يعرض 1 - 20 نتائج من 58 نتيجة بحث عن '"Azevedo, José Paulo Soares de"', وقت الاستعلام: 0.79s تنقيح النتائج
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    المصدر: Ibero-American Journal of Environmental Sciences; Vol. 13 No. 11 (2022): Revista Ibero-Americana de Ciências Ambientais - Novembro 2022; 279-290 ; Revista Iberoamericana de Ciencias Ambientales; Vol. 13 Núm. 11 (2022): Revista Ibero-Americana de Ciências Ambientais - Novembro 2022; 279-290 ; Revista Ibero-Americana de Ciências Ambientais; v. 13 n. 11 (2022): Revista Ibero-Americana de Ciências Ambientais - Novembro 2022; 279-290 ; 2179-6858

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    المساهمون: FINEP, CNPq

    المصدر: Oecologia Australis; v. 26, n. 2 (2022): Limnologia no Brasil: Um tributo ao Prof. Francisco de Assis Esteves; 255-270 ; 2177-6199

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    Relation: https://revistas.ufrj.br/index.php/oa/article/view/43079/29168; https://revistas.ufrj.br/index.php/oa/article/view/43079/29196; Abonyi, A., Leitão, M., Lançon, A. M., & Padisák, J. 2012. Phytoplankton functional groups as indicators of human impacts along the River Loire (France). Hydrobiologia, 698, 233–249.; Alvim, R. B., De Mello, W. V., Silveira, C. S., Kligerman, D. C., & Ribeiro, R. P. 2014. Emissões de óxido nitroso em águas fluviais não poluídas e poluídas da Bacia do Rio Paquequer (Teresópolis, Rio de Janeiro). Engenharia Sanitária e Ambiental, 19(4), 471–478.; Bicudo, C. E. M., & Menezes, M. 2017. Gêneros de algas de águas continentais: chave para identificação e descrições. São Carlos, SP: Rima: p. 552.; Bonecker, C. C., Nagae, M. Y., Bletller, M. C. M., Velho, L. F. M., & Lansac-Tôha, F. A. 2007. Zooplankton biomass in tropical reservoirs in southern Brazil. Hydrobiologia, 579, 115–123.; Bower, C. E., & Holm-Hansen, T. 1980. A salicylate-hypoclorite method for determining ammonia in sea-water. Canadian Journal of Fisheries and Aquatic Sciences, 37, 794–798.; Burdis, R. M. & Hirsch, J. K. 2017. Crustacean zooplankton dynamics in a natural riverine lake, Upper Mississippi River. Journal of Freshwater Ecology, 32(1), 247–265.; Cardoso, S. J., Nabout, J. C., Farjalla, V. F., Lopes, P. M., Bozelli, R. L., Huszar, V. L. M. M., & Roland, F. 2017. Environmental factors driving phytoplankton taxonomic and functional diversity in Amazonian floodplain lakes. Hydrobiologia, 802, 115–130.; Cunha, E. D. S., Cunha, A. C., Silveira Jr., A. M., & Faustino, S. M. M. 2013. Phytoplankton of two rivers in the eastern Amazon: characterization of biodiversity and new occurrences. Acta Botanica Brasilica, 27(2), 364–377.; Da Silva, P. V. R. M., Pecly, J. O. G., & Azevedo, J. P. S. 2017. Uso de traçadores fluorescentes para determinar características de transporte e dispersão no Rio Piabanha (RJ) para a modelagem quali‑quantitativa pelo HEC‑RAS. Engenharia Sanitária e Ambiental, 22(3), 463–472.; De Mello, F. V., de Carvalho, G. O., de Holanda, T. B., Lino, A. S., Júnior, J. R. T., Azevedo, J. P. S., & Torres, J. P. M. 2018. Current state of contamination by persistent organic pollutants and trace elements on Piabanha River basin - Rio de Janeiro, Brazil. The Electronic Journal of Chemistry, 10(4), 327–336.; Descy, J.-P., Darchambeau, F., Lambert, T., Stoyneva‐Gaertner, M. P., Bouillon, S., & Borges, A. V. 2017. Phytoplankton dynamics in the Congo River. Freshwater Biology, 62(1), 87–101.; Devercelli, M., & O’Farrell, I. 2013. Factors affecting the structure and maintenance of phytoplankton functional groups in a nutrient rich lowland river. Limnologica, 43, 67–78.; Elmoor-Loureiro, L. M. A. 1997. Manual de identificação de cladóceros límnicos do Brasil. Brasília: Universa: p. 156.; Fernando, C. H. 2002. A Guide to tropical freshwater zooplankton: Identification, ecology and impact on fisheries. Leiden, The Netherlands: Backhuys Publishers: p. 291.; Gilbert, R. O. 1987. Statistical methods for environmental pollution monitoring. New York, NY: John Wiley & Sons: p. 226.; Golterman, H. L., Clymo, R. S., & Ohnstad, M. A. M. 1978. Methods of physical and chemical analysis of fresh water. Oxford, UK: Blackwell: p. 214.; Gosselain, V., Viroux, L., & Descy, J.-P. 1998a. Can a community of small-bodied grazers control phytoplankton in rivers? Freshwater Biology, 39, 9–24.; Gosselain, V., Joaquim-Justo, C., Viroux, L., Hammer, A., Métens, A., & Schweitzer, S. 1998b. Grazing by large river zooplankton: a key to summer potamoplankton decline? The case of the Meuse and Moselle rivers in 1994 and 1995. Hydrobiologia, 369, 199–216.; Graco-Roza, C., Santos, J. B. O., Huszar, V. L. M., Domingos, P., Soininen, J., & Marinho, M. M. 2020. Downstream transport processes modulate the effects of environmental heterogeneity on riverine phytoplankton. Science of the Total Environment, 703, 135519.; Hillebrand, H., Dürselen, C., Kirschtel, D., Pollingher, U., & Zohary, T. 1999. Biovolume calculation for pelagic and benthic microalgae. Journal of Phycology, 35, 403–424.; Hilton, J., O’Hare, M., Bowes, M. J., & Jones, J. I. 2006. How green is my river? A new paradigm of eutrophication in rivers. The Science of the Total Environment, 365(1–3), 66–83.; Instituto Brasileiro de Geografia e Estatística. 2002. Mapa de clima do Brasil. Rio de Janeiro: IBGE. 1 map. Scale 1:5,000,000. Available at: https://atlasescolar.ibge.gov.br/images/atlas/mapas_brasil/brasil_clima.pdf. Access in February 2021.; Jacobsen, D. 2008. Tropical High-Altitude Streams. In: D. Dudgeon (Ed.). Tropical stream ecology. pp. 219–256. San Diego: Academic Press.; Koste, W. 1978. Rotatoria. II Tafelband. Berlin, Stuttgart: Gebrüder Borntraeger: p. 234.; Kruk, C., & Segura, A. M. 2012. The habitat template of phytoplankton morphology-based functional groups. Hydrobiologia, 698, 191–202.; Kruskal, W. H., & Wallis, W. A. 1952. Use of Ranks in One-Criterion Variance Analysis. Journal of the American Statistical Association, 47(260), 583–621.; Kummerow, C., Barnes, W., Kozu, T., Shiue, J., & Simpson, J. 1998. The Tropical Rainfall Measuring Mission (TRMM) sensor package. Journal of Atmospheric and Oceanic Technology, 15, 809–817.; Marques, A. C., Mattos, C. R. C., & Silveira, C. S. 2017. Comportamento hidrológico da Região Serrana do Rio de Janeiro: bacia do Rio Piabanha. Anuário do Instituto de Geociências – UFRJ, 40(2), 82–88.; Medeiros, L. C., Mattos, A., Lürling, M., & Becker, V. 2015. Is the future blue-green or brown? The effects of extreme events on phytoplankton dynamics in a semi-arid man-made lake. Aquatic Ecology, 49, 293–307.; Morris, D. P., & Lewis, W. M. 1988. Phytoplankton nutrient limitation in Colorado mountain lakes. Freshwater Biology, 20, 315–327.; Moura, A. N., Severiano, J. S., Tavares, N. K. A., & Dantas, E. W. 2013. The role of a cascade of reservoirs and seasonal variation in the phytoplankton structure in a tropical river. Brazilian Journal of Biology, 73(2), 291–298.; Naselli-Flores, L., & Barone, R. 2011. Fight on plankton! Or, phytoplankton shape and size as adaptive tools to get ahead in the struggle for life. Cryptogamie, Algologie, 32, 157–204.; Okogwu, O. I., & Ugwumba, A. O. 2013. Seasonal dynamics of phytoplankton in two tropical rivers of varying size and human impact in Southeast Nigeria. Revista de Biología Tropical, 61(4), 1827–1840.; Rangel, L. M., Silva, L. H. S., Rosa, P., Roland, F., & Huszar, V. L. M. 2012. Phytoplankton biomass is mainly controlled by hydrology and phosphorus concentrations in tropical hydroelectric reservoirs. Hydrobiologia, 693, 13–28.; Reynolds, C. S. 1997. Vegetation processes in the pelagic: a model for ecosystem theory. Oldendorf/Luhe: Ecology Institute: p. 371.; Reynolds, C. S. 2000. Hydroecology of river plankton the role of variability in channel flow. Hydrological Processes, 14, 3119–3132.; Reynolds, C. S. 2006. The ecology of phytoplankton. Cambridge, UK: Cambridge University Press: p. 552. DOI:10.1017/CBO9780511542145; Reynolds, C., & Descy, J. 1996. The production biomass and structure of phytoplankton in large rivers. Archiv für Hydrobiologie, 113, 161–187.; Reynolds, C. S., & Glaister, M. S. 1993. Spatial and temporal changes in phytoplankton abundance in the upper and middle reaches of the River Severn. Archiv für Hydrobiologie, Suppl. 101, Large Rivers, 9, 1–22.; Reynolds, C. S., Huszar, V., Kruk, C., Naselli-Flores, L., & Melo, S. 2002. Towards a functional classification of the freshwater phytoplankton. Journal of Plankton Research, 24, 417–428.; Rodrigues, E. H. C., Barreto, L. N., Ferreira-Correia, M. M., & Silva, M. R. C. 2015. Variação temporal do fitoplâncton em um rio tropical pré-amazônico (Rio Pindaré, Maranhão, Brasil). Ciência e Natura, 37(2), 241–251.; Rojo, C., Alvarez Cobelas, M., & Arauzo, M. 1994. An elementary, structural analysis of river phytoplankton. Hydrobiology, 289, 43–55.; Roland, F., Lobão, L., Vidal, L., Jeppesen, P., & Huszar, V. 2010. Relationships between pelagic bacteria and phytoplankton abundances in contrasting tropical fresh-waters. Aquatic Microbial Ecology, 60, 261–272.; Rosowski, J. R. 2003. Photosynthetic euglenoids. In: J. D. Wehr & R. G. Sheath (Eds.). Freshwater algae of North America: ecology and classification. pp. 383–416. San Diego, CA: Academic Press.; Santana, L. M., Moraes, M. E. B., Silva, D. M. L., & Ferragut, C. 2016. Spatial and temporal variation of phytoplankton in a tropical eutrophic river. Brazilian Journal of Biology, 76(3), 600–610.; Sas, H. 1989. Lake restoration by reduction of nutrient loading: expectations, experiences, extrapolations. St. Augustin, Germany: Academia Verlag Richarz: p. 497.; Shannon, C. E., & Weaver, W. 1963. The mathematical theory of communication. Urbana, IL: Illinois University Press: p. 117.; Silva, L. H. S., Huszar, V. L. M., Marinho, M. M., Rangel, L. M., Brasil, J., Domingues, C. D., Branco, C. C., & Roland, F. 2014. Drivers of phytoplankton, bacterioplankton, and zooplankton carbon biomass in tropical hydroelectric reservoirs. Limnologica, 48, 1–10.; Silva, L. H. A., De Mello, E. V., & Barbosa, D. R. 2012. Risco ambiental de enchentes nos rios formadores da bacia do rio Piabanha (Região Serrana Fluminense). Anuário do Instituto de Geociências – UFRJ, 35(2), 78–83.; Silveira, C. S., Brandão, V. S., Bernedo, A. V. B., & Mantovano, J. L. 2016. Geochemistry of river suspended sediments in tropical watersheds: anthropogenic and granite gneiss sources, SE Brazil. International Journal of River Basin Management, 14(4), 385–391.; Šmilauer, P., & Lepš, J., 2014. Multivariate analysis of ecological data using CANOCO 5. Cambridge, UK: Cambridge University Press: p. 362.; Soares, M. C. S., Huszar, V. L. M., & Roland, F. 2007. Phytoplankton dynamics in two tropical rivers with different degrees of human impact (Southeast Brazil). River Research and Applications, 23, 698–714.; Ter Braak, C. J. F., & Šmilauer, P. 2012. Canoco reference manual and user’s guide: software for ordination (version 5.0). Ithaca, NY: Microcomputer Power: p. 496.; Troost, T. A., Kooi, B. W., & Kooijman, S. A. L. M. 2005a. Ecological specialization of mixotrophic plankton in a mixed water column. American Naturalist, 166, E45–E61.; Troost, T. A., Kooi, B. W., & Kooijman, S. A. L.M. 2005b. When do mixotrophs specialize? Adaptive dynamics theory Applied to a dynamic energy budget model. Mathematical Biosciences, 193, 159–182.; Utermöhl, H. 1958. Zur Vervollkommnung der quantitativen Phytoplankton-Methodik. Verhandlungen der Internationalen Vereinigung für Theoretische und Angewandte Limnologie, 9, 1–38.; Villas-Boas, M. D., Olivera, F., & Azevedo, J. P. S. 2017. Assessment of the water quality monitoring network of the Piabanha River experimental watersheds in Rio de Janeiro, Brazil, using autoassociative neural networks. Environmental Monitoring and Assessment, 189, 439.; Wengrat, S., Padial, A. A., Jeppesen, E., Davidson, T. A., Fontana, L., Costa-Böddeker, S., & Bicudo, D. C. 2018. Paleolimnological records reveal biotic homogenization driven by eutrophication in tropical reservoirs. Journal of Paleolimnology, 60, 299–309.; Whipple, K., Wobus, C., Crosby, B., Kirby, E., & Sheehan, D. 2007. New tools for quantitative geomorphology: extraction and interpretation of stream profiles from digital topographic data, online report. GSA Annual Meeting. Available at: http://www.geomorphtools.org/Tools/StPro/Tutorials/StPro_UserGuidees_Final.pdf; Zalocar de Domitrovic, Y., Devercelli, M., & Forastier, M. E. 2014. Phytoplankton of the Paraguay and Bermejo rivers. In: Freshwater phytoplankton of Argentina. Advances in Limnology, 65, 67–80.; https://revistas.ufrj.br/index.php/oa/article/view/43079

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    Dissertation/ Thesis

    المؤلفون: Azevedo, José Paulo Soares de

    Thesis Advisors: Mansur, Webe João, Halbritter, Andrés Ludovico, Telles, José Cláudio de Faria

    المصدر: Repositório Institucional da UFRJUniversidade Federal do Rio de JaneiroUFRJ.

    مصطلحات موضوعية: CNPQ::ENGENHARIAS::ENGENHARIA CIVIL, Engenharia Civil

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    المصدر: Mix Sustentável; Vol. 8 No. 1 (2022): Mix Sustentável (edição regular); 41-52
    MIX Sustentável; v. 8 n. 1 (2022): Mix Sustentável (edição regular); 41-52
    Mix Sustentável
    Universidade Federal de Santa Catarina (UFSC)
    instacron:UFSC

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