首页> 外文期刊>Geochimica et Cosmochimica Acta: Journal of the Geochemical Society and the Meteoritical Society >Reduction kinetics of aqueous U(VI) in acidic chloride brines to uraninite by methane, hydrogen or C-graphite under hydrothermal conditions: Implications for the genesis of unconformity-related uranium ore deposits
【24h】

Reduction kinetics of aqueous U(VI) in acidic chloride brines to uraninite by methane, hydrogen or C-graphite under hydrothermal conditions: Implications for the genesis of unconformity-related uranium ore deposits

机译:在水热条件下甲烷,氢或碳-石墨将酸性氯化物盐水中的U(VI)水溶液还原为尿素的动力学:与不整合有关的铀矿床成因的意义

获取原文
获取原文并翻译 | 示例
       

摘要

The formation of hydrothermal uranium ore deposits involves the reduction of dissolved U(VI)((aq)) to uraninite. However, the nature of the reducing agent and the kinetics of such a process are currently unknown. These questions are addressed through dedicated experiments performed under conditions relevant for the genesis of unconformity-related uranium (URU) deposits. We tested the efficiency of the following potential reductants supposed to be involved in the reaction: H-2, CH4, C-graphite and dissolved Fe(II). Results demonstrate the great efficiency of H-2, CH4 and C-graphite to reduce U(VI)((aq)) into uraninite in acidic chloride brines, unlike dissolved Fe(II). Times needed for H-2 (1.4 bar), CH4 (2.4 bar) and C-graphite (water/carbon mass ratio = 10) to reduce 1 mMof U(VI)((aq)) in an acidic brine (1 mLiCl, pH approximate to 1 fixed by HCl) to uraninite at 200 degrees C are 12 h, 3 days and 4 months, respectively. The effects of temperature (T) between 100 degrees C and 200 degrees C, H-2 partial pressure (0.14, 1.4, and 5.4 bar), salinity (0.1, 1 and 3.2 m LiCl) and pH at 25 degrees C (0.8 and 3.3) on the reduction rate were also investigated. Results show that increasing temperature and H-2 partial pressure increase the reaction rate, whereas increasing salinity or pH have the reverse effect. The reduction of uranyl to uraninite follows an apparent zero-order with respect to time, whatever the considered electron donor. From the measured rate constants, the following values of activation energy (Ea), depending on the nature of the electron donor, have been derived: Ea(C-graphite) = 155 +/- 3 kJ mol(-1), Ea(CH4) = 143 +/- 6 kJ mol(-1), and Ea(H2) = 124 +/- 15 kJ mol(-1) at T < 150 degrees C and 32 +/- 6 kJ mol(-1) at T > 150 degrees C. An empirical relationship between the reaction rate, the hydrogen partial pressure, the uranyl speciation, and the temperature is also proposed. This allows an estimation of the time of formation of a giant U ore deposit such as McArthur River (Canada). The duration of the mineralizing event is controlled both by the U concentration in the ore-forming fluids and the dynamics of gaseous reductants input, and not by the kinetics of U(VI)((aq)) reduction itself. Focused flow of mobile electron donors (H-2, CH4) along quasi vertical fractured zones into U(VI)((aq))-bearing oxidized fluids may explain the large volume and high concentrations of uranium in the URU deposits. (C) 2015 Elsevier Ltd. All rights reserved.
机译:热液铀矿床的形成涉及将溶解的U(VI)((aq))还原为铀矿。然而,还原剂的性质和这种方法的动力学目前尚不清楚。这些问题是通过在与不整合相关的铀(URU)矿床成因有关的条件下进行的专门实验解决的。我们测试了以下可能参与反应的潜在还原剂的效率:H-2,CH4,C-石墨和溶解的Fe(II)。结果表明,与溶解的Fe(II)不同,H-2,CH4和C-石墨在酸性氯化物盐水中将U(VI)((aq))还原成尿素的效率很高。 H-2(1.4 bar),CH4(2.4 bar)和C-石墨(水/碳质量比= 10)减少在酸性盐水(1 mLiCl中)还原1 mM U(VI)((aq))所需的时间在200摄氏度下,大约1的pH(由HCl固定)至尿素的时间分别为12小时,3天和4个月。温度(T)在100摄氏度和200摄氏度之间,H-2分压(0.14、1.4和5.4巴),盐度(0.1、1和3.2 m LiCl)和pH在25摄氏度(0.8和0.8摄氏度)下的影响3.3)对还原率也进行了调查。结果表明,升高温度和H-2分压可提高反应速率,而提高盐度或pH值则具有相反的作用。无论考虑什么电子给体,从时间上看,铀酰还原为尿素都遵循明显的零级。根据测得的速率常数,根据电子供体的性质,得出了以下活化能(Ea)值:Ea(C-石墨)= 155 +/- 3 kJ mol(-1),Ea( CH4)= 143 +/- 6 kJ mol(-1),Ea(H2)=在T <150摄氏度和32 +/- 6 kJ mol(-1)时为124 +/- 15 kJ mol(-1)在T> 150摄氏度时。还提出了反应速率,氢分压,铀酰形态和温度之间的经验关系。这样就可以估算形成巨型铀矿床的时间,例如麦克阿瑟河(加拿大)。矿化事件的持续时间既受成矿流体中U浓度的控制,又受输入的气体还原剂动力学的控制,而不是受U(VI)((aq))还原本身的动力学控制。移动电子供体(H-2,CH4)沿准垂直裂缝带向含U(VI)((aq))的氧化流体集中流动可能解释了URU矿床中铀的大量和高浓度。 (C)2015 Elsevier Ltd.保留所有权利。

著录项

相似文献

  • 外文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号