Groundwater Origins and Circulation Patterns Based on Isotopes in Challapampa Aquifer, Bolivia
Abstract
:1. Introduction
2. Study Area
3. Data, Sampling and Methods
4. Results and Discussion
4.1. Isotopic Compositions in Precipitation
4.2. Isotopic Compositions in Surface Water and Groundwater
5. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
Abbreviations
DJFM | December, January, February, and March |
EC | Electrical conductivity |
GMWL | Global Meteoric Water Line |
GNIP | Global Network for Isotopes in Precipitation |
IAEA | International Atomic Energy Agency |
LMWL | Local Meteoric Water Line |
PDB | Pee Dee Belemnite |
PMC | Percentage of modern carbon |
SELA | Servicio Local de Acueductos y Alcantarillado Oruro |
TDPS | Titicaca, Desaguadero, Poopo, and the salt flats |
VSMOW | Vienna Standard Mean Ocean Water |
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Reference | Sampling Year | Sampling Sites Reported | Sampling Sites Located | Isotopes Reported | Types of Sampling Sites |
---|---|---|---|---|---|
Lizarazu et al. (1987) [11] | 1984–1985 | 61 | 25 | 18O, 2H, 3H, 13C, and 14C | Boreholes, dug wells, springs, rivers, and mines |
Swedish Geological AB (1996) [12] | 1996 | 23 | 0 | 18O | Boreholes and dug wells |
Gitec & Cobodes (2014) [7] | 2013 | 6 | 6 | 18O, 2H, 3H and 14C | Boreholes and rivers |
Present study | 2014–2015 | 17 | 17 | 18O and 2H | Boreholes, dug wells, and rivers |
Sample | Depth * (mbs) | Type ** | EC (μS/cm) | δ18O (‰) | δ2H (‰) | 3H *** (TU) | 13C *** (‰) | 14C *** (pMC) |
---|---|---|---|---|---|---|---|---|
PP-07 | 48–80 | B/WF | 979 | −13.86 | −107.72 | 1.0 | −9.04 | 72.8 |
PP-09 | 38–71 | B/WF | 1172 | −13.67 | −108.05 | BDL | −9.89 | 38.1 |
PP-10 | 39–84 | B/WF | 4130 | −14.05 | −111.46 | 0.4 | −9.47 | 25.9 |
PP-11 | 36–84 | B/WF | 956 | −13.83 | −107.72 | 0.2 | −8.63 | 40.5 |
PP-14 | – | B/WF | 1043 | −13.80 | −109.44 | – | – | – |
PP-17 | 22–79 | B/WF | 1339 | −14.13 | −111.18 | – | – | – |
PP-20 | – | B/WF | 1130 | −14.09 | −110.43 | – | – | – |
PP-21 | – | B/WF | 850 | −14.19 | −109.21 | – | – | – |
PP-22 | – | B/WF | 844 | −13.32 | −105.84 | – | – | – |
PP-23 | 32–97 | B/WF | 1251 | −13.73 | −107.47 | – | – | – |
Sela-2 | 38–53 | B/WF | 1357 | −14.52 | −112.50 | 0.2 | −9.27 | 30.5 |
Crucero | – | B | 932 | −14.86 | −113.51 | – | – | – |
Sta-Rosa | – | B | 1432 | −14.55 | −111.39 | 2.4 | −9.04 | 79.3 |
Jatita-I | 65 | B | 760 | −14.91 | −114.85 | – | – | – |
Jatita-II | <10 | D | 734 | −13.94 | −107.85 | – | – | – |
Cayhuasi | 0 | R | 460 | −13.01 | −99.24 | 9.3 | – | – |
Paria | 0 | R | 407 | −12.95 | −99.34 | 7.4 | – | – |
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Gómez, E.; Barmen, G.; Rosberg, J.-E. Groundwater Origins and Circulation Patterns Based on Isotopes in Challapampa Aquifer, Bolivia. Water 2016, 8, 207. https://doi.org/10.3390/w8050207
Gómez E, Barmen G, Rosberg J-E. Groundwater Origins and Circulation Patterns Based on Isotopes in Challapampa Aquifer, Bolivia. Water. 2016; 8(5):207. https://doi.org/10.3390/w8050207
Chicago/Turabian StyleGómez, Etzar, Gerhard Barmen, and Jan-Erik Rosberg. 2016. "Groundwater Origins and Circulation Patterns Based on Isotopes in Challapampa Aquifer, Bolivia" Water 8, no. 5: 207. https://doi.org/10.3390/w8050207
APA StyleGómez, E., Barmen, G., & Rosberg, J. -E. (2016). Groundwater Origins and Circulation Patterns Based on Isotopes in Challapampa Aquifer, Bolivia. Water, 8(5), 207. https://doi.org/10.3390/w8050207