992 resultados para SBA-15. RAT. Pirólise térmica e catalítica. Termogravimetria. Energia de ativação aparente


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Pós-graduação em Ciência e Tecnologia de Materiais - FC

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The mesoporous molecular sieves of the MCM-41 and FeMCM-41 type are considered promissory as support for metals used as catalysts in oil-based materials refine processes and as adsorbents for environmental protection proposes. In this work MCM-41 and FeMCM41 were synthesized using rice husk ash - RHA as alternative to the conventional silica source. Hydrothermal synthesis was the method chosen to prepare the materials. Pre-defined synthesis parameters were 100°C for 168 hours, later the precursor was calcinated at 550°C for 2 hours under nitrogen and air flow. The sieves containing different proportions of iron were produced by two routes: introduction of iron salt direct synthesis; and a modification post synthesis consisting in iron salt 1 % and 5% impregnation in the material followed by thermal decomposition. The molecular sieves were characterized by X ray diffraction XRD, Fourier transform infrared spectroscopy FT-IR, X ray fluorescence spectroscopy XFR, scanning electronic microscopy SEM, specific surface area using the BET method, Termogravimetry TG. The kinetic model of Flynn Wall was used with the aim of determining the apparent activation energy of the surfactant remove (CTMABr) in the MCM- 41 porous. The analysis made possible the morphology characterization, identifying the presence of hexagonal structure typical for mesoporous materials, as well as observation of the MCM41 and iron of characteristic bands.

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Dissertação para obtenção do Grau de Mestre em Engenharia Química e Bioquímica

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In present work, mesoporous materials of the M41S family were synthesized, which were discovered in the early 90s by researchers from Mobil Oil Corporation, thus allowing new perspectives in the field of catalysis. One of the most important members of this family is the MCM-41, which has a hexagonal array of mesopores with pore diameters ranging from 2 to 10 nm and a high surface area, enabling it to become very promising for the use as a catalyst in the refining of oil in the catalytic cracking process, since the mesopores facilitate the access of large hydrocarbon molecules, thereby increasing the production of light products, that are in high demand in the market. The addition of aluminum in the structure of MCM-41 increases the acidity of the material, making it more beneficial for application in the petrochemical industry. The mesoporous materials MCM-41 and Al-MCM-41 (ratio Si / Al = 50) were synthesized through the hydrothermal method, starting with silica gel, NaOH and distilled water. CTMABr was used as template, for structural guiding. In Al-MCM-41 the same reactants were used, with the adding of pseudoboehmite (as a source of aluminum) in the synthesis gel. The syntheses were carried out over a period of four days with a daily adjustment of pH. The optimum conditions of calcination for the removal of the organic template (CTMABr) were discovered through TG / DTG and also through analysis by XRD, FTIR and Nitrogen Adsorption. It was found that both the method of hydrothermal synthesis and calcination conditions of the studies based on TG were promising for the production of mesoporous materials with a high degree of hexagonal array. The acidic properties of the materials were determined by desorption of n-butylamine via thermogravimetry. One proved that the addition of aluminum in the structure of MCM-41 promoted an increase in the acidity of the catalyst. To check the catalytic activity of these materials, a sample of Atmospheric Residue (RAT) that is derived from atmospheric distillation of oil from the Pole of Guamaré- RN was used. This sample was previously characterized by various techniques such as Thermogravimetry, FTIR and XRF, where through thermal analysis of a comparative study between the thermal degradation of the RAT, the RAT pyrolysis + MCM-41 and RAT + Al- MCM-41. It was found that the Al-MCM-41 was most satisfactory in the promotion of a catalytic effect on the pyrolysis of the RAT, as the cracking of heavy products in the waste occurred at temperatures lower than those observed for the pyrolysis with MCM-41, and thereby also decreasing the energy of activation for the process and increasing the rates of conversion of residue into lighter products

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Dissertação para obtenção do Grau de Mestre em Engenharia Química e Bioquímica

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No presente trabalho foram realizadas análises à degradação térmica e catalítica do polietileno de alta densidade (PEAD), de resíduos plásticos de cabos eléctricos e do hidrocarboneto n-C50. Analisou-se, ainda, a influência do n-C50 na degradação catalítica dos resíduos de cabos eléctricos, variando as proporções da mistura cabos/C50. Para isso, usaram-se simultaneamente as técnicas de Termogravimetria (TGA) e Calorimetria Diferencial de Varrimento (DSC), sob atmosfera inerte. No estudo em causa utilizou-se o zeólito ZSM-5 como catalisador de partida. Posteriormente submeteu-se o zeólito a tratamentos de dessilicação, variando a concentração da solução básica empregue durante o tratamento alcalino. Procedeu-se à caracterização textural dos zeólitos através da adsorção de azoto, e à caracterização da acidez pela técnica de termodessorção a temperatura programada. Averiguou-se o efeito da dessilicação dos zeólitos na pirólise catalítica do PEAD, resíduos de cabos eléctricos e C50. Verificou-se que a dessilicação conduziu a um aumento da mesoporosidade e da área de superfície externa, sem ocorrerem alterações significativas na microporosidade. O tratamento de dessilicação dos zeólitos conduziu a um aumento da sua actividade durante a pirólise catalítica dos resíduos de cabos eléctricos e do n-C50, diminuindo a temperatura de degradação catalítica dos mesmos. Constatou-se que a presença de hidrocarboneto baixou a temperatura de degradação catalítica dos resíduos de cabos eléctricos, melhorando a actividade do zeólito. Analogamente os resíduos de cabos eléctricos também aceleraram a degradação catalítica do n-C50, isto é, o hidrocarboneto, na presença dos resíduos, inicia a sua degradação catalítica a uma temperatura inferior comparativamente a quando se encontra isolado.

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Els materials mesoporos (amb una mida controlada de porus entre els 2 i 50 nm) tenen com a tret diferencial la seva gran superfície específica, la qual els fa aptes per a aplicacions molt diverses. L’espinel·la de NiCo2O4 és aplicable com a sensor de gasos, com a catalitzador de les reaccions d’evolució i reducció d’oxigen o com a elèctrode en electrosíntesi inorgànica i orgànica. Hom preveu que l’obtenció de NiCo2O4 mesoporós podria ampliar el ventall d’aplicacions d’aquest material o millorar les prestacions de les ja existents. L’objectiu del projecte és el de determinar el rang de temperatures d’ús dels dispositius que incorporin l’espinel·la de NiCo2O4 mesoporosa. Per tal d’analitzar l’estabilitat tèrmica d’aquest material, es realitza un procés de síntesi complet de mostres d’aquestes característiques. S’inicia un procés d’obtenció de nanomotlles de sílice amb mesoestructura SBA-15 i KIT-6 pel mètode de soft-templating. Aquests templates es validen per TEM i EDX i són els emprats per a la síntesi de mostres de NiCo2O4 per hard-templating. Un cop sintetitzades les mostres de NiCo2O4 SBA-15 i KIT-6, es procedeix a validar la qualitat de la seva mesoestructura per TEM, i la seva composició química per EDX i de fases per XRD. Aquestes dues mostres as-prepared passen a ser sotmeses a un seguit de tractaments tèrmics a temperatures de 400ºC, 450ºC, 500ºC, 550ºC i 600ºC. Això permetrà observar per TEM el col·lapse de la mesoestructura i per XRD serà possible detectar i quantificar la segregació de NiO que podria malmetre les propietats del material en qualsevol de les seves aplicacions. Segons l’aparició d’aquests dos efectes negatius, es determinarà una temperatura crítica de funcionalitat del NiCo2O4 mesoporós. També es farà una anàlisi termogravimètrica dels precursors emprats per a la síntesi del NiCo2O4 confinats en templates de sílice: nitrat de cobalt i nitrat de níquel per separat, i una mescla d’ambdós amb proporcions 0,5:1 Ni(II):Co(II). Es podrà observar en quines temperatures tenen lloc el processos físicoquímics patits per aquests precursors, quan té lloc la formació dels òxids pertinents i com afecta la presència dels nanomotlles a cada un d’ells. Finalment, aquest projecte també incideix en l’estudi de la reproductibilitat per hard-templating de l’espinel·la de FeCo2O4, un material força desconegut en format mesoporós. I la caracterització de les mostres as-prepared per TEM, EDX i XRD.

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Biodiesel is an alternative fuel, renewable, biodegradable and nontoxic. The transesterification of vegetable oils or animal fat with alcohol is most common form of production of this fuel. The procedure for production of biodiesel occurs most commonly through the transesterification reaction in which catalysts are used to accelerate and increase their income and may be basic, acid or enzyme. The use of homogeneous catalysis requires specific conditions and purification steps of the reaction products (alkyl ester and glycerol) and removal of the catalyst at the end of the reaction. As an alternative to improve the yield of the transesterification reaction, minimize the cost of production is that many studies are being conducted with the application of heterogeneous catalysis. The use of nano-structured materials as catalysts in the production of biodiesel is a biofuel alternative for a similar to mineral diesel. Although slower, can esterify transesterified triglycerides and free fatty acids and suffer little influence of water, which may be present in the raw material. This study aimed at the synthesis, characterization and application of nano-structured materials as catalysts in the transesterification reaction of soybean oil to produce biodiesel by ethylic route. The type material containing SBA-15 mesoporous lanthanum embedded within rightly Si / La = 50 was used catalyst. Solid samples were characterized by X-ray diffraction, thermogravimetric analysis, infrared spectroscopy, nitrogen adsorption and desorption. For the transesterification process, we used a molar ratio of 20:1 alcohol and oil with 0.250 g of catalyst at 60°C and times of 6 hours of reaction. It was determined the content of ethyl esters by H-NMR analysis and gas chromatography. It was found that the variable of conversion obtained was 80%, showing a good catalytic activity LaSBA-15 in the transesterification of vegetable oils via ethylic route

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In last years it has talked a lot about the environment and the plastic waste produced and discarded. In last decades, the increasing development of research to obtain fuel from plastic material, by catalytic degradation, it has become a very attractive looking, as these tailings are discarded to millions worldwide. These materials take a long time to degrade themselves by ways said natural and burning it has not demonstrated a viable alternative due to the toxic products produced during combustion. Such products could bring serious consequences to public health and environment. Therefore, the technique of chemical recycling is presented as a suitable alternative, especially since could be obtain fractions of liquid fuels that can be intended to the petrochemical industry. This work aims to propose alternatives to the use of plastic waste in the production of light petrochemical. Zeolites has been widely used in the study of this process due to its peculiar structural properties and its high acidity. In this work was studied the reaction of catalytic degradation of high-density polyethylene (HDPE) in the presence HZSM-12 zeolites with different acid sites concentrations by thermogravimetry and pyrolysis coupled with GC-MS. The samples of the catalysts were mixed with HDPE in the proportion of 50% in mass and submitted to thermogravimetric analyses in several heating rates. The addition of solids with different acid sites concentrations to HDPE, produced a decrease in the temperature of degradation of the polymer proportional the acidity of the catalyst. These qualitative results were complemented by the data of activation energy obtained through the non-isothermal kinetics model proposed by Vyazovkin. The values of Ea when correlated to the data of surface acidity of the catalysts indicated that there is a exponential decrease of the energy of activation in the reaction of catalytic degradation of HDPE, in function of the concentration of acid sites of the materials. These results indicate that the acidity of the catalyst added to the system is one of the most important properties in the reaction of catalytic degradation of polyethylene

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In order to obtain a biofuel similar to mineral diesel, lanthanum-incorporated SBA- 15 nanostructured materials, LaSBA-15(pH), with different Si/La molar ratios (75, 50, 25), were synthesized in a two-steps hydrothermal procedure, with pH-adjusting of the synthesis gel at 6, and were used like catalytic solids in the buriti oil thermal catalytic cracking. These solids were characterized by X-ray fluorescence (XRF), powder X-ray diffraction (XRD), thermogravimetric analysis (TG/DTG), infrared spectroscopy (FTIR), nitrogen porosimetry and ethanol dehydration, aiming to active sites identify. Taken together, the analyses indicated that the synthesis method has employed to obtain materials highly ordered mesostructures with large average pore sizes and high surface area, besides suggested that the lanthanum was incorporated in the SBA-15 both into the framework as well as within the mesopores. Catalytic dehydration of ethanol over the LaSBA-15(pH) products has shown that they have weak Lewis acid and basic functionalities, indicative of the presence of lanthanum oxide in these samples, especially on the La75SBA-15(pH) sample, which has presented the highest selectivity to ethylene. The buriti oil thermal and thermal catalytic cracking, realized from the room temperature to 450 ºC in a simple distillation system, has allowed obtaining two liquid fractions, each consisting of two phases, one aqueous and another organic, organic liquid (OL). The OL obtained from first fractions has shown high acid index, even in the thermal catalytic process. One the other hand, OL coming from second ones, called green diesel (GD), have presented low acid index, particularly that one obtained from the thermal catalytic process realized over LaSBA-15(pH) samples. The acid sites presence in these samples, associated to their large average pore sizes and high surface areas, have allowed them, especially the La75SBA-15(pH), to present deoxygenating activity in the buriti oil thermal catalytic cracking, providing an oxygenates content reduction, particularly carboxylic acids, in the GD. Furthermore, the GD comes from the second liquid fraction obtained in the buriti oil thermal catalytic cracking over this latest solid sample has shown hydrocarbons composition and physic-chemical properties similar to that mineral diesel, beyond sulfur content low

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The nanostructured molecular sieve SBA-15 was synthesized by the hydrothermal method, and modified with lanthanum with Si/La molar ratios of 25, 50, 75 and 100. The materials were evaluated as catalysts for the cracking of n-hexane model reaction. Type SBA- 15 and LaSBA-15 mesoporous materials were synthesized using tetraetilortosilicato as a source of silica, hydrochloric acid, heptahydrate lanthanum chloride and distilled water. Pluronic P123 triblock. polymer was used as structure template. The syntheses were carried out by 72 hours. The obtained SBA-15 samples were previously analyzed by thermogravimetry, in order to check the conditions of calcination for removal of organic template. Then, the calcined materials were characterized by X-ray diffraction, infrared spectroscopy, adsorption and desorption of nitrogen, scanning electron microscopy and X-ray microanalysis by dispersive energy. The acidity of the samples was determined using adsorption of n-bulinamina and desorption followed by thermogravimetry. It was found that the hydrothermal synthesis method was suitable for the synthesis of the SBA-15 mesoporous materials, with an excellent degree of hexagonal ordering. The reactions of catalytic cracking of n-hexane were carried out using a fixed bed continuous flow microreactor, coupled on-line to a gas chromatograph. From the catalytic evaluation, it was observed that the mesoporous materials containing lanthanum showed different results for the reaction of cracking of nhexane compared to the unmodified mesoporous material SBA-15. As a result of cracking was obtained as main products hydrocarbons in the range of C1 to C5. The catalyst that showed better properties in relation to the acidity and catalytic activity was LaSBA-15 with the ratio Si/La = 50

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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)

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Stimulus encouraging the production and consumption of biodiesel favors the policy of pre-serving the environment, contributing to the reduction of greenhouse gas reducing climate change. The current trend of research in this field focuses on improving these processes with the use of heterogeneous catalysts, seeing has significant advantages such as: low contamination of products, ease of separation of the catalyst from the reaction medium, possibili-ty of reuse of the catalyst, decreased corrosion problems. The objective of this research was to optimize the synthesis of AlSBA-15 for the production of biodiesel through transesterification process via ethyl route. For the optimization of hydrothermal synthesis of type AlSBA-15 catalyst has assembled a 23 factorial experimental matrix with eleven trials. The stoichiometric amounts of starting materials were varied according to different ratios Si / Al which is a factor in the experimental design, in addition to the time and temperature of aging of the synthesis gel. The material showed the best results of characterization (SBET = 591.7 (m2 / g), Vp = 0.83 (cm3 / g), Dp = 5.59 (nm), w = 6.48 (nm) was synthesized at 100 ° C for 24 hours, with a ratio Si / Al = 10.This material was applied as a heterogeneous catalyst in the reaction of ethyl transesterification as raw coconut oil in natura. Coconut oil presented suitable for obtaining biodiesel via ethyl route.The visual aspects and physical-chemical characteristics of the reaction products show that AlSBA-15 catalyst favored the reaction. According to physical-chemical analysis the order of oxidative stability of the product of the transesterification reaction was: catalytic reaction at 1500 ° C> non-catalytic reaction at 100 ° C> 100 ° C catalytic> catalytic reaction at 200 ° C Reaction. The results of oxidative stability and kinematic viscosity shows that the biodiesel produced in the catalytic sandblasting held at 150 ° C which was maintained within the ABNT NBR 7148, ABNT NBR 10441 and EN 14112.

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Biodiesel is an alternative fuel, renewable, biodegradable and nontoxic. The transesterification of vegetable oils or animal fat with alcohol is most common form of production of this fuel. The procedure for production of biodiesel occurs most commonly through the transesterification reaction in which catalysts are used to accelerate and increase their income and may be basic, acid or enzyme. The use of homogeneous catalysis requires specific conditions and purification steps of the reaction products (alkyl ester and glycerol) and removal of the catalyst at the end of the reaction. As an alternative to improve the yield of the transesterification reaction, minimize the cost of production is that many studies are being conducted with the application of heterogeneous catalysis. The use of nano-structured materials as catalysts in the production of biodiesel is a biofuel alternative for a similar to mineral diesel. Although slower, can esterify transesterified triglycerides and free fatty acids and suffer little influence of water, which may be present in the raw material. This study aimed at the synthesis, characterization and application of nano-structured materials as catalysts in the transesterification reaction of soybean oil to produce biodiesel by ethylic route. The type material containing SBA-15 mesoporous lanthanum embedded within rightly Si / La = 50 was used catalyst. Solid samples were characterized by X-ray diffraction, thermogravimetric analysis, infrared spectroscopy, nitrogen adsorption and desorption. For the transesterification process, we used a molar ratio of 20:1 alcohol and oil with 0.250 g of catalyst at 60°C and times of 6 hours of reaction. It was determined the content of ethyl esters by H-NMR analysis and gas chromatography. It was found that the variable of conversion obtained was 80%, showing a good catalytic activity LaSBA-15 in the transesterification of vegetable oils via ethylic route

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O crescente consumo de materiais plásticos, a maioria produzidos a partir de matérias-primas derivadas do petróleo, um recurso não renovável, e a deposição dos seus resíduos não biodegradáveis na natureza, colocam problemas ambientais de solução premente. Este trabalho teve como objectivo o estudo de um processo de reciclagem química de resíduos plásticos, a despolimerização catalítica de polimetacrilato de metilo (PMMA), vulgarmente designado por vidro acrílico, com vista à obtenção do seu monómero puro, metacrilato de metilo (MMA), para posterior produção de PMMA. A utilização de catalisadores permite diminuir a temperatura do processo de despolimerização térmica, pirólise, e modificar a selectividade relativamente aos produtos desejados. A pirólise de PMMA tem sido estudada a temperaturas de 450-590 ºC. Neste caso foi realizado, a 320 ºC, num reactor de leito fluidizado, um estudo prévio do efeito de diversos metais, cobre, níquel, cério, césio e lantânio suportados numa argila pilarizada calcinada a três temperaturas diferentes, 300 ºC, 500 ºC e 700 ºC. Foram testados polímero puro e resíduo de polímero, proveniente da reciclagem automóvel (vidros e partes ópticas). Em todas as reacções realizadas, que atingiram conversões elevadas, foi obtido maioritariamente MMA, com selectividades que variaram entre 97% e 99%, sendo formadas quantidades vestigiárias de ácido acrílico e ácido metacrílico. Foi verificado que quase todos os materiais testados promovem um efeito catalítico considerável à temperatura de 320 ºC. As argilas pilarizadas não impregnadas, que serviram como suporte, apresentaram uma actividade catalítica muito significativa. Relativamente às temperaturas de calcinação observou-se que a argila calcinada a 300 ºC é a que apresenta melhores resultados, quer em termos de conversão final, como de velocidade inicial e selectividade para o monómero. Os aditivos contidos no resíduo de PMMA não apresentaram um efeito de inibição significativo na actividade dos catalisadores testados. Em consequência, conclui-se que a utilização de argilas pilarizadas à temperatura de 320 ºC(mais baixa que as aplicadas na pirólise térmica de PMMA, iguais ou superiores a 450 ºC) constitui um processo, que associado a uma considerável poupança de energia, se torna uma alternativa bastante viável à despolimerização térmica de resíduos de polimetacrilato de metilo.