106
Views
1
CrossRef citations to date
0
Altmetric
Articles

The stable isotope composition of hoarfrost

, , &
Pages 386-399 | Received 20 Aug 2020, Accepted 08 Mar 2021, Published online: 03 May 2021

References

  • Ahlmann HW. On the formation of hoarfrost and its relation to glacial growth. J Geol. 1929;37(3):275–280.
  • Klimaszewska K, Sârbu C, Polkowska Ż, et al. Characterisation and classification of hoarfrost samples collected in Poland (2003–2005) by discriminant analysis. Chem Ecol. 2009;25(2):87–97.
  • Polkowska Ż, Sobik M, Błaś M, et al. Hoarfrost and rime chemistry in Poland–An introductory analysis from meteorological perspective. J Atmos Chem. 2009;62:5–30.
  • Marcellos H, Single WV. Ice nucleation on wheat. Agric Meteorol. 1976;16:125–129.
  • Côté J, Konrad JM. A field study of hoarfrost formation on insulated pavements. Can Geotech J. 2011;39(3):547–560.
  • Makkonen L, Zhang J, Karlsson T, et al. Modelling the growth of large rime ice accretions. Cold Reg Sci Technol. 2018;151:133–137.
  • Makkonen L. A model of hoarfrost formation on a cable. Cold Reg Sci Technol. 2013;85:256–260.
  • Fjærestad JS, Wåhlin J, Klein-Paste A. Experimental setup simulating hoarfrost formation on roadways. J Cold Reg Eng. 2020;34(2). doi:10.1061/(ASCE)CR.1943-5495.0000207.
  • Hemers CJL, Piucco RO, Barbosa Jr. JR, et al. A study of frost growth and densification on flat surfaces. Exp Therm Fluid Sci. 2009;33(2):371–379.
  • Zander R. Spectral scattering properties of ice clouds and Hoarfrost. J Geophys Res. 1966;71(2):375–378.
  • Gutman I, Solovyev Y, Ágústsson H, et al. Identification of hoarfrost corona losses events based on advanced operational data analysis and weather modelling. In: Németh B, editor. Proceedings of the 21st International symposium on high voltage engineering. Vol 1. Cham: Switzerland: Springer; 2020. (Lecture Notes in Electrical Engineering; 598).
  • Malmgren F. Studies of humidity and hoar-frost over the Arctic Ocean. Results of the “Maud” Expedition. Received by the Geophysical Comission January 15, 1926.
  • Gałek G, Sobik M, Błaś M, et al. Dew and hoarfrost frequency, formation efficiency and chemistry in Wroclaw, Poland. Atmos Res. 2015;151:120–129.
  • Lahti K, Lahtinen M, Nousiainen K. Transmission line corona losses under hoar frost conditions. IEEE Trans Power Deliv. 1997;12(2):928–933.
  • Skarżyńska K, Polkowska Ż, Namiesnik J. Sample handling and determination of physico chemical parameters in rime, hoarfrost, dew, fog and cloud water samples – a review. Pol J Environ Stud. 2006;15(2):185–209.
  • Keller-Pirklbauer A, Pauritsch M, Winkler G. Widespread occurrence of ephemeral funnel hoarfrost and related air ventilation in coarse-grained sediments of a relict rock glacier in the Seckauer Tauern range. Austria. Geogr Ann A. 2015;97(3):453–471.
  • Georg JC. Techniques of frost prediction. In: A. Bagdonas, J. C. Georg, J. F. Gerber, editors. Techniques of frost prediction and methods of frost and cold protection. Geneva: World Meteorological Organization (WMO); 1978. p. 40–41. (Technical Note; 157.).
  • Cerling TE, Alexander AJ. Chemical composition of hoarfrost, rime and snow during a winter inversion in Utah, U.S.A. Water Air Soil Pollut. 1987;35:373–379.
  • Klimaszewska K, Polkowska Ż, Namieśnik J. Major ions and their relationship in rime and hoarfrost samples from highly urbanized regions. Pol J Environ Stud. 2007;16(6):943–948.
  • Migała K, Liebersbach J, Sobik M. Rime in the Gigant Mts. (The Sudetes, Poland). Atmos Res. 2002;64:63–73.
  • Sobik M, Polkowska Ż, Błaś M, et al. Various forms of atmospheric precipitation and deposits as a measure of environmental pollution in different geographic regions of Poland, part III –hoarfrost and rime. Ecol Chem Eng S. 2009;16(1):81–105.
  • Błaś M, Sobik M, Polkowska Ż, et al. Water and chemical properties of hydrometeors over Central European mountains. Pure Appl Geophys. 2012;169:1067–1081.
  • Lange CA, Matschullat J, Zimmermann F, et al. Fog frequency and chemical composition of fog water–a relevant contribution to atmospheric deposition in the eastern Erzgebirge, Germany. Atmos Environ. 2003;37:3731–3739.
  • Watanabe K, Takebe Y, Sode N, et al. Fog and rain water chemistry at Mt. Fuji: A case study during the September 2002 campaign. Atmos Res. 2006;82:652–662.
  • Stenni B, Scarchilli C, Masson-Delmotte V, et al. Three-year monitoring of stable isotopes of precipitation at Concordia Station, east Antarctica. Cryosphere. 2016;10(5):2415–2428.
  • Schlosser E, Dittmann A, Stenni B, et al. The influence of the synoptic regime on stable water isotopes in precipitation at dome C, east Antarctica. Cryosphere. 2017;11:2345–2361.
  • Lacelle D, Lauriol B, Clark ID. Formation of seasonal ice bodies and associated cryogenic carbonates in caverne de l'Ours, quebec, Canada: kinetic isotope effects and pseudo-biogenic crystal structures. J Cave Karst Stud. 2009;71(1):48–62.
  • Bordei-Ion E. Rolul lanţului alpino-carpatic în evoluţia ciclonilor mediteraneeni. Bucureşti: Editura Academiei Republicii Socialiste Române; 1983; Romanian.
  • Kottek M, Grieser J, Beck C, et al. F. World map of the Koeppen–Geiger climate classification updated. Meteorol Z. 2006;15(3):259–263.
  • Sturm M, Holmgren J. A seasonal snow cover classification system for local to global applications. J Climate. 1995;8(5):1261–1283.
  • Mateescu E, Manea A, Dima V, et al. Instrucțiuni meteorologice – volumul 1 – efectuarea măsurătorilor și observațiilor meteorologice, codificarea datelor meteorologice. București: Administrația Națională de Meteorologie; 2017; Romanian.
  • Stein AF, Draxler RR, Rolph GD, et al. NOAA’s HYSPLIT atmospheric transport and dispersion modeling system. Bull Am Meteorol Soc. 2015;96:2059–2077.
  • Dansgaard W. Stable isotopes in precipitation. Tellus. 1964;16:436–468.
  • Craig H. Isotopic variations in meteoric water. Science. 1961;133(3465):1702–1703.
  • Bojar AV, Halas S, Bojar H-P, et al. Stable isotope hydrology of precipitation and groundwater of a region with high continentality, South Carpathians, Romania. Carpath J Earth Environ Sci. 2017;12:513–524.
  • Varlam C, Duliu OG, Ionete RE, et al. Time series analysis of the (18O, (2H and dexcess values in correlation with monthly temperature, relative humidity and precipitation in Râmnicu Vâlcea, Romania: 2012–2018. Geol Soc Spec Publ. 2020;507:SP507–2020-56.
  • Bădăluță CA, Perșoiu A, Ioniță M, et al. Stable H and O isotope-based investigation of moisture sources and their role in river and groundwater recharge in the NE Carpathian mountains, East-Central Europe. Isot Environ Health Stud. 2019;55(2):161–178.
  • Bojar AV, Ottner F, Bojar HP, et al. Stable isotope and mineralogical investigations on clays from the late cretaceous sequences, hațeg basin, Romania. Appl Clay Sci. 2009;45(3):155–163.
  • Hurrel JW, Holland MM, Gent PR, et al. The community Earth system model. A Framework for Collaborative Research. Bull Amer Meteor Soc. 2013;94(9):1339–1360.
  • Deser C, Hurell JW, Phillips AS. The role of the North Atlantic Oscillation in European climate projections. Clim Dyn. 2017;49:3141–3157.
  • Bojariu R, Paliu D-M. North Atlantic Oscillation projection on Romanian climate. In: Brunet India M, López Bonillo D, editor. Detecting and modelling regional climate change. Berlin, Heidelberg: Springer; 2001. p. 345–356.
  • Perșoiu A, Onac BP, Wynn JG, et al. Holocene winter climate variability in Central and Eastern Europe. Sci Rep. 2017;7:1196.
  • Perșoiu A, Ioniță M, Weiss H. Atmospheric blocking induced by the strengthened Siberian High led to drying in west Asia during the 4.2 ka BP event – a hypothesis. Clim Past. 2019;15:781–793.
  • Cohen J, Saito K, Entekhabi D. The role of the Siberian high in northern hemisphere climate variability. Geophys Res Lett. 2001;28(2):299–302.
  • Ioniță M, Bădăluță CA, Scholz P, et al. Vanishing river ice cover in the lower part of the Danube basin – signs of a changing climate. Sci Rep. 2018;8:7948.
  • Jouzel J, Souchez RA. Melting–refreezing at the glacier sole and the isotopic composition of the ice. J Glaciol. 1982;28(98):35–42.
  • Souchez RA, Jouzel J. On the isotopic composition in δD and δ18O of water and ice during freezing. J Glaciol. 1984;30(106):369–372.
  • Perşoiu A, Onac BP, Wynn J, et al. Stable isotopes behavior during cave ice formation by water freezing in scărişoara Ice cave. J Geophys Res. 2011;116:D02111.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.