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Quantification of anthropogenic impact on groundwater-dependent terrestrial ecosystem using geochemical and isotope tools combined with 3-D flow and transport modelling

机译:使用地球化学和同位素工具与三维流量和运输建模相结合地下水依赖性陆地生态系统对地下水依赖性陆地生态系统的量化

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摘要

Groundwater-dependent ecosystems (GDEs) have important functions in all climatic zones as they contribute to biological and landscape diversity and provide important economic and social services. Steadily growing anthropogenic pressure on groundwater resources creates a conflict situation between nature and man which are competing for clean and safe sources of water. Such conflicts are particularly noticeable in GDEs located in densely populated regions. A dedicated study was launched in 2010 with the main aim to better understand the functioning of a groundwater-dependent terrestrial ecosystem (GDTE) located in southern Poland. The GDTE consists of a valuable forest stand (Niepolomice Forest) and associated wetland (Wielkie Bloto fen). It relies mostly on groundwater from the shallow Quaternary aquifer and possibly from the deeper Neogene (Bogucice Sands) aquifer. In July 2009 a cluster of new pumping wells abstracting water from the Neogene aquifer was set up 1 km to the northern border of the fen. A conceptual model of the Wielkie Bloto fen area for the natural, pre-exploitation state and for the envisaged future status resulting from intense abstraction of groundwater through the new well field was developed. The main aim of the reported study was to probe the validity of the conceptual model and to quantify the expected anthropogenic impact on the studied GDTE. A wide range of research tools was used. The results obtained through combined geologic, geophysical, geochemical, hydrometric and isotope investigations provide strong evidence for the existence of upward seepage of groundwater from the deeper Neogene aquifer to the shallow Quaternary aquifer supporting the studied GDTE. Simulations of the groundwater flow field in the study area with the aid of a 3-D flow and transport model developed for Bogucice Sands (Neogene) aquifer and calibrated using environmental tracer data and observations of hydraulic head in three different locations on the study area, allowed us to quantify the transient response of the aquifer to operation of the newly established Wola Batorska well field. The model runs reveal the presence of upward groundwater seepage to the shallow Quaternary aquifer of the order of 440m(3) d(-1). By the end of the simulation period (2029), with continuous operation of the Wola Batorska well field at maximum permissible capacity (ca. 10 000m(3) d(-1)), the direction of groundwater seepage will change sign (total change of the order of 900m(3) d(-1)). The water table drawdown in the study area will reach ca. 30 cm. This may have significant adverse effects on functioning of the studied GDTE.
机译:地下水依赖生态系统(GDES)在所有气候区都有重要功能,因为它们有助于生物和景观多样性,并提供重要的经济和社会服务。稳步增长的地下水资源的人为压力在竞争干净和安全的水源之间的自然和人之间产生冲突局势。这种冲突在浓密地区的地区的GDE中尤其明显。 2010年推出了专门的研究,主要旨在更好地了解位于波兰南部的地下水依赖陆地生态系统(GDTE)的运作。 GDTE包括一个有价值的森林架(Niepolomice Forest)和相关的湿地(Wielkie Bloto Fen)。它主要依赖于来自浅季疗养学家的地下水,并且可能来自更深的新生(Bogucice Sands)含水层。 2009年7月,一群新的泵送井从新生含水层抽象的水,距离北部边界有1公里。开发了一种自然,前剥削态的Wielkie Bloto Fen区域的概念模型,并通过新的井领域开发了由地下水的强烈抽象引起的预想的未来状态。报告研究的主要目的是探讨概念模型的有效性,并量化对研究GDTE的预期人为影响。使用了广泛的研究工具。通过组合地质,地球物理,地球化学,水文和同位素调查获得的结果提供了强大的证据,该迹象是从深层的Neogene含水层到支持学习GDTE的浅四季含水层的地下水向上渗流。借助于为Bogucice Sands(Neogene)含水层开发的三维流动和运输模型和使用环境示踪剂数据和研究区域的三个不同地点的液压头观察,模拟了研究区的地下水和运输模拟。允许我们量化含水层的瞬态响应到新建立的Wola Batorska井场的运营。该模型运行揭示了向上地下水渗出到440M(3)D(-1)的浅四季含水层。在仿真时段结束时(2029),在最大允许容量(约000m(3)D(-1)),地下水渗流的方向将改变符号(总变化达到900m(3)d(-1))的顺序。研究区的水表缩减将到达CA. 30厘米。这对研究的GDTE的功能具有显着的不利影响。

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  • 作者单位

    AGH Univ Sci &

    Technol Fac Geol Geophys &

    Environm Protect Krakow Poland;

    AGH Univ Sci &

    Technol Fac Geol Geophys &

    Environm Protect Krakow Poland;

    AGH Univ Sci &

    Technol Fac Phys &

    Appl Comp Sci Krakow Poland;

    AGH Univ Sci &

    Technol Fac Phys &

    Appl Comp Sci Krakow Poland;

    AGH Univ Sci &

    Technol Fac Phys &

    Appl Comp Sci Krakow Poland;

    AGH Univ Sci &

    Technol Fac Geol Geophys &

    Environm Protect Krakow Poland;

    AGH Univ Sci &

    Technol Fac Geol Geophys &

    Environm Protect Krakow Poland;

    AGH Univ Sci &

    Technol Fac Geol Geophys &

    Environm Protect Krakow Poland;

    AGH Univ Sci &

    Technol Fac Geol Geophys &

    Environm Protect Krakow Poland;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 水文科学(水界物理学);
  • 关键词

  • 入库时间 2022-08-20 08:10:34

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