斜发沸石与Fe(O)OH复合去除Cu(II)和Pb(II)的固液分离研究

Discover chemical engineering Pub Date : 2025-01-01 Epub Date: 2025-02-25 DOI:10.1007/s43938-025-00075-y
Jennifer N Enemmoh, David Harbottle, Muhammad Yusuf, Timothy N Hunter
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引用次数: 0

摘要

本研究将细粒斜沸石与氢氧化铁混凝剂结合,作为一种经济高效的双用途絮凝剂,用于增强Pb2 +或Cu2 +的去除,并进行固液分离和理化分析。对于斜沸石,吸附动力学符合具有较高速率常数的准二阶(PSO)速率模型,而平衡吸附数据符合Langmuir单层模型,Pb2+和Cu2+的最大Q值相似,分别为18.8 mg/g和18.3 mg/g。斜发沸石的TEM元素图证明了K和Fe杂质的区域,而SEM显示了由装饰FeOOH的斜发沸石核心组成的均匀分布的聚集体。x射线衍射(XRD)表明,FeOOH相为α-FeOOH(针铁矿),吸附Pb2+包合后结构未发生变化。斜发沸石-FeOOH复合絮凝体明显大于单一FeOOH沉淀,而由0.5 wt% FeOOH和1 wt%斜发沸石形成的絮凝体沉降速度最快,固结效果最好。压缩屈服应力数据还与组合体系的脱水增强有关,因为致密的斜沸石起到了增重材料的作用。对于最终的金属去除率,组合絮凝体在很宽的浓度范围内都优于FeOOH, Pb2 +或Cu2 +的去除率都达到了98%。更大的金属去除率结合更密集的絮凝产生和改进的沉降特性,显著提高了离子交换或沉淀的性能。图片摘要:补充资料:在线版本包含补充资料,下载地址:10.1007/s43938-025-00075-y。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Combined clinoptilolite and Fe(O)OH for efficient removal of Cu(II) and Pb(II) with enhanced solid-liquid separation.

This study investigated combining fine clinoptilolite with iron hydroxide coagulant, as a cost-effective, dual-purpose flocculant for enhanced removal of Pb2⁺ or Cu2⁺ ions, along with the solid-liquid separation and physicochemical analysis. For the clinoptilolite, adsorption kinetics fitted a pseudo-second-order (PSO) rate model with higher rate constants for Pb2+, while equilibrium adsorption data fitted the Langmuir monolayer model, with Q max similar at 18.8 mg/g for Pb2+ and 18.3 mg/g Cu2+. TEM elemental mapping of the clinoptilolite evidenced areas of K and Fe impurities, while SEM suggested a uniform distribution of aggregates comprising a clinoptilolite core with decorated FeOOH. X-ray diffraction (XRD) indicated the FeOOH phase as α-FeOOH (Goethite) with no change in structure on inclusion of adsorbed Pb2+. Combined clinoptilolite-FeOOH flocs were significantly larger than FeOOH only precipitates, while flocs formed from 0.5 wt% FeOOH and 1 wt% clinoptilolite produced the fastest settling rates and greatest consolidation. Compressive yield stress data also correlated with enhanced dewatering of the combined systems, due to the dense clinoptilolite acting as a weighter material. For final metals removal, combined flocs outperformed FeOOH across a broad concentration range, achieving > 98% removal for both Pb2⁺ or Cu2⁺. The greater metals removal combined with denser floc production and improved settling features highlights significantly enhanced performance above that possible from either ion exchange or precipitation alone.

Graphical abstract:

Supplementary information: The online version contains supplementary material available at 10.1007/s43938-025-00075-y.

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