系统总结了用于油水分离磁颗粒的结构、油水分离实践及循环再生策略,分析各因素对颗粒油水分离性能的影响,并对协同方法及相关装置设备进行了介绍,最后对该领域未来发展进行了前景展望。本文对于新型油水分离用磁颗粒的设计、合成及应用研究具有参考价值。

     

    Abstract: Oily wastewater, a byproduct of various industrial processes such as petroleum refining, metal processing, and food production, poses significant threats to industrial production, economic development, and environmental sustainability. Its improper disposal can lead to equipment corrosion, pipeline blockages, and even fires, causing substantial economic losses. Moreover, the release of oily wastewater into the environment contaminates water bodies, harms aquatic ecosystems, and jeopardizes human health through the food chain. Therefore, developing efficient and environmentally friendly technologies for oily wastewater treatment is of paramount importance. Among various treatment methods, the use of magnetic particles has emerged as a promising approach due to its unique advantages. Magnetic particles exhibit excellent oil-water separation performance, enabling efficient removal of oil droplets from wastewater. Their simple preparation process, often involving co-precipitation or sol-gel methods, allows for cost-effective large-scale production. Furthermore, magnetic particles are environmentally friendly, as they can be easily recovered and reused through magnetic separation, minimizing secondary pollution. These advantages make magnetic particles highly attractive for practical applications in oily wastewater treatment. This paper provides a comprehensive review of the application of magnetic particles in oily wastewater treatment. It begins by discussing the sources and characteristics of oily wastewater, highlighting the complexity and challenges associated with its treatment. Subsequently, the principles and processes of oil-water separation using magnetic particles are introduced, emphasizing the role of surface properties, magnetic responsiveness, and particle size in determining separation efficiency. The paper then systematically summarizes the different structures of magnetic particles employed for oil-water separation, including core-shell structures, Janus particles, and magnetic composites. Each structure offers unique advantages in terms of oil adsorption capacity, selectivity, and recyclability. Practical applications of magnetic particles in various industries, such as oil spill cleanup, produced water treatment, and emulsion separation, are also discussed, demonstrating their versatility and effectiveness. Furthermore, the paper delves into the regeneration strategies for magnetic particles, which are crucial for their sustainable application. Thermal regeneration, solvent washing, and magnetic field-assisted regeneration are among the methods explored, with their advantages and limitations analyzed. The factors influencing the oil-water separation performance of magnetic particles, such as surface wettability, magnetic field strength, and operating conditions, are also thoroughly examined. To enhance the performance of magnetic particles, synergistic methods combining magnetic separation with other techniques, such as flocculation, filtration, and advanced oxidation, are reviewed. Additionally, the paper provides an overview of the equipment used for magnetic separation. Specifically, two prevalent operational principles are discussed: one involves fixing magnetic particles in place and allowing oily wastewater to flow through them, while the other entails adding magnetic particles to the wastewater, mixing them thoroughly to adsorb dispersed oil, and subsequently separating the magnetic particle-oil mixture from the water using magnetic selection. These two approaches are analyzed in terms of their efficiency, scalability, and suitability for different types of oily wastewater. Finally, the paper offers a forward-looking perspective on the future developments in this field. It identifies key research directions, such as the development of novel magnetic materials with enhanced performance, the integration of magnetic separation with other technologies for improved efficiency, and the exploration of new applications in emerging fields. This paper serves as a valuable reference for researchers and engineers involved in the design, synthesis, and application of magnetic particles for oil-water separation, contributing to the advancement of sustainable oily wastewater treatment technologies.

     

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