基于GMS某地浸铀矿地浸液中铀的吸附模拟
A Simulation Research about the Natural Adsorption of U in the Immersion Liquid of In-Situ Leaching Uranium Depositions Based on GMS
DOI: 10.12677/ME.2017.53004, PDF, HTML, XML,  被引量 下载: 1,712  浏览: 4,333  国家自然科学基金支持
作者: 胡凯光*, 张 磊, 何 智, 杨盘东:南华大学核资源工程学院,湖南 衡阳
关键词: 地下水污染数值模拟GMSGroundwater Pollution Numerical Model Uranium GMS
摘要: 为了研究地浸铀矿退役后残留在地下中的地浸液中铀的迁移情况,采用地下水模拟软件GMS建立某地浸铀矿退役后的地下水模型。通过某地浸铀矿地下水模型,模拟出某地浸铀矿在退役后水头分布。以地下水模型和某地浸铀矿退役后水头分布为基础,通过MT3DMS建立退役铀矿地下水铀运移模型。运行MT3DMS模型,得出在不同吸附条件下地下水中铀运移结果。对模拟的结果进行分析表明,提高含水层岩土的吸附性可以降低地下水中铀浓度和迁移距离。
Abstract: To study the move and degradation of uranium in residual immersion liquid after the retirement of in-situ leaching uranium deposits, underground water stimulating software GMS is adopted to establish underground water models. By running these models, the water head distribution curve of a certain uranium deposit is simulated by the model of the groundwater in a certain area. Based on the groundwater model and the water head distribution of the groundwater after the leaching of uranium, the model of groundwater and groundwater migration in the retired uranium mine was established by MT3DMS. MT3DMS model was run to get the result of Uranium Migration under different adsorption conditions. The results of simulation show that the sorption of aquifer can decrease the concentration of uranium and the distance of migration in groundwater.
文章引用:胡凯光, 张磊, 何智, 杨盘东. 基于GMS某地浸铀矿地浸液中铀的吸附模拟[J]. 矿山工程, 2017, 5(3): 23-31. https://doi.org/10.12677/ME.2017.53004

参考文献

[1] 曹霖, 李建华, 廖文胜, 等. 流体控制剂在地浸采铀中的应用[J]. 湿法冶金, 2015, 34(2): 132-133.
[2] 阙为民, 王海峰, 田时丰, 等. 我国地浸采铀研究现状与发展[J]. 铀矿冶, 2005, 24(3): 113-117.
[3] Jin, M.G., Luo, W.Y., Liu, Y.F. and Sun, R.L. (2009) Modeling of Groundwater Flow Using GMS in Zhengzhou Plain, China.
[4] 王礼恒, 李国敏, 董艳辉. 裂隙介质水流与溶质运移数值模拟研究综述[J]. 水利水电科技进展, 2013, 33(4): 84- 85.
[5] Yeh, W.W. (1986) Review of Parameter Identification Procedures in Groundwater Hydrology: The Inverse Problem. Water Resources Research, 22, 95-108.
https://doi.org/10.1029/WR022i002p00095
[6] 徐海珍, 高艳丽, 李国敏. 地下水中酸性污染羽的自然净化作用数值模拟研究[J]. 工程地质学报, 2013, 21(6): 928-929.
[7] Davis, J.A. and Curtis, G.P. (2007) Consideration of Geochemical Issues in Groundwater Restoration at Uranium In-Situ Leach Mining Faclities. U.S. Geological Survey, NUREC/GR-6870, Washington DC.
[8] Ma, R., Liu, C.X., Greskowiak, J., et al. (2014) Influence of Calcite on Uranium (VI) Reactive Transport in the Groundwa-ter-River Mixing Zone. Journal of Contaminant Hydrdogy, 156, 27-37.
https://doi.org/10.1016/j.jconhyd.2013.10.002
[9] 喻佳, 汪家权, 徐凤. 某电厂项目地下水污染物运移模拟[J]. 广东化工, 2014, 41(4): 66-67.
[10] 周文波, 龚正军. 线性和非线性估计等温吸附和动力学参数比较[J]. 计量与测试技术, 2013, 40(3): 5-8.