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dc.contributor.authorAraujo Junior, Julio Cesar Francisco Ferreira de-
dc.date.accessioned2026-08-19T13:50:40Z-
dc.date.available2026-08-19T13:50:40Z-
dc.date.issued2024-08-27-
dc.identifier.citationARAUJO JUNIOR, Julio Cesar Francisco Ferreira de. Adsorção de chumbo em cama de aviário compostada com biocarvão. 2024. 63 f. Dissertação (Mestrado em Agronomia - Ciência do solo) - Instituto de Agronomia, Universidade Federal Rural do Rio de Janeiro, Seropédica, 2024.pt_BR
dc.identifier.urihttp://rima.ufrrj.br/jspui/handle/20.500.14407/26024-
dc.description.abstractDevido à crescente produção de carne de frango, quantidades elevadas do resíduo orgânico denominado, genericamente, cama de aviário, tem sido gerada, implicando na necessidade de se dar um destino sustentável a esse material. Por possuir na sua composição macro e micronutrientes, vem sendo amplamente utilizado como fertilizante orgânico. Contudo, a cama de aviário pode possuir concentrações variáveis de metais pesados em sua composição, tornando-a um contaminante potencial para os agroecossistemas. Uma técnica utilizada para redução da biodisponibilidade de metais pesados é a compostagem, entretanto não se tem mostrado eficiente para o chumbo. A utilização do biocarvão associado à cama de frango, durante a compostagem, e previamente à sua aplicação no solo, pode potencializar a adsorção de chumbo e reduzir a sua biodisponibilidade, consequentemente, mitigar os riscos de transferência para a cadeia alimentar. Sendo assim, este trabalho teve como objetivo avaliar os efeitos da adição de diferentes doses de biocarvão combinado com diferentes tempos de compostagem na adsorção de chumbo. O biocarvão foi adicionado à cama de aviário, previamente à compostagem, nas proporções de: 0% (controle); 5%; 10%, e 15% (em relação seu peso seco). Os tempos de compostagem avaliados foram: material fresco; 30; 60, e 90 dias. A caracterização estrutural do composto, nos diferentes tratamentos, foi feita através da técnica de ressonância magnética nuclear do carbono-13 (RMN13C) e a análise quimiométrica foi realizada utilizando o Software “The Unscrambler” (version 10.4). O ensaio de adsorção foi realizado através do método Batch de Laboratório adaptado, utilizando-se concentrações crescentes de solução de Pb(NO3)2 (0, 30, 60, 120, 200 e 280 mg/L). Os extratos foram analisados por espectrometria de absorção atômica. Foi utilizado o Software IsoFit, versão 1.2, para selecionar o modelo mais adequado para descrever a adsorção de Pb no composto. Para a seleção dos modelos foram analisados: o Coeficiente de Determinação (R2 ); o Critério de Informação de Akaike Corrigido (AICc); Variação de AICc (ΔAICc), e a Ponderação de AICc (AICcw). O modelo que melhor se ajustou aos dados experimentais, para todos os tratamentos, foi o linear. Nos tratamentos sem adição de biocarvão e com 5%, as alterações estruturais promovidas durante o tempo de compostagem reduziram o coeficiente de distribuição (Kd), demonstrando uma redução da adsorção de Pb, possivelmente, pelo incremento de estruturas de carbono alifáticas não funcionalizadas e a maior afinidade do Pb por essas estruturas. Entretanto, para as doses de 10 e 15% de biocarvão houve um incremento significativo dos valores de Kd com o tempo de compostagem, principalmente, na dose de 15%. Nesses tratamentos, verificou-se, durante o processo de compostagem, uma maior intensidade de regiões de carbonos carboxílicos, e carbonos aromáticos funcionalizados, evidenciando um aumento na funcionalidade da estrutura e elevada aromaticidade e, consequentemente, aumento na adsorção de chumbo. Dessa forma, os resultados obtidos permitem concluir que a adição de biocarvão ao composto favorece uma maior adsorção do Pb e formação de complexos estáveis capazes de reduzir a biodisponibilidade desse elemento, consequentemente, reduzindo os riscos de entrada na cadeia trófica.pt_BR
dc.description.sponsorshipCoordenação de Aperfeiçoamento de Pessoal de Nível Superior - CAPESpt_BR
dc.languageporpt_BR
dc.publisherUniversidade Federal Rural do Rio de Janeiropt_BR
dc.subjectAviculturapt_BR
dc.subjectBiossorçãopt_BR
dc.subjectContaminação ambientalpt_BR
dc.subjectPoultry farmingpt_BR
dc.subjectBiosorptionpt_BR
dc.subjectEnvironmental contaminationpt_BR
dc.titleAdsorção de chumbo em cama de aviário compostada com biocarvãopt_BR
dc.title.alternativeLead adsorption in poultry litter composted with biocharen
dc.typeDissertaçãopt_BR
dc.description.abstractOtherDue to the increasing production of chicken meat, large amounts of organic waste, generically known as poultry litter, have been generated, implying the need to give a sustainable destination to this material. Because it has macro and micronutrients in its composition, it has been widely used as an organic fertilizer. However, poultry litter can have variable concentrations of heavy metals in its composition, making it a potential contaminant for agroecosystems. One technique used to reduce the bioavailability of heavy metals is composting, however it has not proven to be efficient for lead. The use of biochar associated with poultry litter, during composting, and prior to its application to the soil, can enhance the adsorption of lead and reduce its bioavailability, consequently mitigating the risks of transfer to the food chain. Therefore, this study aimed to evaluate the effects of adding different doses of biochar combined with different composting times on the adsorption of lead in composted poultry litter. Biochar was added to poultry litter prior to composting in the following proportions: 0% (control); 5%; 10%, and 15% (based on dry weight). The composting times evaluated were: fresh material; 30; 60; and 90 days. The structural characterization of the residue in the different treatments was performed using carbon-13 nuclear magnetic resonance (13C-NMR) and chemometric analysis was performed using “The Unscrambler” software (version 10.4). The adsorption test was performed using the adapted Laboratory Batch method, using increasing concentrations of Pb(NO3)2 solution (0, 30, 60, 120, 200, and 280 mg/L). The extracts were analyzed by atomic absorption spectrometry. IsoFit software, version 1.2, was used to select the most appropriate model to describe Pb adsorption in the compost. The following models were analyzed for model selection: Coefficient of Determination (R2 ); Corrected Akaike Information Criterion (AICc); AICc Variation (ΔAICc); and AICc Weighting (AICcw). The model that best fitted the experimental data for all treatments was the linear one. In treatments without biochar addition and with 5%, the structural changes promoted during the composting time reduced the distribution coefficient (Kd), demonstrating a reduction in Pb adsorption, possibly due to the increase in non-functionalized aliphatic carbon structures and the greater affinity of Pb for these structures. However, for the 10 and 15% biochar doses, there was a significant increase in Kd values with composting time, mainly at the 15% dose. In these treatments, a greater intensity of carboxylic carbon regions and functionalized aromatic carbons was observed during the composting process, evidencing an increase in the functionality of the structure and high aromaticity and, consequently, an increase in lead adsorption. Thus, the results obtained allow us to conclude that the addition of biochar to the compound favors greater adsorption of Pb and the formation of stable complexes capable of reducing the bioavailability of this element, consequently reducing the risks of entry into the trophic chain.en
dc.contributor.advisor1Amaral Sobrinho, Nelson Moura Brasil do-
dc.contributor.advisor1IDhttps://orcid.org/0000-0002-5053-7338pt_BR
dc.contributor.advisor1Latteshttp://lattes.cnpq.br/8349031396398015pt_BR
dc.contributor.advisor-co1Souza, Camila da Costa Barros de-
dc.contributor.advisor-co1IDhttps://orcid.org/0000-0002-5253-3197pt_BR
dc.contributor.advisor-co1Latteshttp://lattes.cnpq.br/3672142883162627pt_BR
dc.contributor.referee1Amaral Sobrinho, Nelson Moura Brasil do-
dc.contributor.referee1IDhttps://orcid.org/0000-0002-5053-7338pt_BR
dc.contributor.referee1Latteshttp://lattes.cnpq.br/8349031396398015pt_BR
dc.contributor.referee2Lima, Erica Souto Abreu-
dc.contributor.referee2IDhttps://orcid.org/0000-0003-4140-3634pt_BR
dc.contributor.referee2Latteshttp://lattes.cnpq.br/6111184982796209pt_BR
dc.contributor.referee3Santos, Fabiana Soares dos-
dc.contributor.referee3Latteshttp://lattes.cnpq.br/6610070595537833pt_BR
dc.creator.IDhttps://orcid.org/0009-0009-8280-1998pt_BR
dc.creator.Latteshttp://lattes.cnpq.br/1705204303647015pt_BR
dc.publisher.countryBrasilpt_BR
dc.publisher.departmentInstituto de Agronomiapt_BR
dc.publisher.initialsUFRRJpt_BR
dc.publisher.programPrograma de Pós-Graduação em Agronomia - Ciência do Solopt_BR
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