117 resultados para bubbling fluidized bed boiler


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Tämä diplomityö on tehty Leppäkosken Energia Oy:n ja Kemira Chemicals Oy:n yhteisyritys FC Energia Oy:lle. FC Energia Oy suunnittelee rakentaa uutta bio-vetyvoimalaitosta Sastamalaan. Voimalaitoksella tuotettaisiin Kemira Chemicals Oy:n ylijäämävedystä ja biopolttoaineista sähköä, kaukolämpöä ja prosessihöyryä. Ympäristölupaa on haettu hakkeen, turpeen ja kierrätyspuun poltolle vetykaasun kanssa. Voimalaitoksen kattilan toiminta perustuu kuplivaan leijukerrostekniikkaan. Diplomityössä selvitettiin, mitä muutoksia kierrätyspolttoaineiden käyttö vaatii leijukerrospoltossa verrattuna hakkeen ja turpeen polttoon. Kierrätyspolttoaineena käytetään hyvälaatuista kierrätyspuuta. Kierrätyspuun käytössä sovelletaan jätteenpoltto-asetusta. Jätteenpolttoasetus määrää tiukemmat päästöjen raja-arvot rinnakkaispoltolle kuin hakkeen ja turpeen poltolle sekä jatkuvatoimiset savukaasujen mittauslaitteet. Rinnakkaispolton hiukkasmaisten päästöjen tiukempi raja-arvo vaatii tehokkaamman sähkösuodattimen. Lisäksi kierrätyspuuta käytettäessä tulistimen materiaaliin tulee olla kestävämpää, mikä aiheuttaa huomattavan lisäinvestoinnin. Työn päätavoitteena oli selvittää, onko kierrätyspuun käyttö taloudellisesti kannattavaa. Oletetulla kierrätyspuun hinnalla 10 €/MWh kierrätyspuuta polttavan voimalaitoksen takaisinmaksuaika on sama kuin haketta polttavan laitoksen ja vuoden lyhyempi kuin turvetta polttavan laitoksen. Tulokseksi saatiin, että rinnakkaispoltto käyttö on taloudellisesti kannattavaa hakkeenpolttoon nähden jos kierrätyspuun hinta on alle 11,2 €/MWh. Kierrätyspuun polttoon liittyy toiminnallinen riski, koska vastaavanlaisia rinnakkaispolttolaitoksia ei ole aiemmin rakennettu.

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A systematic averaging procedure has been derived in order to obtain an integral form of conservation equations for dispersed multiphase flow, especially applicable to fluidized beds. A similar averaging method is applied further to formulate macroscopic integral equations, which can be used in one-dimensional and macroscopic multi dimensional models. Circulating fluid bed hydrodynamics has been studied experimentally and both macroscopic and microscopic flow profiles have been measured in a cold model. As an application of the theory, the one dimensional model has been used to study mass and momentum conservation of gas and solid in a circulating fluid bed. Axial solid mixing has also been modelled by the one dimensional model and mixing parameters have been evaluated.

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This thesis presents a three-dimensional, semi-empirical, steady state model for simulating the combustion, gasification, and formation of emissions in circulating fluidized bed (CFB) processes. In a large-scale CFB furnace, the local feeding of fuel, air, and other input materials, as well as the limited mixing rate of different reactants produce inhomogeneous process conditions. To simulate the real conditions, the furnace should be modelled three-dimensionally or the three-dimensional effects should be taken into account. The only available methods for simulating the large CFB furnaces three-dimensionally are semi-empirical models, which apply a relatively coarse calculation mesh and a combination of fundamental conservation equations, theoretical models and empirical correlations. The number of such models is extremely small. The main objective of this work was to achieve a model which can be applied to calculating industrial scale CFB boilers and which can simulate all the essential sub-phenomena: fluid dynamics, reactions, the attrition of particles, and heat transfer. The core of the work was to develop the model frame and the required sub-models for determining the combustion and sorbent reactions. The objective was reached, and the developed model was successfully used for studying various industrial scale CFB boilers combusting different types of fuel. The model for sorbent reactions, which includes the main reactions for calcitic limestones, was applied for studying the new possible phenomena occurring in the oxygen-fired combustion. The presented combustion and sorbent models and principles can be utilized in other model approaches as well, including other empirical and semi-empirical model approaches, and CFD based simulations. The main achievement is the overall model frame which can be utilized for the further development and testing of new sub-models and theories, and for concentrating the knowledge gathered from the experimental work carried out at bench scale, pilot scale and industrial scale apparatus, and from the computational work performed by other modelling methods.

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Traditionally limestone has been used for the flue gas desulfurization in fluidized bed combustion. Recently, several studies have been carried out to examine the use of limestone in applications which enable the removal of carbon dioxide from the combustion gases, such as calcium looping technology and oxy-fuel combustion. In these processes interlinked limestone reactions occur but the reaction mechanisms and kinetics are not yet fully understood. To examine these phenomena, analytical and numerical models have been created. In this work, the limestone reactions were studied with aid of one-dimensional numerical particle model. The model describes a single limestone particle in the process as a function of time, the progress of the reactions and the mass and energy transfer in the particle. The model-based results were compared with experimental laboratory scale BFB results. It was observed that by increasing the temperature from 850 °C to 950 °C the calcination was enhanced but the sulfate conversion was no more improved. A higher sulfur dioxide concentration accelerated the sulfation reaction and based on the modeling, the sulfation is first order with respect to SO2. The reaction order of O2 seems to become zero at high oxygen concentrations.

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This thesis presents an approach for formulating and validating a space averaged drag model for coarse mesh simulations of gas-solid flows in fluidized beds using the two-fluid model. Proper modeling for fluid dynamics is central in understanding any industrial multiphase flow. The gas-solid flows in fluidized beds are heterogeneous and usually simulated with the Eulerian description of phases. Such a description requires the usage of fine meshes and small time steps for the proper prediction of its hydrodynamics. Such constraint on the mesh and time step size results in a large number of control volumes and long computational times which are unaffordable for simulations of large scale fluidized beds. If proper closure models are not included, coarse mesh simulations for fluidized beds do not give reasonable results. The coarse mesh simulation fails to resolve the mesoscale structures and results in uniform solids concentration profiles. For a circulating fluidized bed riser, such predicted profiles result in a higher drag force between the gas and solid phase and also overestimated solids mass flux at the outlet. Thus, there is a need to formulate the closure correlations which can accurately predict the hydrodynamics using coarse meshes. This thesis uses the space averaging modeling approach in the formulation of closure models for coarse mesh simulations of the gas-solid flow in fluidized beds using Geldart group B particles. In the analysis of formulating the closure correlation for space averaged drag model, the main parameters for the modeling were found to be the averaging size, solid volume fraction, and distance from the wall. The closure model for the gas-solid drag force was formulated and validated for coarse mesh simulations of the riser, which showed the verification of this modeling approach. Coarse mesh simulations using the corrected drag model resulted in lowered values of solids mass flux. Such an approach is a promising tool in the formulation of appropriate closure models which can be used in coarse mesh simulations of large scale fluidized beds.

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The made research is focused on possibility of application of non ferrous metals in boiler pressure parts as a substitute of currently used ferrous-base alloys. The main issue was to define resistive ability of some perspective non ferrous metals to chlorine induced corrosion. Experimental study was performed using simultaneous thermal analysis (STA) in the temperature range of 400-700 °C. The chloride induced corrosion was simulated by mixtures of metal samples with potassium chloride treated by synthetic air. The advantage of synergetic effect of non ferrous alloys compare to single metals is shown due to the obtained data from conducted thermal balance tests.

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Today the limitedness of fossil fuel resources is clearly realized. For this reason there is a strong focus throughout the world on shifting from fossil fuel based energy system to biofuel based energy system. In this respect Finland with its proven excellent forestry capabilities has a great potential to accomplish this goal. It is regarded that one of the most efficient ways of wood biomass utilization is to use it as a feedstock for fast pyrolysis process. By means of this process solid biomass is converted into liquid fuel called bio-oil which can be burnt at power plants, used for hydrogen generation through a catalytic steam reforming process and as a source of valuable chemical compounds. Nowadays different configurations of this process have found their applications in several pilot plants worldwide. However the circulating fluidized bed configuration is regarded as the one with the highest potential to be commercialized. In the current Master’s Thesis a feasibility study of circulating fluidized bed fast pyrolysis process utilizing Scots pine logs as a raw material was conducted. The production capacity of the process is 100 000 tonne/year of bio-oil. The feasibility study is divided into two phases: a process design phase and economic feasibility analysis phase. The process design phase consists of mass and heat balance calculations, equipment sizing, estimation of pressure drops in the pipelines and development of plant layout. This phase resulted in creation of process flow diagrams, equipment list and Microsoft Excel spreadsheet that calculates the process mass and heat balances depending on the bio-oil production capacity which can be set by a user. These documents are presented in the current report as appendices. In the economic feasibility analysis phase there were at first calculated investment and operating costs of the process. Then using these costs there was calculated the price of bio-oil which is required to reach the values of internal rate of return of 5%, 10%, 20%, 30%, 40%, and 50%.

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Harmful sulfur dioxide (SO2) emissions from power plants have increasingly been restricted since the 1970’s. Circulating fluidized bed (CFB) scrubber is a dry flue gas desulfurization method of absorbing SO2 out of the flue gas with sorbent. In current commercial plants, the used sorbent is commercial or on-site hydrated calcium hydroxide. The CFB scrubber process is characterized by a close but adequate approach to the flue gas saturation temperature that is achieved by spraying water to the absorber followed by a particulate control device. Very high SO2 removal is achieved along with a dry byproduct that is continuously recirculated back to the absorber for enhanced sorbent utilization. The aim of this work is to develop a method that would characterize the reactivity of sorbents used in CFB scrubbers and to conclude how different process parameters and sorbent properties affect the sulfur absorption. The developed characterization method is based on a fixed bed of sorbent and inert silica sand, through which an SO2 containing gas mixture is led. The reaction occurs in the bed and the SO2 concentration in the outlet as a function of time, a breakthrough curve, is obtained from the analyzer. Reactivity of the sorbents are evaluated by the absorbed sulfur amount. Results suggest that out of process parameters, lower SO2 concentration, lower temperature and higher moisture content enhance the desulfurization. Between different sorbents, specific surface area seems to be the most significant parameter. Large surface area linearly leads to more efficient desulfurization. Overall, the solid conversion levels in the tests were very low creating uncertainty to the validity of the results. New desing is being planned to overcome the problems of the device.

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The reduction of greenhouse gas emissions in the European Union promotes the combustion of biomass rather than fossil fuels in energy production. Circulating fluidized bed (CFB) combustion offers a simple, flexible and efficient way to utilize untreated biomass in a large scale. CFB furnaces are modeled in order to understand their operation better and to help in the design of new furnaces. Therefore, physically accurate models are needed to describe the heavily coupled multiphase flow, reactions and heat transfer inside the furnace. This thesis presents a new model for the fuel flow inside the CFB furnace, which acknowledges the physical properties of the fuel and the multiphase flow phenomena inside the furnace. This model is applied with special interest in the firing of untreated biomass. An experimental method is utilized to characterize gas-fuel drag force relations. This characteristic drag force approach is developed into a gas-fuel drag force model suitable for irregular, non-spherical biomass particles and applied together with the new fuel flow model in the modeling of a large-scale CFB furnace. The model results are physically valid and achieve very good correspondence with the measurement results from large-scale CFB furnace firing biomass. With the methods and models presented in this work, the fuel flow field inside a circulating fluidized bed furnace can be modeled with better accuracy and more efficiently than in previous studies with a three-dimensional holistic model frame.

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The aim of this thesis is to find and analyze different methods which reduce fluid bed boilers’ auxiliary power consumption. The objective is to examine the effects and feasibility of these methods. The literature part explains how fluid bed boilers work and what are the main sources of auxiliary power consumption. Designs and operation of these equipment are presented. The literature part also discusses the basics of auxiliary power consumption reduction and introduces four low pressure drop constructions. The experimental part inspects six different methods. Effects of these methods on the auxiliary power consumption are calculated and their impacts on the operation of the boiler are modeled. Calculations show that reasonable changes can reduce fluid bed boiler’s auxiliary power consumption by 2,1-10,2 %. Biggest reductions come from lower air coefficients, smaller bed a-level pressures and lower primary/secondary air –ratios. Models showed no problems with the smaller bed a-level pressures. With the lower air coefficients and smaller primary/secondary air –ratios the models showed a significant increase in the carbon monoxide levels.

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Increasing amount of renewable energy source based electricity production has set high load control requirements for power grid balance markets. The essential grid balance between electricity consumption and generation is currently hard to achieve economically with new-generation solutions. Therefore conventional combustion power generation will be examined in this thesis as a solution to the foregoing issue. Circulating fluidized bed (CFB) technology is known to have sufficient scale to acts as a large grid balancing unit. Although the load change rate of the CFB unit is known to be moderately high, supplementary repowering solution will be evaluated in this thesis for load change maximization. The repowering heat duty is delivered to the CFB feed water preheating section by smaller gas turbine (GT) unit. Consequently, steam extraction preheating may be decreased and large amount of the gas turbine exhaust heat may be utilized in the CFB process to reach maximum plant electrical efficiency. Earlier study of the repowering has focused on the efficiency improvements and retrofitting to maximize plant electrical output. This study however presents the CFB load change improvement possibilities achieved with supplementary GT heat. The repowering study is prefaced with literature and theory review for both of the processes to maximize accuracy of the research. Both dynamic and steady-state simulations accomplished with APROS simulation tool will be used to evaluate repowering effects to the CFB unit operation. Eventually, a conceptual level analysis is completed to compare repowered plant performance to the state-of-the-art CFB performance. Based on the performed simulations, considerably good improvements to the CFB process parameters are achieved with repowering. Consequently, the results show possibilities to higher ramp rate values achieved with repowered CFB technology. This enables better plant suitability to the grid balance markets.

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Compared to the use of traditional fossil fuels (coal, oil, natural gas), combustion of biomass and waste fuels has several environmental and economic advantages for heat and power generation. However, biomass and waste fuels might contain halogens (Cl, Br, F), alkali metals (Na, K) and heavy metals (Zn, Pb), which may cause harmful emissions and corrosion problems. Hightemperature corrosion occurs typically on furnace waterwalls and superheaters. The corrosion of the boiler tube materials limits the increase of thermal efficiency of steam boilers and leads to costly shutdowns and repairs. In recent years, some concerns have been raised about halogen (Cl, Br, and F)-related hightemperature corrosion in biomass- and waste-fired boilers. Chlorine-related high-temperature corrosion has been studied extensively. The presence of alkali chlorides in the deposits is believed to play a major role in the corrosion observed in biomass and waste fired boilers. However, there is much less information found in literature on the corrosion effect of bromine and fluorine. According to the literature, bromine is only assumed to play a role similar to chlorine; the role of fluorine is even less understood. In this work, a series of bubbling fluidized bed (BFB) bench-scale tests were carried out to characterize the formation and sulfation behaviors of KCl and KBr in BFB combustion conditions. Furthermore, a series of laboratory tests were carried out to investigate the hightemperature corrosion behaviors of three different superheater steels (10CrMo9-10, AISI 347 and Sanicro 28) exposed to potassium halides in ambient air and wet air (containing 30% H2O). The influence of H2O and O2 on the high-temperature corrosion of steels both with and without a salt (KCl) in three gas atmospheres (2% H2O-30% O2-N2, 2% H2O-2% O2-N2 and 30% H2O-2% O2-N2) was also studied. From the bench-scale BFB combustion tests, it was found that HBr has a clearly higher affinity for the available K forming KBr than HCl forming KCl. The tests also indicated that KCl has a higher tendency for sulfation than KBr. From the laboratory corrosion tests in ambient air (also called “dry air” in Paper III and Paper IV), it was found that at relatively low temperatures (≤ 550 °C) the corrosivity of KBr and KF are similar to KCl. At 600 °C, KF showed much stronger corrosivity than KBr and KCl, especially for 10CrMo9-10 and AISI 347. When exposed to KBr or KF, 10CrMo9-10 was durable at least up to 450 °C, while AISI 347 and Sanicro 28 were durable at least up to 550 °C. From the laboratory corrosion tests in wet air (30% H2O), no obvious effect of water vapor was detected at 450 °C. At 550 °C, the influence of water vapor became significant in some cases, but the trend was not consistent. At 550 °C, after exposure with KBr, 10CrMo9-10 suffered from extreme corrosion; after exposure with KF and KCl, the corrosion was less severe, but still high. At 550 °C, local deep pitting corrosion occurred on AISI 347 and Sanicro 28 after exposure with KF. Some formation of K2CrO4 was observed in the oxide layer. At 550 °C, AISI 347 and Sanicro 28 suffered from low corrosion (oxide layer thickness of < 10 μm) after exposure with KBr and KCl. No formation of K2CrO4 was observed. Internal oxidation occurred in the cases of AISI 347 with KBr and KCl. From the laboratory corrosion tests in three different gas atmospheres (2% H2O-30% O2-N2, 2% H2O-2% O2-N2 and 30% H2O-2% O2-N2), it was found that in tests with no salt, no corrosion occurred on AISI 347 and Sanicro 28 up to 600 °C in both the “O2-rich” (2% H2O-30% O2-N2) and “H2O-rich” (30% H2O-2% O2-N2) gas atmospheres; only 10CrMo9-10 showed increased corrosion with increasing temperature. For 10CrMo9-10 in the “O2-rich” atmosphere, the presence of KCl significantly increased the corrosion compared to the “no salt” cases. For 10CrMo9-10 in the “H2O-rich” atmosphere, the presence or absence of KCl did not show any big influence on corrosion. The formation of K2CrO4 was observed only in the case with the “O2-rich” atmosphere. Considering both the results from the BFB tests and the laboratory corrosion tests, if fuels containing Br were to be combusted, the corrosion damage of superheaters would be expected to be higher than if the fuels contain only Cl. Information generated from these studies can be used to help the boiler manufacturers in selecting materials for the most demanding combustion systems.

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Kehitettäessä leijupolttotekniikkaa entistä ympäristöystävällisemmäksi ja tehokkaammaksi tarvitaan lisää tietoa polttoaineen käyttäytymisestä tulipesässä. Polttoaineen palamisprofiili ja reaktiivisuus vaikuttavat oleellisesti esimerkiksi voimalaitoskattilan lämmönsiirtopintojen sijoitteluun ja suunnitteluun sekä ohjausjärjestelmän toteutukseen. Varsinkin monipolttoainekattiloilla ohjausjärjestelmän toimivuus joutuu koetukselle esimerkiksi kuormanmuutostilanteissa ja äkillisissä polttoaineen syöttöhäiriöissä. Tässä työssä on aluksi tutustuttu kiertoleijupolton ilmiöihin ja niiden matemaattiseen mallintamiseen. Lisäksi esitetään katsaus eri prosessiolosuhteiden vaikutuksesta palamiseen kiertoleijuolosuhteissa. Työn tutkimusosassa kehitettiin menetelmä polttoaineen reaktiivisuuden määrittämiseksi kiertoleijupoltossa. Kehitetty menetelmä koostuu koesarjasta ja matemaattisesta simulointimallista. Koetoiminta suoritettiin VTT Energian laboratoriokokoluokan kiertoleijukoelaitteella. Koesarja polttoaineen reaktiivisuuden määrittämiseksi sisältää eri kaasukomponenttien profiilimittauksia ja dynaamisia muutoskokeita. Menetelmän avulla voidaan tutkia eri polttoaineiden reaktiivisuuksia sekä polttoaineen reaktiivisuuden ja tietyn prosessiolosuhteen välistä riippuvuutta. Suorittamalla koeajomatriisin mukaiset kokeet tietyissä prosessiolosuhteissa voidaan polttoaineen reaktiivisuus selvittää koetulosten ja simulointimallin perusteella.

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Leijukerroskattiloissa rikinpoisto tapahtuu useimmiten käyttämällä primäärisiä rikinpoistomenetelmiä. Tämä tarkoittaa jonkin rikkiä sitovan lisäaineen, yleensä kalkkikiven, syöttämistä tulipesään. Tämä menetelmä soveltuu hyvin leijukerrospolttoon sen edullisuuden ja tehokkuuden takia.Tulevaisuudessa tullaan kuitenkin tiukentamaan voimalaitosten rikkidioksidipäästöjen rajoja. Tällöin myös vähärikkisiä polttoaineita käyttävien voimalaitosten tulee alentaa rikkipäästöjään. Nykyisiä menetelmiä käyttäen nousisivat kustannukset korkeaksi saavutettavaan hyötyyn nähden. Tämän takia tullaan tulevaisuudessa tarvitsemaan erilaisia rikinpoiston tehostamiskeinoja.Tämän työn tarkoituksena on selvittää rikinpoistoon ja sen tehokkuuteen vaikuttavia tekijöitä sekä tutkia erilaisia keinoja rikinpoiston tehostamiseksi. Kirjallisuusosassa keskitytään selvittämään nykyiset käytössä tai tutkimusasteella olevat keinot rikinpoiston tehostamiseksi. Kokeellisessa osuudessa keskitytään lentotuhkan kierrättämisen hyödyntämiseen rikinpoistossa. Tehtävissä kokeissa tavoitteena oli rikinpoistoasteen parantaminen sekä puhtaan kalkkikiven kulutuksen vähentäminen käyttämällä hyväksi lentotuhkan sisältämää reagoimatonta kalsiumoksidia.

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Polttaminen on tehokas jätteenkäsittelymenetelmä, jossa jätteen tilavuus pienenee huomattavasti ja energiasisältö voidaan hyödyntää. Euroopan yhtenäistyneen ja tiukentuneen jätelainsäädännön takia jätteen sijoittaminen kaatopaikoille tulee vähenemään merkittävästi, jolloin jätteenkäsittelyn kapasiteettivaje voidaan korvata ensisijaisesti jätettä hyödyntävillä käsittelymenetelmillä. Tässä työssä tarkastellaan kiinteiden polttokelpoisten jätteiden hyödyntämistä polttoaineena erityisesti Suomessa yleisesti käytettävän leijukerrospolton kannalta. Työn tavoitteena on vertailla yleisimpiä jätteen energiakäytössä käytettäviä tekniikoita ja tutkia jätteen energiakäytön nykytilaa sekä tulevaisuuden mahdollisuuksia Euroopan maissa. Työ voidaan jakaa kahteen osaan: alkuosassa on esitetty kiinteän polttoaineen palamisen teoriaa sekä erilaisten kiinteiden polttoaineiden ominaisuuksia. Lisäksi alkuosassa on perehdytty yleisimpiin jätteen energiakäytön tekniikoihin. Työn jälkimmäisessä osassa on käsitelty jätteen energiakäyttöä ohjaavia tekijöitä sekä esitetty jätehuollon nykytila Suomessa ja muutamassa muussa Euroopan maassa. Tarkoituksena on ollut antaa yleiskuva siitä, miten jätettä hyödynnetään energiantuotannossa eri puolilla Eurooppaa ja miten yhtenäistyvä lainsäädäntö vaikuttaa eri maiden jätehuoltopolitiikkaan sekä jätteen energiakäytön määriin.