Water-rock interactions drive chemostasis

被引:1
|
作者
Warix, Sara [1 ]
Navarre-Sitchler, Alexis [1 ,2 ]
Singha, Kamini [1 ,2 ]
机构
[1] Colorado Sch Mines, Hydrol Sci & Engn Program, Golden, CO 80401 USA
[2] Colorado Sch Mines, Geol & Geol Engn Dept, Golden, CO USA
基金
美国国家科学基金会;
关键词
cation exchange; chemostasis; climate change; concentration-discharge; groundwater; groundwater age; surface water; water-rock interaction; CONCENTRATION-DISCHARGE RELATIONSHIPS; CATION-EXCHANGE; GROUNDWATER; CHEMISTRY; EVOLUTION; ZONE; HETEROGENEITY; TIME; CO2;
D O I
10.1002/hyp.15078
中图分类号
TV21 [水资源调查与水利规划];
学科分类号
081501 ;
摘要
The western U.S. is experiencing shifts in recharge due to climate change, and it is currently unclear how hydrologic shifts will impact geochemical weathering and stream concentration-discharge (C-Q) patterns. Hydrologists often use C-Q analyses to assess feedbacks between stream discharge and geochemistry, given abundant stream discharge and chemistry data. Chemostasis is commonly observed, indicating that geochemical controls, rather than changes in discharge, are shaping stream C-Q patterns. However, few C-Q studies investigate how geochemical reactions evolve along groundwater flowpaths before groundwater contributes to streamflow, resulting in potential omission of important C-Q controls such as coupled mineral dissolution and clay precipitation and subsequent cation exchange. Here, we use field observations-including groundwater age, stream discharge, and stream and groundwater chemistry-to analyse C-Q relations in the Manitou Experimental Forest in the Colorado Front Range, USA, a site where chemostasis is observed. We combine field data with laboratory analyses of whole rock and clay x-ray diffraction and soil cation-extraction experiments to investigate the role that clays play in influencing stream chemistry. We use Geochemist's Workbench to identify geochemical reactions driving stream chemistry and subsequently suggest how climate change will impact stream C-Q trends. We show that as groundwater age increases, C-Q slope and stream solute response are not impacted. Instead, primary mineral dissolution and subsequent clay precipitation drive strong chemostasis for silica and aluminium and enable cation exchange that buffers calcium and magnesium concentrations, leading to weak chemostatic behaviour for divalent cations. The influence of clays on stream C-Q highlights the importance of delineating geochemical controls along flowpaths, as upgradient mineral dissolution and clay precipitation enable downgradient cation exchange. Our results suggest that geochemical reactions will not be impacted by future decreasing flows, and thus where chemostasis currently exists, it will continue to persist despite changes in recharge.
引用
收藏
页数:14
相关论文
共 50 条
  • [41] Macroscopic thermodynamics of interfaces at water pore scales: effects on water-rock interactions and mass transfer
    Mercury, Lionel
    [J]. PROCEEDINGS OF THE FOURTEENTH INTERNATIONAL SYMPOSIUM ON WATER-ROCK INTERACTION, WRI 14, 2013, 7 : 586 - 589
  • [42] Hydrochemistry of thermal waters in Northeast Tunisia: water-rock interactions and hydrologic mixing
    Trabelsi, Saousan
    Makni, Jalila
    Bouri, Salem
    Ben Dhia, Hamed
    [J]. ARABIAN JOURNAL OF GEOSCIENCES, 2015, 8 (03) : 1743 - 1754
  • [43] Numerical study on the impact of water-rock interactions on the propagation of water-flooding induced fracture
    Qu, Hongyan
    Peng, Yan
    Pan, Zhejun
    Xu, Xiangdong
    Zhou, Fujian
    [J]. FRONTIERS IN EARTH SCIENCE, 2023, 11
  • [44] Effect of water-rock interaction on the morphology of a rock surface
    Chen, Yu
    Cao, Ping
    Chen, Rui
    Teng, Yun
    [J]. INTERNATIONAL JOURNAL OF ROCK MECHANICS AND MINING SCIENCES, 2010, 47 (05) : 816 - 822
  • [45] Thermodynamic Databases for Water-Rock Interaction
    Oelkers, Eric H.
    Benezeth, Pascale
    Pokrovski, Gleb S.
    [J]. THERMODYNAMICS AND KINETICS OF WATER-ROCK INTERACTION, 2009, 70 : 1 - 46
  • [46] Discussion of ''water-rock interaction'' problems
    Zharikov, VA
    Zverev, VP
    Chudaev, OV
    [J]. VESTNIK ROSSIISKOI AKADEMII NAUK, 1996, 66 (04): : 370 - 372
  • [47] The inverse modeling of water-rock interaction
    Ottonello, G
    [J]. WATER-ROCK INTERACTION, VOLS 1 AND 2, 2001, : 47 - 60
  • [48] Water-rock interactions during the weathering of pelitic schist - its role in the development of landslides
    Yamasaki, S.
    Chigira, M.
    [J]. WATER-ROCK INTERACTION, VOLS 1 AND 2, PROCEEDINGS, 2007, : 1435 - 1438
  • [49] WATER-ROCK INTERACTIONS IN DEEP SANDSTONE AQUIFERS (GPF DRILL-HOLE, SANCERRE)
    BENEDETTI, M
    BOULEGUE, J
    [J]. BULLETIN DE MINERALOGIE, 1988, 111 (01): : 79 - 88
  • [50] Water-rock interactions in the Bruchsal geothermal system by U-Th series radionuclides
    Koelbel, Lena
    Koelbel, Thomas
    Maier, Ulrich
    Sauter, Martin
    Schaefer, Thorsten
    Wiegand, Bettina
    [J]. GEOTHERMAL ENERGY, 2020, 8 (01)