<i>δ</i><sup>13</sup>C, CO<sub>2</sub> ∕ <sup>3</sup>He and <sup>3</sup>He ∕ <sup>4</sup>He ratios reveal the presence of mantle gas in the CO<sub>2</sub>-rich groundwaters of the Ardennes massif (Spa, Belgium)
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Published:2022-05-19
Issue:10
Volume:26
Page:2637-2648
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ISSN:1607-7938
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Container-title:Hydrology and Earth System Sciences
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language:en
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Short-container-title:Hydrol. Earth Syst. Sci.
Author:
Defourny Agathe, Blard Pierre-HenriORCID, Zimmermann Laurent, Jobé Patrick, Collignon Arnaud, Nguyen FrédéricORCID, Dassargues AlainORCID
Abstract
Abstract. Although natural CO2-rich groundwaters of eastern Belgium have been known for centuries, the exact origin of their gas is still unclear. This paper presents the results of a sampling campaign in Belgium (Spa, Stoumont, Malmedy): 30 samples of both carbogaseous and non-carbogaseous groundwaters were analyzed for major elements, CO2 content and carbon isotopic composition. Among them, 13 samples were also analyzed for 3He/4He and 4He/20Ne ratios. The combination of δ13C (between ca. −9 ‰ VPDB1 and −2 ‰ VPDB), CO2/3He ratio (between 1.9×108 and 2.9×109) and 3He/4He (between 0.92 and 2.70 Ra) shows with a high level of confidence that the CO2 in the carbogaseous groundwater of Spa and Bru has a mantle origin. It can likely be attributed to the degassing of mantle from the neighboring Eifel volcanic fields, located at a distance of
100 km eastwards. The identity and nature of the deep-rooted fractures that act as CO2 transport pathways to the surface are still to be clarified, but several major thrust faults exist in the Rhenish Massif and could connect the Eifel volcanic fields with the studied area.
Funder
Service Public de Wallonie Horizon 2020
Publisher
Copernicus GmbH
Subject
General Earth and Planetary Sciences,General Engineering,General Environmental Science
Reference32 articles.
1. Aeschbach-Hertig, W., Kipfer, R., Hofer, M., Imboden, D., Wieler, R., and
Signer, P.: Quantifiction of gas fluxes from subcontinental mantle: the
example of Laacher See, a maar lake in Germany, Geochim. Cosmochim. A., 60, 31–41, https://doi.org/10.1016/0016-7037(95)00370-3, 1996. a 2. Agnew, R. J.: Why springs bubble: A framework for gas discharge in groundwater,
Groundwater, 56, 859–870,
https://doi.org/10.1111/gwat.12789, 2018. a 3. Andrews, J. and Kay, R.: Natural production of tritium in permable rocks,
Nature, 298, 361–363, https://doi.org/10.1038/298361a0,
1982. a 4. Barros, R., Defourny, A., Collignon, A., Jobé, P., Dassargues, A., Piessens,
K., and Welkenhuysen, K.: A review of the geology and origin of CO2 in
mineral water springs in east Belgium, Geol. Belg., 24, 17–31, https://doi.org/10.20341/gb.2020.023, 2021. a, b, c, d, e, f 5. Barry, P. H., Negrete-Aranda, R., Spelz, R. M., Seltzer, A. M., Bekaert, D. V.,
Virrueta, C., and Kulongoski, J. T.: Volatile sources, sinks and pathways: A
helium-carbon isotope study of Baja California fluids and gases, Chem.
Geol., 550, 119722, https://doi.org/10.1016/j.chemgeo.2020.119722, 2020. a, b, c
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