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The lethal effect of hydrotechnical concrete on freshwater Bivalvia

Abstrakt

Most hydrotechnical buildings under construction demand the concrete mixture to be set directly under water. The main reason for such a procedure is to limit the washing away of the the concrete binding mixture and to increase the efficiency of organisation of work so as to ensure continuity in concreting. The impact on the aquatic environment of recent developments in concrete technology and the use of new components has not yet been established . Natural pebble aggregate containing portland cement and fugacious siliceous ash as a binder was used to prepare BP concrete samples, while concrete marked LB was composed with lightweight aggregate and portland cement as a binder. The aim of this paper was to answer to the question whether hydrotechnical concrete of different compositions (BP and LB) and the technology of setting in a water habitat have any influence on the life condition of commonly occurring Dreissena polymorpha (Mollusca, Bivalvia). The lethal effect of two types of freshly hardening concrete was observed. In the case of LB concrete the lethal outcome for D. polymorpha could be the effect of a considerable increase of electrolytic conduction in the test cultivation. In the case of BP the parameters of electrolytic conductivity and pH did not exceed the values appearing in lakes. The possibility of the occurrence of toxic compounds of D. polymorpha, arising from the reaction of the aquatic / lake environment or the elution of some components should be taken into account. D. polymorpha serves as an indicator of toxicity in the aquatic environment and therefore can be used as a model organism in the analysis of the influence concrete on the natural environment. The results obtained in this study indicate the significant impact of modern chemical composition of concrete on the aquatic environment and the living organisms that cover it. They underline the need for research based on the hydrobiont reaction to the substances used in the natural environment.

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Kategoria:
Publikacja w czasopiśmie
Typ:
artykuły w czasopismach
Opublikowano w:
Limnological Review nr 19, strony 137 - 145,
ISSN: 1642-5952
Język:
angielski
Rok wydania:
2019
Opis bibliograficzny:
Wojtasik B., Zbawicka M., Grabarczyk L., Kurpińska M.: The lethal effect of hydrotechnical concrete on freshwater Bivalvia// Limnological Review -Vol. 19,iss. 3 (2019), s.137-145
DOI:
Cyfrowy identyfikator dokumentu elektronicznego (otwiera się w nowej karcie) 10.2478/limre-2019-0012
Bibliografia: test
  1. Assaad J.J., Daou Y., Salman H., 2011, Correlating washout to strength loss of underwater concrete, J. Inst. Civ. Eng. 106(6): 529-536. otwiera się w nowej karcie
  2. Broekmans M.A.T.M., 2016, Safe long-term immobilization of heavy metals: Looking at natural rocks, Am. Mineral. 101(1): 3-4. otwiera się w nowej karcie
  3. Bonacci O., Gottstein S., Roje-Bonacci T., 2009, Negative im- pacts of grouting on the underground karst environment, Ecohydrology 2: 492-502. otwiera się w nowej karcie
  4. Chung S-Y., Abd Elrahman M., Sikora P., Rucinska T., Horszczaruk E., Stephan D., 2017, Evaluation of the ef- fects of crushed and expanded waste glass aggregates on the material properties of lightweight concrete using im- age-based approaches, Materials 10(12): 1354. otwiera się w nowej karcie
  5. Elliott P., Aldridge D.C., Moggridge G.D., 2008, Zebra mussel filtration and its potential uses in industrial water treat- ment, Water Res. 42: 1664-1674. otwiera się w nowej karcie
  6. Fifield J.S., 2001, Field manual on sediment and erosion con- trol best management practices for contractors and in- spectors, Forester Press, Huntsville, 150 pp.
  7. Fifield J.S., 2004, Designing for effective sediment and ero- sion control on construction sites, Forester Press, Hunts- ville, 302 pp.
  8. Heniegal A.M., 2012, Behavior of underwater self-compact- ing concrete, J. Eng. Sci. 40(4): 1005-1023. otwiera się w nowej karcie
  9. Horszczaruk E., 2016, Influence of addition of fluidal fly ash- es on the mechanical properties of underwater concretes, J. Build. Chem. 1: 27-30. otwiera się w nowej karcie
  10. Horszczaruk E., Brzozowski P., 2014, Bond strength of un- derwater repair concretes under hydrostatic pressure, Constr. Build. Mater. 72: 167-173. otwiera się w nowej karcie
  11. Horszczaruk E., Brzozowski P., Adamczewski G., Rudnicki T., 2014, Influence of hydrostatic pressure on compres- sive strength of self-consolidating concrete, J. Civil Eng. Architecture (JCEA) 8(12): 1549-1555.
  12. Japan Society of Civil Engineers, 1991, Recommenda- tions for design and construction in anti-washout under- water concrete, Concr. Libr. JSCE 67 p. 89. otwiera się w nowej karcie
  13. Lamond J.F., Pielert J.H., 2006, Significance of tests and prop- erties of concrete and concrete-making materials. STP 169D, ASTM International, West Conshohocken, 664 pp. otwiera się w nowej karcie
  14. Lee M., Lee M., Su Y., Huang Y., Tung W., 2018, The study of UHPC precast concrete containing incinerator fly ash, J. Test. Eval. 46: 160-167. otwiera się w nowej karcie
  15. MŚ RP] Ministerstwo Środowiska RP (Ministry of the Envi- ronment of the Republic of Poland), 2011, Rozporządzenie Ministra Środowiska z dnia 9 listopada 2011 r. w sprawie sposobu klasyfikacji stanu jednolitych części wód powi- erzchniowychoraz środowiskowych norm jakości dla substancji priorytetowych (Regulation of the Minister for the Environment of 9 November 2011 on the classifica- tion of the status of surface water bodies and environ- mental quality standards for priority substances), Dz. U. Nr 257, poz. 1545.
  16. Nalepa T.F., Schloesser D.W. (eds), 1993, Zebra mussels: biol- ogy, impacts, and control, Lewis Publishers, Boca Raton, 810 pp. otwiera się w nowej karcie
  17. Neville A.M., 2011, Properties of concrete, Pearson Educa- tion Limited, Harlow, 872 pp.
  18. Piechocki A., Dyduch-Falniowska A., 1993, Mięczaki (Mol- lusca), Małże (Bivalvia). Wydaw. Nauk. PWN, Warszawa, 204 pp (in Polish).
  19. Shafigh P., Mahmud H.B., Jumaat M.Z., Zargar M., 2014, Agricultural wastes as aggregate in concrete mixtures -a review, Constr. Build. Mater. 53: 110-117. otwiera się w nowej karcie
  20. Sikora P., Augustyniak A., Cendrowski K., Horszczaruk E., Rucinska T., Nawrotek P., Mijowska E., 2016, Charac- terization of mechanical and bactericidal properties of cement mortars containing waste glass aggregate and na- nomaterials, Materials 9(8): 701. otwiera się w nowej karcie
  21. Sikora P., Cendrowski K., Markowska-Szczupak A., Horszc- zaruk A., Mijowska E., 2017, The effects of silica/tita- nia nanocomposite on the mechanical and bactericidal properties of cement mortars, Constr. Build. Mater. 150: 738-746. otwiera się w nowej karcie
  22. Stanczykowska A., Lewandowski K., 1993, Thirty years of studies of Dreissena polymorpha in Mazurian Lakes of northeastern Poland, [in:] Nalepa T.F., Schloesser D.W. (eds), Zebra mussels: Biology impacts and control, Lewis Publishers, Boca Raton:. 3-33.
  23. US Army Corps of Engineers Standards, 2006, CRD-C 661-06 Specification for antiwashout admixtures for concrete, US Government Printing Office, Washing- ton, 15 pp. otwiera się w nowej karcie
  24. Walsh C., Roy A., Feminella J., Cottingham P., Groffman P., Morgan R., 2005, The urban stream syndrome: current knowledge and the search for a cure, J. N. Am. Benthol. Soc. 24: 706-723. otwiera się w nowej karcie
  25. Wei S., Jiang Z., Liu H., Zhou D., Sanchez-Silva M., 2013, Microbiologically induced deterioration of concrete -a review, Braz. J. Microbiol. 44(4): 1001-1007. otwiera się w nowej karcie
  26. Wiktor J., 1969, Biologia Dreissena polymorpha (Pall.) i jej ekologiczne znaczenie w Zalewie Szczecińskim (Biology of Dreissena polymorph (Pall.) and its ecological sig- nificance in the Szczecin Lagoon), Stud. Mater. MIR A5: 1-88 (in Polish).
  27. Wisconsin Department of Natural Resources, 2000, Nonpoint source control plan for the Lake Men- dota Priority Watershed. Vol. 2, Department of Natural Resources, Mendota. otwiera się w nowej karcie
  28. Wojtasik B., 2017, A method of assessing the biological cor- rosion of porous structures, including concrete, in par- ticular hydrotechnical concrete, Polish Patent Office, Ap- plication Number P.421947.
  29. Wojtasik B., Zbawicka M., Kupiec J., 2017, Molluscs D. poly- morpha and L. stagnalis for use in assessing the ecological status of water reservoirs and rivers (waters and bottom sediments) and the effectiveness of probiotic substances, Authorized Mikronatura Środowisko Sp. z o.o, Polish Patent Office, application number P.422659. otwiera się w nowej karcie
  30. Wright I.A., Davies P.J., Findlay S.J., Jonasson O.J., 2011, A new type of water pollution: concrete drainage infra- structure and geochemical contamination of urban wa- ters, Mar. Freshwater Res. 62: 1355-1361. otwiera się w nowej karcie
Weryfikacja:
Politechnika Gdańska

wyświetlono 129 razy

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