7 resultados para DEODORIZATION


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Trabalho Final de Mestrado para obtenção do grau de Mestre em Engenharia Civil na Área de Especialização de Hidráulica

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The final contents of total and individual trans-fatty acids of sunflower oil, produced during the deacidification step of physical refining were obtained using a computational simulation program that considered cis-trans isomerization reaction features for oleic, linoleic, and linolenic acids attached to the glycerol part of triacylglycerols. The impact of process variables, such as temperature and liquid flow rate, and of equipment configuration parameters, such as liquid height, diameter, and number of stages, that influence the retention time of the oil in the equipment was analyzed using the response-surface methodology (RSM). The computational simulation and the RSM results were used in two different optimization methods, aiming to minimize final levels of total and individual trans-fatty acids (trans-FA), while keeping neutral oil loss and final oil acidity at low values. The main goal of this work was to indicate that computational simulation, based on a careful modeling of the reaction system, combined with optimization could be an important tool for indicating better processing conditions in industrial physical refining plants of vegetable oils, concerning trans-FA formation.

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Chitin and chitosan are nontoxic, biodegradable and biocompatible polymers produced by renewable natural sources with applications in diverse areas such as: agriculture, textile, pharmaceutical, cosmetics and biomaterials, such as gels, films and other polymeric membranes. Both have attracted greater interest of scientists and researchers as functional polymeric materials. In this context, the objective of this study was to take advantage of the waste of shrimp (Litopenaeus vannamei and Aristeus antennatus) and crabs (Ucides cordatus) from fairs, beach huts and restaurant in Natal/RN for the extraction of chitin and chitosan for the production of membranes by electrospinning process. The extraction was made through demineralization, deproteinization, deodorization and deacetylation. Morphological analyzes (SEM and XRD), Thermal analysis (TG and DTG), Spectroscopy in the Region of the Infrared with Transformed of Fourier (FTIR) analysis Calorimetry Differential Scanning (DSC) and mechanical tests for traction were performed. In (XRD) the semicrystalline structure of chitosan can be verified while the chitin had higher crystallinity. In the thermal analysis showed a dehydration process followed by decomposition, with similar behavior of carbonized material. Chitosan showed temperature of maximum degradation lower than chitin. In the analysis by Differential Scanning Calorimetry (DSC) the curves were coherent to the thermal events of the chitosan membranes. The results obtained with (DD) for chitosan extracted from Litopenaeus vannamei and Aristeus antennatus shrimp were (80.36 and 71.00%) and Ucides cordatus crabs was 74.65%. It can be observed that, with 70:30 solutions (v/v) (TFA/DCM), 60 and 90% CH3COOH, occurred better facilitate the formation of membranes, while 100:00 (v/v) (TFA/DCM) had formation of agglomerates. In relation to the monofilaments diameters of the chitosan membranes, it was noted that the capillary-collector distance of 10 cm and tensions of 25 and 30 kV contributed to the reduction of the diameters of membranes. It was found that the Young s modulus decreases with increasing concentration of chitosan in the membranes. 90% CH3COOH contributed to the increase in the deformation resulting in more flexible material. The membranes with 5% chitosan 70:30 (v/v) (TFA/DCM) had higher tensile strength

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Inaug.-diss.--Hannover, 1911.

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Inaug.--diss--Hannover, 1911.

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A quitosana é produzida através de uma desacetilação alcalina da quitina, a qual é encontrada em exoesqueleto de crustáceos, parede celular de fungos e materiais biológicos. Calcula-se que os resíduos de camarão apresentam de 5 a 7% do seu peso total na forma de quitina, sugerindo que estes sejam utilizados para obtenção do biopolímero. Os processos para obtenção destes biopolímeros consiste nas seguintes etapas: desmineralização, desproteinização e desodorização, obtendo-se assim, a quitina úmida. Após seca, passa por uma desacetilação química para a conversão em quitosana úmida, sendo purificada e posteriormente seca. A quitosana, por apresentar grupamentos amino livres em sua estrutura, é uma molécula capaz de formar complexos estáveis com cátions metálicos. O objetivo geral deste trabalho foi obter quitina a partir de resíduos de camarão (Penaeus brasiliensis) com posterior produção de quitosana, e avaliar sua capacidade de complexação com íons Fe3+, em solução. A quitosana produzida foi caracterizada através do grau de desacetiliação e da massa molecular viscosimétrica, Para caracterização estrutural das amostras de quitosana, utilizaram-se espectrometria de infravermelho e espectrofotometria UV-Visível, bem como para o complexo formado de quitosana e ferro. Para analisar a eficiência da remoção deste íon, foram feitas análises em espectrometria de absorção atômica em chama e em espectrofotometria UV-Visível. Uma análise estatística foi realizada para avaliar a percentagem de remoção do íon ferro das soluções, sendo utilizado um planejamento fatorial em dois níveis, tendo como variáveis independentes o pH do meio, a quantidade de quitosana adicionada, a granulometria da mesma e o tempo de reação. A quitosana apresentou grau de desacetilação de 87±2% e massa molecular viscosimétrica de 196±4kDa, sendo esses valores, comparáveis à quitosana disponível comercialmente. Na melhor região de trabalho definida pela análise estatística, obteve-se uma remoção máxima de 85 % do íon ferro das soluções.

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Despite the recent synthesis and identification of a diverse set of new nanophotocatalysts that has exploded recently, titanium dioxide (TiO2) remains among the most promising photocatalysts because it is inexpensive, non-corrosive, environmentally friendly, and stable under a wide range of conditions. TiO2 has shown excellent promise for solar cell applications and for remediation of chemical pollutants and toxins. Over the past few decades, there has been a tremendous development of nanophotocatalysts for a variety of industrial applications (i.e. for water purification and reuse, disinfection of water matrices, air purification, deodorization, sterilization of soils). This paper details traditional and new industrial routes for the preparation of nanophotocatalysts and the characterization techniques used to understand the physical chemical properties of them, like surface area, ζ potential, crystal size, and phase crystallographic, morphology, and optical transparency. Finally we present some applications of the industrial nanophotocatalysts.