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通过机械化学工艺合成缓释肥料,以实现从二氧化钛生产中回收废硫酸亚铁的潜在用途。

Synthesizing slow-release fertilizers via mechanochemical processing for potentially recycling the waste ferrous sulfate from titanium dioxide production.

作者信息

Li Xuewei, Lei Zhiwu, Qu Jun, Li Zhao, Zhou Xiaowen, Zhang Qiwu

机构信息

School of Resources & Environmental Engineering, Wuhan University of Technology, 430070 Wuhan, China.

School of Resources & Environmental Engineering, Wuhan University of Technology, 430070 Wuhan, China.

出版信息

J Environ Manage. 2017 Jan 15;186(Pt 1):120-126. doi: 10.1016/j.jenvman.2016.10.058. Epub 2016 Nov 4.

DOI:10.1016/j.jenvman.2016.10.058
PMID:27823903
Abstract

The goal of this study is aimed to develop a novel process to recycle the ferrous sulfate, the by-product of titanium dioxide industry. Zinc sulfate was added in the process of milling ferrous sulfate with calcium carbonate (CaCO). The sulfates were transformed into carbonates to serve as slow-release fertilizers by co-grinding the starting materials of FeSO·7HO, ZnSO·7HO, and CaCO with small amounts of water in a planetary ball mill. The prepared samples were characterized by X-ray diffraction (XRD) analysis and quantitative measurements of the soluble ratios in water and 2% citric acid solution. It was found that Fe and Zn ions as sulfates were successfully combined with CaCO to form the corresponding Fe and Zn carbonates respectively. After milling, the release ratios of Fe and Zn nutrients in distilled water could be controlled at 0.1% and 0.7% respectively. Meanwhile, the release ratios of them in 2% citric acid solution were almost 98% and 100%. Milling speed was the critical parameter to facilitate the transformation reaction. The proposed process, as an easy and economical route, exhibits evident advantages, namely allowing the use of widely available and low-cost CaCO as well as industrial wastes of heavy metal sulfates as starting samples to prepare applicable products.

摘要

本研究的目标是开发一种回收硫酸亚铁(二氧化钛工业的副产品)的新工艺。在将硫酸亚铁与碳酸钙(CaCO₃)研磨的过程中加入硫酸锌。通过在行星式球磨机中加入少量水,将FeSO₄·7H₂O、ZnSO₄·7H₂O和CaCO₃的起始原料共同研磨,使硫酸盐转化为碳酸盐,用作缓释肥料。通过X射线衍射(XRD)分析以及对在水和2%柠檬酸溶液中的溶解率进行定量测量,对制备的样品进行表征。结果发现,硫酸根形式的铁离子和锌离子分别成功地与CaCO₃结合,形成了相应的碳酸铁和碳酸锌。研磨后,铁和锌养分在蒸馏水中的释放率分别可控制在0.1%和0.7%。同时,它们在2%柠檬酸溶液中的释放率几乎分别为98%和100%。研磨速度是促进转化反应的关键参数。所提出的工艺作为一种简单且经济的途径,具有明显的优势,即允许使用广泛可得且低成本的CaCO₃以及重金属硫酸盐工业废料作为起始样品来制备适用产品。

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