Zolfaghari Hamideh, Yousefi Fakhri, Ghaedi Mehrorang, Mosleh Soleiman
Chemistry Department, Yasouj University Yasouj 75918-74831 Iran
Polymer Engineering Department, Faculty of Gas and Petroleum, Yasouj University Gachsaran 75813-56001 Iran.
RSC Adv. 2022 Oct 14;12(45):29503-29515. doi: 10.1039/d2ra06277a. eCollection 2022 Oct 11.
Zr(CUR)/NiCoS/CuCoS and Zr(CUR)/CuCoS/AgS ternary composites were synthesized as efficient photocatalysts, and well characterized through XRD, FTIR, DRS, FE-SEM, EDS, and EDS mapping techniques. The potential of a spiral-shaped photocatalytic reactor was evaluated for degradation of the methyl parathion (MP) pesticide using synthesized photocatalysts under visible light irradiation. Computational fluid dynamics (CFD) was applied for analysis of the hydrodynamics behaviour and mass transport occurring inside the reactor. The experiments were performed based on a developed CCD-RSM model, while the desirability function (DF) was used for optimization of the process. Findings showed that the highest MP degradation percentage was 98.70% at optimal operating values including 20 mg L, 0.60 g L, 8 and 40 min for MP concentration, catalyst dosage, pH, and reaction time, respectively. This study clearly demonstrated that high degradation efficiency can be achieved using a spiral-shaped photocatalytic reactor rather than a traditional annular reactor at same conditions. The increase in reaction rate is related to the higher average turbulence kinetic energy in the spiral-shaped reactor over the traditional reactor, which results in the increased diffusivity and improves the mass and momentum transfer.
合成了Zr(CUR)/NiCoS/CuCoS和Zr(CUR)/CuCoS/AgS三元复合材料作为高效光催化剂,并通过X射线衍射(XRD)、傅里叶变换红外光谱(FTIR)、漫反射光谱(DRS)、场发射扫描电子显微镜(FE-SEM)、能谱仪(EDS)和能谱映射技术对其进行了充分表征。在可见光照射下,使用合成的光催化剂评估了螺旋形光催化反应器降解甲基对硫磷(MP)农药的潜力。应用计算流体动力学(CFD)分析反应器内发生的流体动力学行为和传质过程。实验基于建立的中心复合设计-响应曲面法(CCD-RSM)模型进行,同时使用合意函数(DF)对过程进行优化。结果表明,在最佳操作值下,MP降解率最高可达98.70%,这些最佳操作值分别为MP浓度20 mg/L、催化剂用量0.60 g/L、pH值8和反应时间40分钟。该研究清楚地表明,在相同条件下,使用螺旋形光催化反应器而非传统环形反应器可实现更高的降解效率。反应速率的提高与螺旋形反应器中比传统反应器更高的平均湍流动能有关,这导致扩散率增加,改善了质量和动量传递。