860 resultados para ANAEROBIC FLUIDIZED BED REACTOR


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Dissertação para obtenção do Grau de Mestre em Engenharia Civil – Perfil de Estruturas

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Phycoremediation of swine wastewaters has been widely reported as an attractive tertiary treatment system, that effectively removes the excessive nutrient loadswhilst offering a valuable source of feedstock biomass. Digestate from an upflow anaerobic sludge blanket (UASB, 6%v/v) and a nitrification reactor (NR; 50% v/v) were used as culturing media to microalgae. Experiments were carried out in lab scale photobioreactors (PBRs) using a consortia of Chlorella and Scenedesmus. Ammonia (44 to 90%) and phosphorus (77%) were efficiently removed from both effluents tested after 4 days. Microalgae biomass harvested from the UASB effluent showed 57, 34 and 1% of proteins, carbohydrates and lipids, respectively. Comparatively, the cellular composition of microalgae grown on NR effluent had lower protein (43%) but higher carbohydrate (42%) contents. Negligible difference in lipid fraction was observed independently of the effluents tested. The results suggest that the biomass harvested from phycoremediation of swine wastewaters can offer a valuable protein and carbohydrate feedstock for nutritional and biotechnological applications.

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Dissertation to obtain the degree of Master in Chemical and Biochemical Engineering

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Energy conservation in chemotrophic anaerobic bacteria is achieved by two possible processes, substrate level phosphorylation (SLP) and electron transfer phosphorylation (ETP). This second mechanism, also known as respiration, involves chemiosmotic coupling. However, a third mechanism for energy coupling was recently proposed: the flavin-based electron bifurcation (FBEB). (...)

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O presente trabalho tem como objectivo contribuir para o estudo do desenvolvimento de um modelo matemático aplicado à digestão anaeróbia de resíduos sólidos, que incorpore os condicionamentos da geometria dos reactores e a sua influência na cinética do processo biológico. Nesse sentido, o trabalho propõe-se avaliar o comportamento cinético de três reactores, com o mesmo volume mas com diferentes relações tridimensionais, utilizando o mesmo substrato, e idênticos parâmetros ambientais e operacionais de funcionamento. Pretendeu-se estudar em que medida a relação do comprimento, largura e altura de um reactor pode interferir nas taxas de remoção de substrato, condicionando a respectiva difusão na biomassa e crescimento dos microrganismos. Considera-se que este aspecto é do maior interesse para o desenvolvimento de um modelo cinético, podendo minimizar desvios inerentes à própria modelação de processos biológicos complexos. A geometria do reactor, que se correlaciona com uma determinada relação tridimensional, pode constituir um parâmetro importante, que se designou por Kcig (Constante de Inibição Geométrica), dada a influência que poderá exercer na cinética do processo biológico. A sua avaliação, parametrização e consequente modelação, deverá facilitar a escolha da relação comprimento/largura/altura mais adequada, de forma a optimizar o funcionamento operacional do reactor. O plano experimental desenvolveu-se em duas fases, utilizando-se dois substratos com graus distintos de dificuldade de utilização pelos microrganismos, nomeadamente: Fase 1 (glucose), Fase 2 (FORSU e relva). Concluiu-se que a cinética do processo é influenciada pela relação entre as áreas de separação de biogás/biomassa (As) e de contacto biomassa/reactor (Ac), que interferem na geometria do reactor. Assim, através dos resultados das fases 1 e 2 pode observar-se que a variação da taxa de remoção de substrato se aproxima de uma função de saturação, pelo que se propõe uma adaptação do modelo de Monod, através de um formalismo que incorpora uma grandeza adimensional, Kcig, para reflectir o efeito da geometria do reactor. Verificou-se que a equação adoptada para Kcig se mostrou adequada, o que permitiu, através do modelo de Monod ajustado, estimar os valores de rx máx e Ks que se admite estarem mais próximos dos verdadeiros, embora se considere que apenas se pretende corrigi-los em função do efeito da geometria do reactor. Por outro lado, o estudo permitiu identificar um valor de Kcig para o reactor de 2,5 L, a partir do qual poderá não ser interessante a relação entre a taxa de remoção de substrato e a área de construção do reactor.

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Com o aumento das necessidades energéticas, bem como dos cada vez mais conhecidos efeitos nocivos dos combustíveis fósseis, tornou-se imperativo pesquisar e desenvolver alternativas sustentáveis e verdes a esses recursos. O biodiesel é considerado como o melhor substituto para o combustível diesel convencional de base petroquímica. A transesterificação de óleos vegetais revela-se como uma importante via de obtenção do biodiesel. Na produção de biodiesel com catalisadores básicos homogéneos, como o hidróxido de sódio, deparamo-nos com um problema na hidrólise de triglicéridos, levando à formação de sabões e emulsões. Mesmo quando são usados reagentes secos, há formação de água devido à reacção do hidróxido com o álcool. Estes problemas podem ser solucionados com a utilização de catalisadores heterogéneos. Este estudo incidiu na preparação de membranas catalíticas de álcool polivinílico (PVA) incorporadas com um catalisador heterogéneo sólido básico (óxido de cálcio) obtido de resíduos industriais (casca de ovo). Caracterizaram-se as membranas catalíticas através da determinação da espessura, ângulos de contacto, grau de inchamento e espectroscopia de infravermelho. As membranas de PVA foram testadas na metanólise de óleo de soja em reactor batch e reactor de membrana catalítica. Estudou-se o efeito da reticulação química e por irradiação gama, nas propriedades das membranas e na actividade catalítica.

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O Grupo de Engenharia de Tecidos da FCT/UNL desenvolve e produz membranas poliméricas tubulares biodegradáveis que servem de substrato a culturas celulares e que se destinam a substituir temporariamente vasos sanguíneos danificados. O objectivo desta dissertação foi o desenvolvimento de um bio-reactor com a capacidade de bombeamento controlado de um fluido adequado à manutenção de uma cultura celular, que simula a passagem do fluxo sanguíneo pelo interior das membranas tubulares, permitindo que as células nelas semeadas recebam os estímulos adequados ao seu desenvolvimento. Foi construído um bio-reactor de perfusão pulsátil para cultura celular em membranas tubulares que é instalável numa incubadora, beneficiando assim de condições ambientais — pH, temperatura e humidade — semelhantes às fisiológicas. O bio-reactor é capaz de gerar estímulos mecânicos pulsáteis favoráveis ao alinhamento de células endoteliais e de músculo liso. O sistema foi desenvolvido de modo a que a pressão e o caudal aplicados às membranas pudessem ser monitorizados e controlados. Foram semeadas células endoteliais em matrizes planas de policaprolactona, tendo-se confirmado a sua adesão e proliferação por microscopia de fluorescência. Após enrolamento, obtiveram-se duas membranas tubulares com células endoteliais semeadas no lúmen. Uma delas foi submetida a cultura estática, e outra a cultura dinâmica no bio-reactor. Após 10 dias de condicionamento in vitro, as membranas foram novamente observadas por microscopia de fluorescência. Os resultados obtidos não foram conclusivos, pelo que serão necessários novos estudos para concluir se o bio-reactor construído é capaz de garantir o condicionamento mecânico das células semeadas nas matrizes.

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Simulated moving bed (SMB) chromatography is attracting more and more attention since it is a powerful technique for complex separation tasks. Nowadays, more than 60% of preparative SMB units are installed in the pharmaceutical and in the food in- dustry [SDI, Preparative and Process Liquid Chromatography: The Future of Process Separations, International Strategic Directions, Los Angeles, USA, 2002. http://www. strategicdirections.com]. Chromatography is the method of choice in these ¯elds, be- cause often pharmaceuticals and ¯ne-chemicals have physico-chemical properties which di®er little from those of the by-products, and they may be thermally instable. In these cases, standard separation techniques as distillation and extraction are not applicable. The noteworthiness of preparative chromatography, particulary SMB process, as a sep- aration and puri¯cation process in the above mentioned industries has been increasing, due to its °exibility, energy e±ciency and higher product purity performance. Consequently, a new SMB paradigm is requested by the large number of potential small- scale applications of the SMB technology, which exploits the °exibility and versatility of the technology. In this new SMB paradigm, a number of possibilities for improving SMB performance through variation of parameters during a switching interval, are pushing the trend toward the use of units with smaller number of columns because less stationary phase is used and the setup is more economical. This is especially important for the phar- maceutical industry, where SMBs are seen as multipurpose units that can be applied to di®erent separations in all stages of the drug-development cycle. In order to reduce the experimental e®ort and accordingly the coast associated with the development of separation processes, simulation models are intensively used. One impor- tant aspect in this context refers to the determination of the adsorption isotherms in SMB chromatography, where separations are usually carried out under strongly nonlinear conditions in order to achieve higher productivities. The accurate determination of the competitive adsorption equilibrium of the enantiomeric species is thus of fundamental importance to allow computer-assisted optimization or process scale-up. Two major SMB operating problems are apparent at production scale: the assessment of product quality and the maintenance of long-term stable and controlled operation. Constraints regarding product purity, dictated by pharmaceutical and food regulatory organizations, have drastically increased the demand for product quality control. The strict imposed regulations are increasing the need for developing optically pure drugs.(...)

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Microbial electrolysis cells (MECs) are an innovative and emerging technique based on the use of solid-state electrodes to stimulate microbial metabolism for wastewater treatment and simultaneous production of value-added compounds (such as methane). This research studied the performance of a two-chamber MEC in terms of organic matter oxidation (at the anode) and methane production (at the cathode). MEC‟s anode had been previously inoculated with an activated sludge, whereas the cathode chamber inoculum was an anaerobic sludge (containing methanogenic microorganisms). During the experimentation, the bioanode was continuously fed with synthetic solutions in anaerobic basal medium, at an organic load rate (OLR) of around 1 g L-1 d-1, referred to the chemical oxygen demand (COD). At the beginning (Run I), the feeding solution contained acetate and subsequently (Run II) it was replaced with a more complex solution containing soluble organic compounds other than acetate. For both conditions, the anode potential was controlled at -0.1 V vs. standard hydrogen electrode, by means of a potentiostat. During Run I, over 80% of the influent acetate was anaerobically oxidized at the anode, and the resulting electric current was recovered as methane at the cathode (with a cathode capture efficiency, CCE, accounting around 115 %). The average energy efficiency of the system (i.e., the energy captured into methane relative to the electrical energy input) under these conditions was over 170%. However, reactor‟s performance decreased over time during this run. Throughout Run II, a substrate oxidation over 60% (on COD basis) was observed. The electric current produced (57% of coulombic efficiency) was also recovered as methane, with a CCE of 90%. For this run the MEC‟s average energy efficiency accounted for almost 170 %. During all the experimentation, a very low biomass growth was observed at the anode whereas ammonium was transferred through the cationic membrane and concentrated at the cathode. Tracer experiments and scanning electron microscopy analyses were also carried out to gain a deeper insight into the reactor performance and also to investigate the possible reasons for partial loss of performance. In conclusion, this research suggests the great potential of MEC to successfully treat low-strength wastewaters, with high energy efficiency and very low sludge production.

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Carbon monoxide can act as a substrate for different modes of fermentative anaerobic metabolism. The trait of utilizing CO is spread among a diverse group of microorganisms, including members of bacteria as well as archaea. Over the last decade this metabolism has gained interest due to the potential of converting CO-rich gas, such as synthesis gas, into bio-based products. Three main types of fermentative CO metabolism can be distinguished: hydrogenogenesis, methanogenesis, and acetogenesis, generating hydrogen, methane and acetate, respectively. Here, we review the current knowledge on these three variants of microbial CO metabolism with an emphasis on the potential enzymatic routes and bio-energetics involved.

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[Excerpt] Anaerobic bioremediation is an important alternative for the common aerobic cleanup of subsurface petroleum-contaminated soil and water. Microbial communities involved in anaerobic oil biodegradation are scarcely studied, and only few mechanisms of anaerobic hydrocarbons degradation are described. In this work, microbial degradation of aliphatic hydrocarbons (AHC) was studied by using culture-dependent and culture-independent approaches. Hexadecane and hexadecene-degrading microbial communities were enriched under sulfate-reducing and methanogenic conditions. The microorganisms present in the enriched cultures were identified by 16S rRNA gene sequencing. (...)

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Fat, oils, and grease present in complex wastewater can be readily converted to methane, but the energy potential of these compounds is not always recyclable, due to incomplete degradation of long chain fatty acids (LCFA) released during lipids hydrolysis. Oleate (C18:1) is generally the dominant LCFA in lipid-containing wastewater, and its conversion in anaerobic bioreactors results in palmitate (C16:0) accumulation. The reason why oleate is continuously converted to palmitate without further degradation via β-oxidation is still unknown. In this work, the influence of methanogenic activity in the initial conversion steps of unsaturated LCFA was studied in 10 bioreactors continuously operated with saturated or unsaturated C16- and C18-LCFA, in the presence or absence of the methanogenic inhibitor bromoethanesulfonate (BrES). Saturated Cn-2-LCFA accumulated both in the presence and absence of BrES during the degradation of unsaturated Cn-LCFA, and represented more than 50\% of total LCFA. In the presence of BrES further conversion of saturated intermediates did not proceed, not even when prolonged batch incubation was applied. As the initial steps of unsaturated LCFA degradation proceed uncoupled from methanogenesis, accumulation of saturated LCFA can be expected. Analysis of the active microbial communities suggests a role for facultative anaerobic bacteria in the initial steps of unsaturated LCFA biodegradation. Understanding this role is now imperative to optimize methane production from LCFA.

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OBJECTIVE - To identify, the anaerobic threshold and respiratory compensation point in patients with heart failure. METHODS - The study comprised 42 Men,divided according to the functional class (FC) as follows: group I (GI) - 15 patients in FC I; group II (GII) - 15 patients in FC II; and group III (GIII) - 12 patients in FC III. Patients underwent a treadmill cardiopulmonary exercise test, where the expired gases were analyzed. RESULTS - The values for the heart rate (in bpm) at the anaerobic threshold were the following: GI, 122±27; GII, 117±17; GIII, 114±22. At the respiratory compensation point, the heart rates (in bpm) were as follows: GI, 145±33; GII, 133±14; GIII 123±22. The values for the heart rates at the respiratory compensation point in GI and GIII showed statistical difference. The values of oxygen consumption (VO2) at the anaerobic threshold were the following (in ml/kg/min): GI, 13.6±3.25; GII, 10.77±1.89; GIII, 8.7±1.44 and, at the respiratory compensation point, they were as follows: GI, 19.1±2.2; GII, 14.22±2.63; GIII, 10.27±1.85. CONCLUSION - Patients with stable functional class I, II, and III heart failure reached the anaerobic threshold and the respiratory compensation point at different levels of oxygen consumption and heart rate. The role played by these thresholds in physical activity for this group of patients needs to be better clarified.

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The development of products from marine bioresources is gaining importance in the biotechnology sector. The global market for Marine Biotechnology products and processes was, in 2010, estimated at 2.8 billion with a cumulative annual growth rate of 510% (Børresen et al., Marine biotechnology: a new vision and strategy for Europe. Marine Board Position Paper 15. Beernem: Marine Board-ESF, 2010). Marine Biotechnology has the potential to make significant contributions towards the sustainable supply of food and energy, the solution of climate change and environmental degradation issues, and the human health. Besides the creation of jobs and wealth, it will contribute to the development of a greener economy. Thus, huge expectations anticipate the global development of marine biotechnology. The marine environment represents more than 70% of the Earths surface and includes the largest ranges of temperature, light and pressure encountered by life. These diverse marine environments still remain largely unexplored, in comparison with terrestrial habitats. Notwithstanding, efforts are being done by the scientific community to widespread the knowledge on oceans microbial life. For example, the J. Craig Venter Institute, in collaboration with the University of California, San Diego (UCSD), and Scripps Institution of Oceanography have built a state-of-the-art computational resource along with software tools to catalogue and interpret microbial life in the worlds oceans. The potential application of the marine biotechnology in the bioenergy sector is wide and, certainly, will evolve far beyond the current interest in marine algae. This chapter revises the current knowledge on marine anaerobic bacteria and archaea with a role in bio-hydrogen production, syngas fermentation and bio-electrochemical processes, three examples of bioenergy production routes.

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Aromatic amines resulted from azo dyes biotransformation under anaerobic conditions are generally recalcitrant to further anaerobic degradation. The catalytic effect of carbon materials (CM) on the reduction of azo dyes is known and has been confirmed in this work by increasing 3-fold the biological reduction rate of Mordant Yellow 1 (MY1). The resulting m-nitroaniline (m-NoA) was further degraded to m-phenylenediamine (m-Phe) only in the presence of CM. The use of CM to degraded anaerobically aromatic amines resulted from azo dye reduction was never reported before. In the sequence, we studied the effect of different CM on the bioreduction of o-, m- and p-NoA. Three microporous activated carbons with different surface chemistry, original (AC0), chemical oxidized with HNO3 (ACHNO3) and thermal treated (ACH2), and three mesoporous carbons, xerogels (CXA and CXB) and nanotubes (CNT) were assessed. In the absence of CM, NoA were only partially reduced to the corresponding Phe, whereas in the presence of CM, more than 90% was converted to the corresponding Phe. ACH2 and AC0 were the best electron shuttles, increasing the rates up to 8-fold. In 24h, the biological treatment of NoA and MY1 with AC0, decreased up to 88% the toxicity towards a methanogenic consortium, as compared to the non-treated solutions. This article is protected by copyright. All rights reserved