1000 resultados para Biomassa -- Energia


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Pós-graduação em Química - IQ

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Pós-graduação em Agronomia (Energia na Agricultura) - FCA

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Com a crescente elevação nas possibilidades de utilização da biomassa nos mais diversos setores da indústria, o presente estudo visa identificar uma alternativa para aumentar a produção utilizando, para tanto, o capim elefante (Pennisetum purpureum) e sorgo sacarino (Sorghum bicolor L.). Os experimentos foram realizados na Fazenda Vitória (4°21'36"S 38°5'17"W) em Beberibe – CE, em uma área total de 1.944 m2. A semeadura foi realizada em 36 parcelas de 54 m2, em delineamento inteiramente casualizado, sendo 9 tratamentos (genótipos) e 4 repetições. Foram utilizados seis diferentes genótipos de sorgo sacarino, s_1, s_2, s_3, s_4, s_5 e s_6. Fazem parte do estudo, ainda, um híbrido de capim elefante e milheto (Pennisetum glaucum), comercialmente conhecido como paraíso, e dois tratamentos de capim elefante, Cameroon e Napier. Para o sorgo sacarino, foram realizadas três colheitas, a primeira avaliada semanalmente e as demais com avaliação única. Para o capim elefante foram realizadas duas colheitas, a primeira com intervalo de 186 dias e a segunda com intervalo de 92 dias. Esse intervalo possibilitou a comparação da produtividade de biomassa de cada tratamento de forma trimestral e semestral. Os resultados observados mostraram que os tratamentos de maior destaque de produtividade de biomassa (base seca) foram com capim elefante, independente do período. Com base nessas informações, concluiu-se que, analisando apenas a produtividade de biomassa, o mais indicado dos tratamentos estudados é o capim elefante Napier ou Cameroon. No entanto, constatou-se que o sorgo sacarino apresentou grande potencial de produtividade com um aditivo, seu mosto pode ser utilizado no processo de fermentação para obtenção do etanol.

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Dissertação de Mestrado, Engenharia e Gestão de Sistemas de Água, 12 de Outubro de 2015, Universidade dos Açores.

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Les comarques del Segrià i les Garrigues disposen d’un elevat potencial energètic de la biomassa procedent del residu de poda de l’olivera. No obstant, aquesta biomassa agrícola no s’està valoritzant energèticament a la zona. Per tal d’aprofitar aquest recurs és necessari realitzar un estudi de viabilitat econòmica i ambiental per conèixer quines podrien ser les diferents alternatives per a l’aprofitament energètic, així com, conèixer com s’hauria de gestionar el residu per tal que esdevingués un recurs energètic disponible.

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Elnostreclientésunpromotoralqualselihaencarregatlaconstrucciód’unallard’infantsprivadaperaunacol•∙legideprimàriaDinselrecintedel’escolaprimàriahihaunespaidestinatperlaconstrucciódelallard’infants,peròlaintencióésquelaLlard’Infantstinguitotalindependènciaenergèticadel’edificiexistent. L’objectedelprojecteéseldissenyidimensionamentd’unainstal•∙laciódecalefacciómitjançantcalderadebiomassa,quesatisfacilesnecessitatsdelaLlard’Infants,ieldissenyidimensionamentd’unsistemasolartèrmicperabastirl’aiguacalentasanitàriaiquecomenergiaderecolzamentutilitzilacalderadebiomassa.Comaaltresrequisitsatenirencomptehihaeldimensionamentd’unaltresistemaalternatiud’estalvid’energiaperreduirelconsumdelainstal•∙lacióifer--‐laaixíméseficientieldesigexprésdelpropietari,quedeserpossible,liagradariainstal•∙larterraradiant.Améstambés’haencarregatl’elaboraciód’unestudideviabilitateconòmica,delainversiód’instal•∙larunacalderadebiomassaenfrontaladeinstal•∙larunsistemaambcalderadegasoilpertenirencompteeltempsderetorneconòmicil’amortització.Perdissenyaridimensionarlainstal•∙laciós’hatingutencompteelcomplimentdelesexigènciesmarcadespelRITE,pelCodiTècnicdel’Edificacióitambés’havolgutadaptarlesinstal•∙lacionsalesDirectivesEuropees2010/31/UEi2012/27/UEenrelacióaeficiènciaenergètica

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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)

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The biomass gasification systems have been used for a long time and prove to be a good alternative to the generation of energy problems. This type of management requires a simple installation and maintenance which gives them a high availability. In Biomass project via Call CTEnerg 33/2006-1, funded by the Ministry of Science and Technology - MCT - Brazil, the Group Energy Systems Optimization – GOSE - at FEG - UNESP built and tested two prototypes of gasifiers. These is fed with 25 kg / h of dry wood (chips), and 50 Nm3 / h of air to produce gas at a flow rate of approximately 70 Nm3 / h of wood (syngas) at a temperature approximately 600 ° C. In this work of graduation, studies were conducted on the materials used in both the gasifier as well as cleaning the filter synthesis gases. The system of gas cleaning and conditioning is vital to ensure the life of the Internal Combustion Engine. In this case the studies of different filters for small gasification systems (properties, materials used, characteristics, types, etc.) are very relevant to its use in the prototype of the college campus. Were also performed a technical and economic analysis of a cogeneration system that consists in the combination of the downdraft gasifier studied in this work, an internal combustion engine, two heat exchangers and a SRA (absorption system refrigerator). Were calculated the costs of electricity generation, hot water and cold water. Finally, we analyzed the economic feasibility of the project

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The aim of this work is to make a qualitatively and ecologically evaluation of a compact cogeneration system that operates with synthesis gas obtained from a gasifier. Using the Eucalyptus Biomass as fuel, that passes through a wood gasifier (Drowndraft type) and supply the internal combustion engine. The compact cogeneration system is composed of two heat exchangers, an energy generator connected to an internal combustion engine and an absorption refrigeration system. The complete system is installed in the laboratory from the Energy Department at the University of Guaratinguetá. By the analysis related to the First and Second Thermodynamic Laws applied in this system, was possible to identify the mass flows in each point, energetic efficiency, irreversibility and exergetic efficiency. The components that have the biggest irreversibilities are the gasifier, followed by the internal combustion engine, which should be focused in future improvements. The system efficiency in energetic basis is 51,84% and in exergetic basis is 22,78%. Using the ecologic efficiency methodology was possible to identify the emissions rates, the pollution indicator associated to the combustion of the synthesis gas in the internal combustion engine. The ecologic efficiency considering the energectic analysis is 91,73%, while considering the exergetic analysis, 83,65%. It is concluded that the use of the synthesis gas in a compact cogeneration system is viable from the technical and ecological point of view, making possible to generate energy for isolated communities and promoting the decentralized electricity generation

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The steady increase in the price of oil and its derivatives, carbon credits, the concern with the environment combined with the precipitation of rain water and lack of water resources that Brazil has suffered in 2014 caused a migration of participation sources of energy in the Brazilian energy matrix. The hydropower sector suffered big drop at 2013 and is suffering so far, contributing thus to the generation and cogeneration of thermal energy using renewable energy sources such as: sugarcane bagasse, wood chips, rice husks, among others. The selling price of the electricity market reached the level of R$ 807, 00 MWh in January 2014 (Source: ANEEL), heating the Brazilian thermoelectric sector. Although thermoelectric use in bulk water as vaporizing fluid to produce electricity and use in various processes, water reuse plans have become an important factor in these industries. The increased use of biomass has been the bagasse which is allied to the sugarcane sector, strong market in Brazil, and consists basically use the rest of sugar cane, sugarcane industries that would play out. The sugar and ethanol industry is very unstable and only lasts for 6-8 months a year, and the remaining time in the period known as between crop that corresponds to the planting and harvesting of sugarcane and then enter the period of vintage which is the constant cane harvesting and crushing it. This instability of the market and the thermoelectric idle period leads the thermoelectric industries to seek other sources of renewable energy, such as wood chips (pine, Eucalyptus, Orange), rice husk, sorghum among others, to not be dependent on alcohol sector. The present work aims to study the use of wood chips as an alternative biomass for burning a fuel that essentially uses bagasse, the thermoelectric in question consists of two boilers that produce together 350 t / h ... (Complete Abstract click electronic access below)

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Dissertação de Mestrado, Energias Renováveis e Gestão de Energia, Faculdade de Ciências e Tecnologia, Universidade do Algarve, 2016

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Biomass was the dominating source of energy for human activities until the middle 19th century, when coal, oil, gas and other energy sources became increasingly important but it still represents ca. 10% of the worldwide energy supply. The major part of biomass for energy is still "traditional biomass" used as wood and coal extracted from native forests and thus non-sustainable, used with low efficiency for cooking and home heating, causing pollution problems. This use is largely done in rural areas and it is usually not supported by trading activities. There is now a strong trend to the modernization of biomass use, especially making alcohol from sugar cane thus replacing gasoline, or biodiesel to replace Diesel oil, beyond the production of electricity and vegetable coal using wood from planted forests. As recently as in 2004, sustainable "modern biomass" represented 2% of worldwide energy consumption. This article discusses the perspectives of the "first" and "second" technology generations for liquid fuel production, as well as biomass gaseification to make electricity or syngas that is in turn used in the Fischer-Tropsch process.

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Al present article s’han sintetitzat els resultats principals del projecte. S’avalua la biomassa forestal disponible al Parc Natural de l’Alt Pirineu, a partir d’un conjunt de mètodes d’estimació que pretenen veure la diferència de biomassa disponible segons una sèrie de restriccions que es tenen en compte en cada cas. L’estudi té com a objectiu principal l’estimació de la biomassa forestal aprofitable que és susceptible de ser utilitzada per a l’abastament de la demanda d’energia calorífica pels habitatges de la zona. S’ha realitzat per a tres àmbits d’estudi diferents: Parc Natural de l’Alt Pirineu (PNAP), Vall de Cardós i el municipi d’Esterri de Cardós. Per a cadascun d’ells s’ha analitzat la demanda total d’energia calorífica dels habitatges, així com les seves emissions en Kg de CO2 i l’energia obtinguda a partir de la biomassa disponible. Finalment, com a escenari d’aprofitament, s’ha proposat fer una substitució d’aquells habitatges que utilitzen gasoil per la biomassa, amb la finalitat de comprovar les reduccions en emissions de CO2 i en els costos econòmics que tindrien lloc.

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En aquest article es resumeixen els resultats més destacats del projecte dut a terme pel grup Projecte Biomassa. Aquest estudi té per objectiu l’avaluació de la viabilitat energètica, econòmica i ambiental de l’aprofitament de la biomassa forestal com a recurs energètic a les forests d’Arestui, Baiasca, Montenartró i Virós situades dins el Parc Natural de l’Alt Pirineu (PNAP). En el projecte s’ha fet una revisió dels Plans d’Ordenació Forestal (POF’s) de les esmentades forests per tal d’adequar-les als requeriments del PNAP i així obtenir resultats sobre el potencial de biomassa sosteniblement extraïble, sobre el seu potencial energètic i plantejar un escenari d’aprofitament a mode de cas pràctic. A més a més, s’han realitzat també un balanç socioeconòmic, un balanç d’emissions de CO2 i una avaluació d’impacte ambiental per tal de determinar la viabilitat de l’ús de biomassa al PNAP com a recurs energètic. Com a resultat final s’ha obtingut que el procés d’aprofitament de la biomassa per a la producció d’energia calorífica esdevé una opció de futur viable i positiva ja que la implantació del nou procés comporta beneficis a nivell social, econòmic i ambiental.

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Projecte de la instal•lació de calefacció i agua calenta utilitzant energia solar tèrmica i ajudant-se d’ una caldera de biomassa en un edifici en construcció situat a Colera (Alt Empordà). Es tracta d’un bloc de quatre vivendes distribuïdes en dues plantes, soterrani i terrassa superior