Factors controlling variation of δ2H and δ18O in precipitation in Southern Bohemia, Central Europe

被引:0
作者
Kopacek, Marek [1 ,2 ]
Porcal, Petr [1 ,2 ]
Kopacek, Jiri [1 ]
Vystavna, Yuliya [1 ,2 ]
机构
[1] CAS, Inst Hydrobiol, Biol Ctr, Na Sadkach 7, CZ-37005 Ceske Budejovice, Czech Republic
[2] Univ South Bohemia, Fac Sci, CZ-37005 Ceske Budejovice, Czech Republic
关键词
Stable water isotopes; bulk atmospheric precipitation; Air mass trajectories; HYSPLIT model; STABLE ISOTOPIC COMPOSITION; OXYGEN ISOTOPES; WATER; TEMPERATURE; RAINFALL; HYDROGEN; EASTERN; RECORD; REGION;
D O I
10.1016/j.atmosenv.2025.121101
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The effects of local climate parameters, seasonality and sources of air masses on the stable water isotopes [hydrogen (delta H-2) and oxygen (delta O-18)] in precipitation were investigated along an altitudinal gradient (381-1118 m a.s.l.) in southern Bohemia, Central Europe, from December 2021 to November 2023. The relationship between the observed delta H-2 and delta O-18 values was consistent with the Global Meteoric Water Line. The isotopic composition of precipitation changed with increasing altitude by -6.5 and -1.2 parts per thousand km(-1) for delta H-2 and delta O-18, respectively. The delta values differed between seasons, with the values being most enriched in summer and most depleted in winter. An analysis of the air mass trajectories using the Hybrid Single-Particle Lagrangian Integrated Trajectory Model showed that the main sources of precipitation were the North Atlantic (from 44% in spring to 70% in fall and winter), the Arctic Ocean (from 15% in summer to 38% in spring) and the Mediterranean Sea (from 12% in winter to 34% in summer). Throughout the study period, average delta values differed significantly between air masses (p < 0.05) and along the altitudinal gradient, with the most enriched values (from -56 to -37 parts per thousand for delta H-2 and from -8.2 to -5.5 parts per thousand for delta O-18) and the most depleted values (from -91 to -84 parts per thousand for delta H-2 and from -12.7 to -12.0 parts per thousand for delta O-18) occurring in the Mediterranean and Arctic air masses, respectively. However, for individual daily samples, strong correlations occurred between the delta values and air temperature (the strongest), humidity, precipitation, time of sunshine and solar radiation, while the influence of air mass directions was not significant. A stepwise regression analysis showed that most of the variation in daily delta values (43-48% and 47-52% of delta H-2 and delta O-18, respectively) was explained by the combination of air temperature and humidity, precipitation amount, and season.
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页数:10
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  • [11] Dansgaard W., Johnsen S.J., Moller J., Langway J.C., One thousand centuries of climatic record from camp century on the Greenland ice sheet, Science, 166, pp. 377-380, (1969)
  • [12] de Wet R.F., West A.G., Harris C., Seasonal variation in tap water δ<sup>2</sup>H and δ<sup>18</sup>O isotopes reveals two tap water worlds, Sci. Rep., 10, (2020)
  • [13] Dordevic D.S., Tosic I., Unkasevic M., Duraskovic P., Water-soluble main ions in precipitation over the southeastern Adriatic region: chemical composition and long-range transport, Environ. Sci. Pollut. Res. Int., 17, pp. 1591-1598, (2010)
  • [14] Erdelyi D., Kern Z., Nyitrai T., Hatvani I.G., Predicting the spatial distribution of stable isotopes in precipitation using a machine learning approach: a comparative assessment of random forest variants, GEM Int J Geomath, 14, (2023)
  • [15] Gimenez R., Bartolome M., Gazquez F., Iglesias M., Moreno A., Underlying climate controls in triple oxygen (<sup>16</sup>O, <sup>17</sup>O, <sup>18</sup>O) and hydrogen (<sup>1</sup>H, <sup>2</sup>H) isotopes composition of rainfall (Central Pyrenees), Front. Earth Sci., 9, (2021)
  • [16] Gorka M., Skrzypek G., Halas S., Jedrysek M.-O., Strapoc D., Multi-seasonal pattern in 5-year record of stable H, O and S isotope compositions of precipitation (Wrocław, SW Poland), Atmos. Environ., 158, pp. 197-210, (2017)
  • [17] Hager B., Foelsche U., Stable isotope composition of precipitation in Austria, Aust. J. Earth Sci., 108, pp. 2-13, (2015)
  • [18] Huyghe D., Mouthereau F., Sebilo M., Vacherat A., Segalen L., Richard P., Biron P., Impact of topography, climate and moisture sources on isotopic composition (δ<sup>18</sup>O & δD) of rivers in the Pyrenees: implications for topographic reconstructions in small orogens, Earth Planet Sci. Lett., 484, pp. 370-384, (2018)
  • [19] Kern Z., Hatvani I.G., Czuppon G., Forizs I., Erdelyi D., Kanduc T., Palcsu L., Vreca P., Isotopic 'altitude' and 'continental' effects in modern precipitation across the Adriatic-Pannonian region, Water, 12, (2020)
  • [20] Kim K., Lee X., Isotopic enrichment of liquid water during evaporation from water surfaces, J Hydrol, 399, pp. 364-375, (2011)