Studying the Performance of Aminotrimethylenephosphonic Acid for the Removal of Iron with Subsequent Recovery of Uranium from Sulfate Leach Liquor

IF 0.9 Q4 CHEMISTRY, INORGANIC & NUCLEAR Radiochemistry Pub Date : 2024-12-11 DOI:10.1134/S1066362224050059
Walid M. Youssef, Entesar M. El Gammal, Sherien H. Ahmed, Mostafa I. Amin
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Abstract

This study examined the effectiveness of using aminotrimethylenephosphonic acid (ATMP) as a chelating agent to remove iron from Abu Zeneima sulfate leach liquor (AZSLL) and recover uranium as a result. Key parameters including pH, ATMP to sample volume ratio, contact time, and temperature were systematically examined to find the ideal conditions for iron removal. The findings revealed a remarkable selectivity in iron removal by precipitation with 0.05 M aminotrimethylenephosphonic acid (ATMP) per 10 mL of the sample: 90% of iron was precipitated, which is equivalent to approximately 20.5 mg, without adversely impacting uranium content. The iron amputation provided a favorable opportunity for the subsequent recovery of uranium, employing trioctylamine (TOA) as the extracting agent. TOA dissolved in benzene demonstrated efficiency in uranium recovery. The effect of the type of stripping solution, organic/aqueous phase volume ratio, contact time, and temperature on the uranium stripping was examined. Under the optimized conditions, with a maximum stripping efficiency of 98%, the uranium concentration in the resulting solution reached 451.58 mg/L.

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氨基三甲基膦酸在硫酸盐浸出液中除铁后回收铀的性能研究
研究了氨基三甲基膦酸(ATMP)作为螯合剂去除硫酸Abu Zeneima硫酸盐浸出液中的铁并回收铀的效果。系统地考察了pH、ATMP与样品体积比、接触时间和温度等关键参数,以找到除铁的理想条件。研究结果表明,每10 mL样品中添加0.05 M氨基三甲基膦酸(ATMP)沉淀除铁具有显著的选择性:90%的铁被沉淀,相当于约20.5 mg,而不会对铀含量产生不利影响。以三辛基胺(TOA)为萃取剂,为后续铀的回收提供了有利的条件。在苯中溶解TOA对铀的回收效果较好。考察了溶出液类型、有机/水相体积比、接触时间和温度对溶出铀的影响。在优化条件下,溶出液中铀的浓度可达451.58 mg/L,溶出效率最高达98%。
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来源期刊
Radiochemistry
Radiochemistry CHEMISTRY, INORGANIC & NUCLEAR-
CiteScore
1.30
自引率
33.30%
发文量
51
期刊介绍: Radiochemistry  is a journal that covers the theoretical and applied aspects of radiochemistry, including basic nuclear physical properties of radionuclides; chemistry of radioactive elements and their compounds; the occurrence and behavior of natural and artificial radionuclides in the environment; nuclear fuel cycle; radiochemical analysis methods and devices; production and isolation of radionuclides, synthesis of labeled compounds, new applications of radioactive tracers; radiochemical aspects of nuclear medicine; radiation chemistry and after-effects of nuclear transformations.
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