Articles | Volume 9, issue 1
https://doi.org/10.5194/cp-9-1-2013
© Author(s) 2013. This work is distributed under
the Creative Commons Attribution 3.0 License.
the Creative Commons Attribution 3.0 License.
Special issue:
https://doi.org/10.5194/cp-9-1-2013
© Author(s) 2013. This work is distributed under
the Creative Commons Attribution 3.0 License.
the Creative Commons Attribution 3.0 License.
Stalagmite water content as a proxy for drip water supply in tropical and subtropical areas
N. Vogel
Eawag, Swiss Federal Institute of Aquatic Science and Technology, Überlandstrasse 133, 8600 Dübendorf, Switzerland
ETH Zurich, Institute of Geochemistry and Petrology, Clausiusstrasse 25, 8092 Zurich, Switzerland
Y. Scheidegger
Eawag, Swiss Federal Institute of Aquatic Science and Technology, Überlandstrasse 133, 8600 Dübendorf, Switzerland
ETH Zurich, Institute of Geochemistry and Petrology, Clausiusstrasse 25, 8092 Zurich, Switzerland
M. S. Brennwald
Eawag, Swiss Federal Institute of Aquatic Science and Technology, Überlandstrasse 133, 8600 Dübendorf, Switzerland
D. Fleitmann
Institute of Geological Sciences, University of Bern, Baltzerstrasse 1–3, 3012 Bern, Switzerland
Oeschger Center for Climate Research, University of Bern, Zähringerstrasse 25, 3012 Bern, Switzerland
now at: Department of Archaeology, School of Human and Environmental Sciences, University of Reading, Whiteknights, P.O. Box 226, Reading, RG6 6AB, UK
S. Figura
Eawag, Swiss Federal Institute of Aquatic Science and Technology, Überlandstrasse 133, 8600 Dübendorf, Switzerland
ETH Zurich, Institute of Biogeochemistry and Pollutant Dynamics, Universitätsstrasse 16, 8092 Zurich, Switzerland
R. Wieler
ETH Zurich, Institute of Geochemistry and Petrology, Clausiusstrasse 25, 8092 Zurich, Switzerland
R. Kipfer
Eawag, Swiss Federal Institute of Aquatic Science and Technology, Überlandstrasse 133, 8600 Dübendorf, Switzerland
ETH Zurich, Institute of Geochemistry and Petrology, Clausiusstrasse 25, 8092 Zurich, Switzerland
ETH Zurich, Institute of Biogeochemistry and Pollutant Dynamics, Universitätsstrasse 16, 8092 Zurich, Switzerland
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Cited
11 citations as recorded by crossref.
- Noble gas concentrations in fluid inclusions as tracer for the origin of coarse-crystalline cryogenic cave carbonates T. Kluge et al. 10.1016/j.chemgeo.2014.01.006
- Paleotemperature reconstructions using speleothem fluid inclusion analyses from Hungary A. Demény et al. 10.1016/j.chemgeo.2020.120051
- Estimation of temperature – altitude gradients during the Pleistocene–Holocene transition from Swiss stalagmites E. Ghadiri et al. 10.1016/j.epsl.2020.116387
- Environmental magnetism of late Holocene stalagmites from semi-arid karst in southern Australia T. Mallett et al. 10.1016/j.quascirev.2025.109290
- Fabric and Fluid Inclusions Characterization of a Stalagmite from Eastern Spain: A Precondition for Noble Gas Analysis by Step-Crushing Methodology M. Lopez-Elorza et al. 10.3390/min14030267
- Paleoclimatic significance of water isotopes in speleothem fluid inclusions S. Affolter et al. 10.1016/j.earscirev.2024.105026
- Challenges in the Direct Determination of 17Oexcess in Microliter Amount of Water Extracted From Speleothem Fluid Inclusions S. Affolter & M. Leuenberger 10.3389/feart.2021.612436
- A combined vacuum crushing and sieving (CVCS) system designed to determine noble gas paleotemperatures from stalagmite samples N. Vogel et al. 10.1002/ggge.20164
- Historical narratives of weather extremes in the UK G. Endfield 10.1080/00167487.2016.12093990
- Aerosol and Solar Irradiance Effects on Decadal Climate Variability and Predictability D. Zanchettin 10.1007/s40641-017-0065-y
- Noble gas based temperature reconstruction on a Swiss stalagmite from the last glacial–interglacial transition and its comparison with other climate records E. Ghadiri et al. 10.1016/j.epsl.2018.05.019
11 citations as recorded by crossref.
- Noble gas concentrations in fluid inclusions as tracer for the origin of coarse-crystalline cryogenic cave carbonates T. Kluge et al. 10.1016/j.chemgeo.2014.01.006
- Paleotemperature reconstructions using speleothem fluid inclusion analyses from Hungary A. Demény et al. 10.1016/j.chemgeo.2020.120051
- Estimation of temperature – altitude gradients during the Pleistocene–Holocene transition from Swiss stalagmites E. Ghadiri et al. 10.1016/j.epsl.2020.116387
- Environmental magnetism of late Holocene stalagmites from semi-arid karst in southern Australia T. Mallett et al. 10.1016/j.quascirev.2025.109290
- Fabric and Fluid Inclusions Characterization of a Stalagmite from Eastern Spain: A Precondition for Noble Gas Analysis by Step-Crushing Methodology M. Lopez-Elorza et al. 10.3390/min14030267
- Paleoclimatic significance of water isotopes in speleothem fluid inclusions S. Affolter et al. 10.1016/j.earscirev.2024.105026
- Challenges in the Direct Determination of 17Oexcess in Microliter Amount of Water Extracted From Speleothem Fluid Inclusions S. Affolter & M. Leuenberger 10.3389/feart.2021.612436
- A combined vacuum crushing and sieving (CVCS) system designed to determine noble gas paleotemperatures from stalagmite samples N. Vogel et al. 10.1002/ggge.20164
- Historical narratives of weather extremes in the UK G. Endfield 10.1080/00167487.2016.12093990
- Aerosol and Solar Irradiance Effects on Decadal Climate Variability and Predictability D. Zanchettin 10.1007/s40641-017-0065-y
- Noble gas based temperature reconstruction on a Swiss stalagmite from the last glacial–interglacial transition and its comparison with other climate records E. Ghadiri et al. 10.1016/j.epsl.2018.05.019
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