Sembcorp-NUS Corporate Laboratory, National University of Singapore, Sembcorp-NUS Corporate Laboratory c/o FoE, Block E1A, #04-01, 1 Engineering Drive 2 117576, Singapore; Department of Civil & Environmental Engineering, Faculty of Engineering, National University of Singapore, Block E1A, #07-01, 1 Engineering Drive 2 117576, Singapore.
Sembcorp-NUS Corporate Laboratory, National University of Singapore, Sembcorp-NUS Corporate Laboratory c/o FoE, Block E1A, #04-01, 1 Engineering Drive 2 117576, Singapore; Department of Civil & Environmental Engineering, Faculty of Engineering, National University of Singapore, Block E1A, #07-01, 1 Engineering Drive 2 117576, Singapore.
Water Res. 2021 Feb 15;190:116692. doi: 10.1016/j.watres.2020.116692. Epub 2020 Nov 28.
In recent years, fluidized-bed Fenton (FBR-Fenton) process has gained more attention in treating recalcitrant industrial wastewater. FBR-Fenton combines the effectiveness of homogeneous Fenton and sludge reduction of heterogeneous Fenton. Comparing to other modified Fenton processes, FBR-Fenton has greater economical and scaling up potential. However, large consumption of Fenton reagents and strict pH control are still the bottlenecks hampering the full-scale application of FBR-Fenton. While prior reviews mainly focused on the operation and performance of FBR-Fenton process, the present study critically discussed the challenges and bottlenecks for its full-scale industrial application. This study also comprehensively reviewed the development strategies for tackling these drawbacks, mainly over the recent five years. Homogeneous FBR-Fenton, heterogeneous FBR-Fenton and heterogeneous FBR-photo-Fenton processes were classified for the first time according to their reaction mechanisms and system designs. Important operational and design parameters affecting the cost-effectiveness of all FBR-Fenton technologies were reviewed, including the fundamentals, common practices and even innovative steps for enhancing the process performance. Up-to-date applications of FBR-Fenton technologies in recalcitrant wastewater/compounds treatment were also summarized, and it was found that upscaling of heterogeneous FBR-Fenton and heterogeneous FBR-photo-Fenton processes was still very challenging. Strategies to overcome the key technical limitations and enhance process cost-effectiveness were discussed in the future perspective part. Furthermore, modelling techniques such as computational fluid dynamics model and artificial neural network were suggested to be promising modelling techniques for speeding up the full-scale applications of FBR-Fenton technologies.
近年来,流化床芬顿(FBR-Fenton)工艺在处理难降解工业废水方面受到了越来越多的关注。FBR-Fenton 结合了均相 Fenton 的有效性和非均相 Fenton 的污泥减少。与其他改性 Fenton 工艺相比,FBR-Fenton 具有更大的经济和扩大潜力。然而,Fenton 试剂的大量消耗和严格的 pH 控制仍然是阻碍 FBR-Fenton 全面应用的瓶颈。虽然之前的综述主要集中在 FBR-Fenton 工艺的操作和性能上,但本研究批判性地讨论了其大规模工业应用的挑战和瓶颈。本研究还全面回顾了近五年来解决这些缺点的发展策略。首次根据反应机制和系统设计,将均相 FBR-Fenton、非均相 FBR-Fenton 和非均相 FBR-光 Fenton 工艺进行了分类。综述了影响所有 FBR-Fenton 技术成本效益的重要操作和设计参数,包括基本原理、常见实践,甚至是增强工艺性能的创新步骤。还总结了 FBR-Fenton 技术在难降解废水/化合物处理中的最新应用,发现非均相 FBR-Fenton 和非均相 FBR-光 Fenton 工艺的放大仍然非常具有挑战性。在未来展望部分讨论了克服关键技术限制和提高工艺成本效益的策略。此外,还建议使用计算流体动力学模型和人工神经网络等建模技术作为加速 FBR-Fenton 技术全面应用的有前途的建模技术。