CO2 DYNAMICS AND HYDROGEOCHEMICAL CONTROLS IN KARST GROUNDWATER SYSTEMS: A REVIEW
DOI:
https://doi.org/10.2298/IJGI251010007AKeywords:
structured literature review, CO2 flux, carbonate weathering, land use impact, carbon cycleAbstract
Karst landscapes play a significant role in the global carbon cycle by regulating carbon dioxide (CO₂) through carbonate weathering and groundwater processes. This structured literature review revisits carbon cycling in karst landscapes, integrating perspectives on the roles of CO₂ dynamics and hydrogeochemical processes in carbonate reactions. It synthesizes studies examining the relationships among partial pressure of CO₂ (pCO₂), dissolved CO₂, and key chemical processes such as limestone dissolution and calcite precipitation. The review synthesizes findings from laboratory experiments, field measurements, and numerical simulations conducted across diverse karst environments worldwide. The reviewed studies consistently report strong correlations between soil-derived CO₂ and aqueous CO₂, influenced by biogenic inputs, cave degassing, hydrodynamics, and lithological variation. The literature further indicates that anthropogenic factors and sulfur-induced acidification alter carbonate equilibria and carbon fluxes. However, the existing body of research also highlights notable gaps, particularly in understanding how land-use differences shape carbon cycling within karst landscapes. Many published studies still do not integrate aboveground, belowground, and aquatic carbon fluxes across land-use types. Addressing these gaps is essential for developing comprehensive carbon budgets and improving model predictions under environmental change. This review emphasizes the importance of interdisciplinary approaches that link hydrogeochemistry with land-use analysis to better characterize carbon pathways in both tropical and temperate karst landscapes.
Article metrics
References
Arksey, H., & O’Malley, L. (2005). Scoping studies: Towards a methodological framework. International Journal of Social Research Methodology, 8(1), 19–32. https://doi.org/10.1080/1364557032000119616
Belfar, D., Fehdi, C., Baali, F., & Salameh, E. (2017). Results of a hydrogeological and hydrogeochemical study of a semi-arid karst aquifer in Tezbent plateau, Tebessa region, northeast of Algeria. Applied Water Science, 7(3), 1099–1105. https://doi.org/10.1007/s13201-015-0357-0
Benavente, J., Vadillo, I., Liñán, C., Carrasco, F., & Soler, A. (2015). A field analog of CO₂-closed conditions in a karstified carbonate aquifer (Nerja Cave experimental site, south Spain). In B. Andreo, F. Carrasco, J. J. Durán, P. Jiménez, & J. W. LaMoreaux (Eds.), Hydrogeological and Environmental Investigations in Karst Systems (pp. 533–542). Springer Berlin Heidelberg. https://doi.org/10.1007/978-3-642-17435-3_60
Cao, M., Jiang, Y., Chen, Y., Fan, J., & He, Q. (2020). Variations of soil CO2 concentration and pCO2 in a cave stream on different time scales in subtropical climatic regime. CATENA, 185, Article 104280. https://doi.org/10.1016/j.catena.2019.104280
Chen, Z., Auler, A. S., Bakalowicz, M., Drew, D., Griger, F., Hartmann, J., Jiang, G., Moosdorf, N., Richts, A., Stevanovic, Z., Veni, G., & Goldscheider, N. (2017). The World Karst Aquifer Mapping project: Concept, mapping procedure and map of Europe. Hydrogeology Journal, 25(3), 771–785. https://doi.org/10.1007/s10040-016-1519-3
Class, H., Bürkle, P., Sauerborn, T., Trötschler, O., Strauch, B., & Zimmer, M. (2021). On the role of density-driven dissolution of CO₂ in phreatic karst systems. Water Resources Research, 57(12), Article e2021WR030912. https://doi.org/10.1029/2021WR030912
Class, H., Keim, L., Schirmer, L., Strauch, B., Wendel, K., & Zimmer, M. (2023a). Seasonal dynamics of gaseous CO₂ concentrations in a karst cave correspond with aqueous concentrations in a stagnant water column. Geosciences, 13(2), Article 51. https://doi.org/10.3390/geosciences13020051
Class, H., Keim, L., Schirmer, L., Strauch, B., Wendel, K., & Zimmer, M. (2023b, April 24–28). Dynamics of seasonal CO₂ concentrations above and below the karst-water table are influenced by density-driven transport: Monitoring data from a cave in the Swabian Jura and interpretation with numerical simulation models [Conference presentation]. EGU General Assembly 2023, Vienna, Austria. https://doi.org/10.5194/egusphere-egu23-6413
Danese, M., & Gioia, D. (2021). Spatial analysis for landscape changes: A bibliometric review. Applied Sciences, 11(21), Article 10078. https://doi.org/10.3390/app112110078
De Waele, J., & Gutiérrez, F. (2022). Karst hydrogeology, geomorphology and caves. Wiley. https://doi.org/10.1002/9781119605379
Faimon, J., Ličbinská, M., Zajíček, P., & Sracek, O. (2012). Partial pressures of CO2 in epikarstic zone deduced from hydrogeochemistry of permanent drips, the Moravian Karst, Czech Republic. Acta Carsologica, 41(1), 47–57. https://doi.org/10.3986/ac.v41i1.47
Ford, D. C., & Williams, P. (2007). Karst Hydrogeology and Geomorphology. John Wiley & Sons.
Gombert, P. (2002). Role of karstic dissolution in global carbon cycle. Global and Planetary Change, 33(1–2), 177–184. https://doi.org/10.1016/S0921-8181(02)00069-3
Gu, S., Li, S., & Santos, I. R. (2022). Anthropogenic land use substantially increases riverine CO2 emissions. Journal of Environmental Sciences, 118, 158–170. https://doi.org/10.1016/j.jes.2021.12.040
Gulley, J. D., Martin, J. B., & Brown, A. (2016). Organic carbon inputs, common ions and degassing: Rethinking mixing dissolution in coastal eogenetic carbonate aquifers. Earth Surface Processes and Landforms, 41(14), 2098–2110. https://doi.org/10.1002/esp.3975
Gulley, J. D., Martin, J. B., Moore, P. J., Brown, A., Spellman, P. D., & Ezell, J. (2015). Heterogeneous distributions of CO2 may be more important for dissolution and karstification in coastal eogenetic limestone than mixing dissolution. Earth Surface Processes and Landforms, 40(8), 1057–1071. https://doi.org/10.1002/esp.3705
Guo, Y., Zhang, C., Xiao, Q., & Bu, H. (2020). Hydrogeochemical characteristics of a closed karst groundwater basin in North China. Journal of Radioanalytical and Nuclear Chemistry, 325(2), 365–379. https://doi.org/10.1007/s10967-020-07247-w
Houillon, N., Lastennet, R., Denis, A., & Malaurent, P. (2020). The CO₂ dynamics in the continuum atmosphere–soil–epikarst and its impact on the karstification potential of water: A case study of the Lascaux Cave site (Montignac, France). In C. Bertrand, S. Denimal, M. Steinmann, & P. Renard (Eds.), Eurokarst 2018, Besançon (pp. 93–99). Springer International Publishing. https://doi.org/10.1007/978-3-030-14015-1_11
Huang, F., Zhang, C., Xie, Y., Li, L., & Cao, J. (2015). Inorganic carbon flux and its source in the karst catchment of Maocun, Guilin, China. Environmental Earth Sciences, 74(2), 1079–1089. https://doi.org/10.1007/s12665-015-4478-4
Kukuljan, L., Gabrovšek, F., Covington, M. D., & Johnston, V. E. (2021). CO₂ dynamics and heterogeneity in a cave atmosphere: Role of ventilation patterns and airflow pathways. Theoretical and Applied Climatology, 146(1–2), 91–109. https://doi.org/10.1007/s00704-021-03722-w
Lai, C., Liu, Z., Yu, Q., Sun, H., Xia, F., He, X., Ma, Z., Han, Y., Liu, X., Hao, P., Bao, Q., Shao, M., & He, H. (2024). Control of carbon dioxide exchange fluxes by rainfall and biological carbon pump in karst river–lake systems. Science of The Total Environment, 937, Article 173486. https://doi.org/10.1016/j.scitotenv.2024.173486
Li, D., Li, C., Huang, C., Li, H., Xu, X., Peng, X., Chen, G., & Zhang, L. (2024). Diurnal variations and driving factors of CO₂ flux at water–air interfaces in the open-flow sections of karst underground rivers. Applied Sciences, 14(4), Article 1395. https://doi.org/10.3390/app14041395
Li, K., Cao, X., Zhou, S., & Li, L. (2023). Spatial and temporal distribution characteristics of pCO₂ and CO₂ evasion in karst rivers under the influence of urbanization. Environmental Science and Pollution Research, 30(18), 53920–53937. https://doi.org/10.1007/s11356-023-26144-9
Li, L., Pu, J.-B., Li, J.-H., Yu, S., Xiao, Q., & Zhang, T. (2016). Variations of CO₂ exchange fluxes across water–air interface and environmental meaning in a surface stream in subtropical karst area, SW China. Huan jing ke xue = Huanjing kexue, 37(7), 2487–2495. https://doi.org/10.13227/j.hjkx.2016.07.010
Li Vigni, L., Daskalopoulou, K., Calabrese, S., Brusca, L., Bellomo, S., Cardellini, C., Kyriakopoulos, K., Brugnone, F., Parello, F., & D’Alessandro, W. (2023). Hellenic karst waters: Geogenic and anthropogenic processes affecting their geochemistry and quality. Scientific Reports, 13(1), Article 11191. https://doi.org/10.1038/s41598-023-38349-6
Liu, D., Tian, C., Chen, X., Zhang, W., Zhang, X., Wang, Z., Xu, D., & Chang, Y. (2023). Insights into karst groundwater hydrogeochemical characteristics and spatial evolution in the Jinan karst aquifer system, northern China. Water Supply, 23(12), 5004–5016. https://doi.org/10.2166/ws.2023.309
Liu, J., Chen, B., Xu, Z.-Y., Wei, Y., Su, Z.-H., Yang, R., Ji, Y.-X., Wang, X.-D., Zhang, L.-L., An, N., & Yang, F. (2020). Tracing solute sources and carbon dynamics under various hydrological conditions in a karst river in southwestern China. Environmental Science and Pollution Research, 27(10), Article 10. https://doi.org/10.1007/s11356-020-07650-6
Milanolo, S. (2016a). A conceptual model of the inorganic carbon transport within a karst massif. In S. Milanolo (Ed.), Sources and Transport of Inorganic Carbon in the Unsaturated Zone of Karst (pp. 43–57). Springer International Publishing. https://doi.org/10.1007/978-3-319-29308-0_4
Milanolo, S. (2016b). Introduction. In S. Milanolo (Ed.), Sources and Transport of Inorganic Carbon in the Unsaturated Zone of Karst (pp. 1–6). Springer International Publishing. https://doi.org/10.1007/978-3-319-29308-0_1
Mo, C., Xin, S., Huang, F., Cao, J., & Xiao, J. (2023). Characteristics of dissolution changes in carbonate rocks and their influencing factors in the Maocun Basin, Guilin, China. Water, 15(18), Article 3285. https://doi.org/10.3390/w15183285
Oberhelman, A., Martin, J. B., & Flint, M. K. (2024). Sources of limestone dissolution from surface water-groundwater interaction in the carbonate critical zone. Chemical Geology, 662, Article 122229. https://doi.org/10.1016/j.chemgeo.2024.122229
Özler, H. M. (2010). Carbonate weathering and connate seawater influencing karst groundwaters in the Gevas–Gurpinar–Güzelsu basins, Turkey. Environmental Earth Sciences, 61(2), 323–340. https://doi.org/10.1007/s12665-009-0345-5
Pracný, P., Faimon, J., Kabelka, L., & Hebelka, J. (2016). Variations of carbon dioxide in the air and dripwaters of Punkva Caves (Moravian Karst, Czech Republic). Carbonates and Evaporites, 31(4), 375–386. https://doi.org/10.1007/s13146-015-0259-0
Pu, J., Wang, A., Yin, J., Shen, L., & Yuan, D. (2018). PCO2 variations of cave air and cave water in a subtropical cave, SW China. Carbonates and Evaporites, 33(3), 477–487. https://doi.org/10.1007/s13146-017-0359-0
Pu, J., Yuan, D., Zhao, H., & Shen, L. (2014). Hydrochemical and PCO2 variations of a cave stream in a subtropical karst area, Chongqing, SW China: Piston effects, dilution effects, soil CO2 and buffer effects. Environmental Earth Sciences, 71(9), 4039–4049. https://doi.org/10.1007/s12665-013-2787-z
Rembert, F., Léger, M., Jougnot, D., & Luquot, L. (2023). Geoelectrical and hydro-chemical monitoring of karst formation at the laboratory scale. Hydrology and Earth System Sciences, 27(2), 417–430. https://doi.org/10.5194/hess-27-417-2023
Renard, F., Gundersen, E., Hellmann, R., Collombet, M., & Le Guen, Y. (2005). Numerical modeling of the effect of carbon dioxide sequestration on the rate of pressure solution creep in limestone: Preliminary results. Oil & Gas Science and Technology, 60(2), 381–399. https://doi.org/10.2516/ogst:2005023
Rouhi, M., Linden, T., Doherty, D., & Prior, S. J. (2024). Environmental Risk Assessment in Community Care: A Scoping Review. Healthcare, 12(8), Article 859. https://doi.org/10.3390/healthcare12080859
Scells, H., Zuccon, G., Koopman, B., & Clark, J. (2020). Automatic Boolean query formulation for systematic review literature search. In Proceedings of The Web Conference 2020 (pp. 1071–1081). https://doi.org/10.1145/3366423.3380185
Sládek, I., Gessert, A., Braun, M., Heim, E., Czébely, A., & Palesu, L. (2023). Chemical denudation dynamic based on hydrochemical measurements in the area of Drienovecká jaskyňa Cave basin (Slovak karst, Slovakia). Geographia Cassoviensis, 17(2), 129–149. https://doi.org/10.33542/GC2023-2-03
Strachan, A., & Markwick, A. (2025). Using a scoping review to inform a planetary-conscious pedagogical approach to primary science education. Research in Science Education, 55(4), 817–871. https://doi.org/10.1007/s11165-025-10280-y
Troester, J. W., & White, W. B. (1984). Seasonal fluctuations in the carbon dioxide partial pressure in a cave atmosphere. Water Resources Research, 20(1), 153–156. https://doi.org/10.1029/WR020i001p00153
Vargas-Sánchez, M., Alcocer, J., Puche, E., & Sánchez-Carrillo, S. (2024). Abiotic processes control carbon dioxide dynamics in temperate karst lakes. PeerJ, 12, Article e17393. https://doi.org/10.7717/peerj.17393
Vialle, S., Contraires, S., Zinzsner, B., Clavaud, J., Mahiouz, K., Zuddas, P., & Zamora, M. (2014). Percolation of CO2 ‐rich fluids in a limestone sample: Evolution of hydraulic, electrical, chemical, and structural properties. Journal of Geophysical Research: Solid Earth, 119(4), 2828–2847. https://doi.org/10.1002/2013JB010656
Wallin, M., & Bjerle, I. (1990). The use of the penetration model for the dissolution of limestone in the CO₂ water system. Chemical Engineering Communications, 91(1), 91–111. https://doi.org/10.1080/00986449008940704
Wang, Z., Yin, J.-J., Pu, J., Xiao, Q., Zhang, T., & Li, J. (2021). Flux and influencing factors of CO2 outgassing in a karst spring-fed creek: Implications for carbonate weathering-related carbon sink assessment. Journal of Hydrology, 596, Article 125710. https://doi.org/10.1016/j.jhydrol.2020.125710
White, W. (2016). Chemistry and karst. Acta Carsologica, 44(3), 349–362. https://doi.org/10.3986/ac.v44i3.1896
Wróblewski, W., Bella, P., Drewnik, M., Duliński, M., Gradziński, M., Motyka, J., Nęcki, J., & Sala, P. (2024). Mixing of endogenous CO2 and meteoric H2O causes extremely efficient carbonate dissolution. Science of The Total Environment, 936, Article 173347. https://doi.org/10.1016/j.scitotenv.2024.173347
Xiong, Y., Zhou, Z., Ding, S., Zhang, H., Huang, J., Gong, X., & Su, D. (2023). Spatiotemporal variation characteristics and influencing factors of karst cave microclimate environments: A case study in Shuanghe Cave, Guizhou Province, China. Atmosphere, 14(5), Article 813. https://doi.org/10.3390/atmos14050813
Yanes, J. L., & Moral, F. (2024). Spatial variability of hydrochemistry and environmental controls in karst aquifers of the southern Iberian Peninsula: Implications for climate change impact assessment. Science of The Total Environment, 907, Article 168141. https://doi.org/10.1016/j.scitotenv.2023.168141
Ye, H., Han, Z., Wu, P., Zha, X., Li, X., Hou, E., Cao, Y., Tang, C., Zhang, R., Sardans, J., & Peñuelas, J. (2024). Disentangling sources and transformation mechanisms of nitrogen, sulfate, and carbon in water of a karst critical zone. Science of The Total Environment, 922, Article 171310. https://doi.org/10.1016/j.scitotenv.2024.171310
Zeng, C., Gremaud, V., Zeng, H., Liu, Z., & Goldscheider, N. (2012). Temperature-driven meltwater production and hydrochemical variations at a glaciated alpine karst aquifer: Implication for the atmospheric CO2 sink under global warming. Environmental Earth Sciences, 65(8), 2285–2297. https://doi.org/10.1007/s12665-011-1160-3
Zhang, T., Pu, J., Li, J., Yuan, D., & Li, L. (2017). Stable isotope and aquatic geochemistry of a typical subtropical karst subterranean stream in southwest China. Carbonates and Evaporites, 32(3), 415–430. https://doi.org/10.1007/s13146-017-0356-3
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2026 Journal of the Geographical Institute “Jovan Cvijić” SASA

This work is licensed under a Creative Commons Attribution 4.0 International License.








