首页> 外文期刊>Water Research >Mechanisms of arsenic enrichment in geothermal and petroleum reservoirs fluids in Mexico
【24h】

Mechanisms of arsenic enrichment in geothermal and petroleum reservoirs fluids in Mexico

机译:墨西哥地热和石油储层流体中砷富集的机理

获取原文
获取原文并翻译 | 示例
           

摘要

The lack of chemical similarity between thermal fluids in geothermal and petroleum reservoirs in Mexico indicates a distinct origin for arsenic in both types of reservoirs. Deep fluids from geothermal reservoirs along the Transmexican Volcanic Belt (TMVB) are characterized by elevated arsenic concentrations, within a range between 1 and 100 mg L~(-1) at a depth from 600 to 3000 m b.s.l. Based on hierarchical cluster analysis (HCA), arsenic is linked to typical geothermal species like lithium, silica, and boron. The lack of correlation between arsenic and salinity reflects the importance of secondary water-rock interaction processes. The predominance of arsenic compared to Fe- and Cu-concentrations, and the occurrence of secondary minerals (sulfides and clay minerals) in temperature-dependent hydrothermal zones, supports this hypothesis. Neither magmatic fluids input, nor As mineralization is a prerequisite for As enrichment in Mexican geothermal fluids. In contrast, petroleum reservoir waters from sedimentary basins in SE-Mexico show maximum As concentrations of 2 mg L~(-1) at depths from 2900 to 6100 m b.s.l. The linear chloride-arsenic correlation indicates that evaporated seawater represents the major source for aqueous arsenic in oil reservoirs, and only minor arsenic proportions are derived from interaction with carbonate host rock. Speciation modeling suggests the lack of arsenic solubility control in both geothermal and petroleum reservoirs, but precipitation/ co-precipitation of As with secondary sulfides could occur in petroleum reservoirs with high iron concentrations. Geothermal fluids from magmatic-type reservoirs (Los Azufres and Los Humeros at the TMVB and Las Tres Virgenes with a granodioritic basement) show relative constant arsenic concentrations through varying temperature conditions, which indicates that temperatures above 230-250 ℃ provide optimal and stable conditions for arsenic mobility. In contrast, temperature conditions for sedimentary-type reservoirs are irrelevant for water-rock interaction processes, as suggested by low arsenic aqueous concentration for both Cerro Prieto geothermal fluids (high temperature - sedimentary type) and oil field formation water (low temperature - sedimentary type).
机译:墨西哥的地热和石油储层中的热流体之间缺乏化学相似性,这表明两种类型的储层中砷的独特来源。沿跨墨西哥火山带(TMVB)来自地热储层的深层流体的特征是砷的浓度升高,深度范围为600至3000 m b.s.l,范围为1至100 mg L〜(-1)。基于层次聚类分析(HCA),砷与典型的地热物质如锂,二氧化硅和硼有关。砷与盐度之间缺乏相关性反映了二次水-岩相互作用过程的重要性。与Fe和Cu浓度相比,砷占优势,在与温度有关的热液区中次生矿物(硫化物和粘土矿物)的出现支持了这一假设。墨西哥地热流体中富集砷的前提不是岩浆流体输入,也不是As矿化。相比之下,墨西哥东南部沉积盆地的石油储层水在2900至6100 m b.s.l的深度显示最大As浓度为2 mg L〜(-1)。氯化物与砷的线性关系表明,蒸发的海水是油藏中含水砷的主要来源,并且只有少量的砷比例是由与碳酸盐岩的相互作用引起的。形态模拟表明,在地热和石油储层中都缺乏砷溶解度控制,但是在高铁含量的石油储层中可能会发生砷与次生硫化物的沉淀/共沉淀。来自岩浆型储层的地热流体(TMVB的Los Azufres和Los Humeros以及具有粒二闪体基底的Las Tres Virgenes)在变化的温度条件下显示出相对恒定的砷浓度,这表明230-250℃以上的温度提供了最佳且稳定的条件砷的流动性。相反,沉积型油藏的温度条件与水-岩石相互作用过程无关,正如塞罗普列托地热流体(高温-沉积型)和油田地层水(低温-沉积型)的低砷水浓度所表明的那样。 )。

著录项

  • 来源
    《Water Research》 |2010年第19期|p.5605-5617|共13页
  • 作者单位

    Instituto de Investigaciones Electricas, Gerencia de Geotermia, 62490 Cuernavaca, Morelos, Mexico;

    Institute of Applied Research, University of Applied Sciences, Moltteestrasse 30, 76133 Karlsruhe, Germany,Department of Earth Sciences, National Cheng Kung University, University Road, Tainan City 701, Taiwan, ROC;

    OPV s.r.o. (Protection of groundvjater Ltd), Belohorsfed 31, 169 00 Praha 6, Czech Republic,Department of Geology, Faculty of Science, Palacfey University, 17. Listopadu 12, 771 46 Olomouc, Czech Republic;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    arsenic; mexico; geothermal reservoirs; petroleum reservoirs; formation water; origin;

    机译:砷;墨西哥;地热库;石油储层;地层水起源;

相似文献

  • 外文文献
  • 中文文献
  • 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