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Heated column experiments: A proxy for investigating the effects of in situ thermal recovery operations on groundwater geochemistry

机译:加热柱实验:一种用于调查原位热回收操作对地下水地球化学影响的代理

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摘要

In situ thermal recovery is utilized extensively for unconventional bitumen extraction in the Cold Lake-Beaver River (CLBR) basin in Alberta, Canada. Public health concerns have been raised over potable groundwater contamination and arsenic release adjacent to these operations within the CLBR basin, which have been linked to subsurface heating of aquifer sediments. Under localized heated conditions, As-bearing aquifer sediments have been shown to undergo water-rock interactions and release constituents at near neutral pH conditions; however, release mechanisms have yet to be conclusively reported. To investigate the hydrogeochemical processes of aquifer heating and solute transport in detail, this study applies a novel heated column design to mimic saturated aquifer materials in contact with a thermal recovery well while constraining flow and geochemical conditions. Two column experiment scenarios were considered using: 1) quartz [SiO2] sand with 0.6 wt% pyrite [FeS2]; and 2) aquifer sediments collected from the CLBR region. Heated temperature gradients between 50 degrees C and 90 degrees C were maintained within a 0.6 m section of the 3 m column with a flow rate of one pore volume per week. During heated low oxygen (3 mg L-1) conditions, results generally show increases in pH, Al, As, B, Mn, Mo, Si and Zn concentrations within and downgradient of the column heating section. Constituent release is primarily attributed to thermal desorption from Fe oxides, clay and silicate mineral dissolution, competitive anion exchange, and increased mixing. Overall results suggest that these mechanisms are responsible for increasing constituent concentrations in groundwater adjacent to in situ thermal recovery operations.
机译:原位热回收是广泛用于加拿大艾伯塔省冷湖 - 海狸河(CLBR)盆地的非传统沥青提取。公共卫生问题已被提出在CLBR盆地内的这些操作附近的饮用地下水污染和砷释放,这与含水层沉积物的地下加热相关。在局部加热条件下,已显示出含水层沉积物在近中性pH条件下进行水岩相互作用和释放成分;但是,尚未结识释放机制。为了详细研究含水层加热和溶质溶质运输的水文地上化学过程,本研究将新型加热柱设计适用于模拟饱和含水层与热回收良好的饱和含水层,同时限制流动和地球化学条件。用0.6wt%黄铁矿[Fes2],考虑了两个列实验场景:1)石英[SiO2]砂。 2)从CLBR区域收集的含水层沉积物。在3米柱的300℃的0.6米的0.6米的0.6米的温度温度梯度,每周流量为10℃。在加热的低氧(<3mg L-1)条件下,结果通常显示在塔式加热部分内的pH,Al,As,B,Mn,Mo,Si和Zn浓度的增加和下降。构成释放主要归因于来自Fe氧化物,粘土和硅酸盐矿物溶解,竞争性阴离子交换和增加的混合的热解吸。总体结果表明,这些机制负责增加与原位热回收操作相邻的地下水中的组成浓度。

著录项

  • 来源
    《Journal of Contaminant Hydrology》 |2021年第2期|103755.1-103755.17|共17页
  • 作者单位

    Carleton Univ Dept Earth Sci 1125 Colonel By Dr Ottawa ON K1S 5B6 Canada;

    Carleton Univ Dept Earth Sci 1125 Colonel By Dr Ottawa ON K1S 5B6 Canada;

    Geol Survey Canada Nat Resources Canada 601 Booth St Ottawa ON K1A 0E8 Canada;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Hydrogeochemistry; in situ thermal recovery; Aquifer heating; Arsenic;

    机译:水文地球化学;原位热回收;含水层加热;砷;
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