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基于响应面法优化硫铁矿烧渣强化钛铁矿连续酸解过程

Optimization of pyrite cinder strengthening continuous acid decomposition of ilmenite by response surface methodology.

作者信息

Tian Congxue

机构信息

State Key Testing Laboratory of Vanadium & Titanium, Vanadium and Titanium Resource Comprehensive Utilization Key Laboratory of Sichuan Province, Panzhihua University, Panzhihua, 617000, Sichuan, People's Republic of China.

出版信息

Sci Rep. 2024 Dec 30;14(1):31984. doi: 10.1038/s41598-024-83586-y.

Abstract

Pyrite cinder could release more heat to improve he acid decomposition reaction of ilmenite, lower concentrations of sulfuric acid, increase the amount of TiO waste acid reused, reduce titanium gypsum emissions, and promote the green and sustainable development of TiO. Using pyrite cinder as strengthening activator, the continuous acid decomposition conditions for ilmenite were optimized by using response surface methodology based on Box-Behnken design method. The acid decomposition conditions such as acid ilmenite ratio, acid concentration and pyrite cinder dosage mainly affected the reaction temperature, reaction equilibrium, reaction velocity, volatilization degree of water and sulfuric acid, ultimately affecting the solidification degree of the products and reaction yields. Pyrite cinder could improve the exothermic behavior, raise the reaction temperature and obtain higher acid decomposition yield. The prediction model for the acid decomposition parameters was with good fitting result and could be used to predict the reaction yields or optimize the reaction parameter values. The prediction model was significant and reliable with actual correlation coefficient R of 0.9989. The synergistic interaction was very obvious, and the interaction between acid ilmenite ratio and acid concentration was larger than the other two interactive factors. Verification experiments confirmed the predicted yields could be achieved above 98.26% under the optimal conditions, proving the model had a high level of significance, confirming the reliability of the experimental operation. The continuous acid decomposition process had lower raw material consumption, higher TiO yield, fully reusing of 65.35% titanium dioxide waste acid, and comprehensive utilization of pyrite cinder, making it cleaner and more environmentally friendly.

摘要

硫铁矿烧渣能够释放更多热量以促进钛铁矿的酸分解反应,降低硫酸浓度,增加钛白废酸的回用次数,减少钛石膏排放,推动钛白行业的绿色可持续发展。以硫铁矿烧渣为强化活化剂,基于Box-Behnken设计法采用响应面法优化钛铁矿的连续酸解条件。酸矿比、酸浓度和硫铁矿烧渣用量等酸解条件主要影响反应温度、反应平衡、反应速率、水和硫酸的挥发程度,最终影响产物的固化程度和反应产率。硫铁矿烧渣能够改善放热行为,提高反应温度并获得更高的酸解产率。酸解参数预测模型拟合效果良好,可用于预测反应产率或优化反应参数值。预测模型显著可靠,实际相关系数R为0.9989。协同作用非常明显,酸矿比与酸浓度之间的相互作用大于其他两个交互因素。验证实验表明,在最优条件下预测产率可达98.26%以上,证明模型具有较高的显著性,验证了实验操作的可靠性。连续酸解工艺原料消耗低、钛白产率高,钛白废酸回用率达65.35%,硫铁矿烧渣得到综合利用,更加清洁环保。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/372a/11685904/01df543b6d6b/41598_2024_83586_Fig1_HTML.jpg

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