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  • About
  • The Global ETD Search service is a free service for researchers to find electronic theses and dissertations. This service is provided by the Networked Digital Library of Theses and Dissertations.
    Our metadata is collected from universities around the world. If you manage a university/consortium/country archive and want to be added, details can be found on the NDLTD website.
61

Investigation of solar applicable gas cycles

Gopalakrishna, Sandeep 22 April 2013 (has links)
This thesis presents the thermodynamic and economic assessment of gas power cycles for 100 MW solar thermal power generation systems. A gas power cycle for solar power generation is a totally different technology from the current state of the art solar power generation systems. As a result, this thesis provides an assessment of the solar power generation systems with gas power cycles and provides guidance in the selection of design and operating parameters for gas power cycle based solar power generation system. The gas power cycle based power generation systems are assessed by means of thermodynamic and economic models developed and simulated using commercial thermodynamic analysis software. The gas cycle based power generation systems considered in this study are Cold Gas Turbine, High Temperature Solar Gas Turbine and Lorentz Cycle Gas Turbine. The system models are assessed for their thermodynamic performance using theory based turbo-machinery models with practical performance and loss data. In addition, extensive cost models have been developed for assessing the economic performance of the system models to determine their practical feasibility. The results from this study indicate that the most economical power generation system is the HTSGT system for a high peak cycle temperature utilizing the central receiver power tower solar collector system. The LCGT system also has a comparable performance at the same operating temperature. The CGT system assessed for operating with parabolic trough solar collector system at a lower peak cycle temperature had an inferior performance compared to the current state of the art technology for the power generation using parabolic troughs.
62

A Techno-Economic Framework for the Analysis of Concentrating Solar Power Plants with Storage

Guédez, Rafael January 2016 (has links)
Concentrating solar power plants can integrate cost-effective thermal energy storage systems and thereby supply controllable power on demand, an advantage against other renewable technologies. Storage integration allows a solar thermal power plant to increase its load factor and to shift production to periods of peak demand. It also enables output firmness, providing stability to the power block and to the grid. Thus, despite the additional investment, storage can enhance the performance and economic viability of the plants. However, the levelized cost of electricity of these plants yet remains higher than for other technologies, so projects today are only viable through the provision of incentives or technology-specific competitive bid tenders. It is the variability of the solar resource, the myriad roles that storage can assume, and the complexity of enhancing the synergies between the solar field, the storage and the power block, what makes the development of adequate policy instruments, design and operation of these plants a challenging process. In this thesis a comprehensive methodology for the pre-design and analysis of concentrating solar power plants is presented. The methodology is based on a techno-economic modeling approach that allows identifying optimum trade-off curves between technical, environmental, and financial performance indicators. A number of contemporary plant layouts and novel storage and hybridization concepts are assessed to identify optimum plant configurations, in terms of component size and storage dispatch strategies. Conclusions highlight the relevance between the sizing of key plant components, the operation strategy and the boundaries set by the location. The interrelation between critical performance indicators, and their use as decisive parameters, is also discussed. Results are used as a basis to provide recommendations aimed to support the decision making process of key actors along the project development value chain of the plants. This research work and conclusions are primarily meant to set a stepping stone in the research of concentrating solar power plant design and optimization, but also to support the research towards understanding the value of storage in concentrating solar power plants and in the grid. / Koncentrerad solkraft erbjuder möjligheten att integrera kostnadseffektiv termisk energilagring och därmed behovsstyrd kraftkontroll. Detta är en viktig fördel jämfört med andra förnybara energiteknologier. Lagringsintegration tillåter solkraftsanläggningar att öka sin lastfaktor och skifta produktion till tider med största efterfrågan. Vidare möjliggör lagring fast elproduktion vilket leder till förbättrad nät- och kraftturbinstabilitet. Därför kan termisk lagring öka anläggningsprestanda och ekonomiskt värde trots ökande initiala kapitalkostnader. I termer av specifik elproduktionskostnad (LCOE) ligger koncentrerade solkraftsanläggningar med lagring fortfarande högre än andra kraftteknologier och anläggningsprojekt blir endast lönsamma genom subventionsmodeller eller teknologispecifika konkurrensutsatta anbudsförfaranden. Att hitta adekvata policylösningar och optimala design och operationsstrategier är en utmanande process eftersom det gäller att hitta rätt balans mellan variabel solinstrålning, lagring av energi och tid för produktion genom optimal design och operation av solmottagarfält, kraftblock och lagringskapacitet. I denna avhandling presenteras en omfattande metodik för pre-design och analys av koncentrerande solkraftverk. Metodiken baseras på en tekno-ekonomisk modelleringsansats som möjliggör identifiering av optimala avvägningssamband för tekniska, ekonomiska och miljöprestanda indikatorer. Metodiken tillämpas på ett antal moderna anläggningslayouter  och lagrings- och hybridiseringskoncept för att identifiera optimal kraftanläggningsdesign i termer av komponentprestanda och lagringsanvändningsstrategier. I slutsatsen poängteras relevansen av att hitta rätt storlek på nyckelkomponenter i relation till lagringsstrategi och randvillkoren som ges av konstruktionsläget för optimal ekonomisk och miljömässig prestanda. Resultaten används för att formulera rekommendationer till nyckelaktörer i beslutsprocessen genom hela kraftanläggningens värdekedja från politisk beslutsfattare till anläggningsingenjör. Forskningen och slutsatserna i detta arbete skall i första hand ta ett steg framåt för optimering och design av solkraftsanläggningar men även tillhandahålla en metodik för utvärdering av lagringslösningar och dess specifika värde för solkraftsanläggningar och elnätet. / <p>QC 20160829</p>
63

Strategic raw material supply for the particleboard-producing industry in Europe : Problems and challenges

Trischler, Johann January 2016 (has links)
Particleboard was invented to increase the utilization of wood and it soon became an important core material for furniture production. Nowadays, other industries such as the pulp and papermaking industry and the thermal energy recovery industry claim the same type of raw material. This leads to increasing competition and higher prices than in the past when that kind of wood raw material was widely available and of low price. The particleboard-producing industry is therefore seeking opportunities to reduce the competition and ensure the future supply of lignocellulosic raw material for their products. The purpose of the work summarised in this thesis was to investigate the strategic supply of lignocellulosic raw materials for particleboard production and to evaluate alternatives for the supply of lignocellulosic raw material for particleboard production. To encompass the complex field of strategic raw material supply, several publications have considered different stages along the supply chain. These papers range from empirical studies to practical tests on a laboratory scale. In this thesis, some of the papers are linked together, building the base for the overall results. The results show that the task of increasing the supply of lignocellulosic raw material as primary raw material source is limited by several factors, but that improved product design coupled with a suitable recycling concept can greatly increase the availability of lignocellulosic raw material as a secondary source. Alternatively, the use of non-wood plants might be an opportunity to substitute wood as raw material but there are still some problems relating to the particle properties which must be overcome first.
64

Development of a cascaded latent heat storage system for parabolic trough solar thermal power generation

Muhammad, Mubarak Danladi January 2014 (has links)
Concentrated solar power (CSP) has the potential of fulfilling the world’s electricity needs. Parabolic-trough system using synthetic oil as the HTF with operating temperature between 300 and 400o C, is the most matured CSP technology. A thermal storage system is required for the stable and cost effective operation of CSP plants. The current storage technology is the indirect two-tank system which is expensive and has high energy consumption due to the need to prevent the storage material from freezing. Latent heat storage (LHS) systems offer higher storage density translating into smaller storage size and higher performance but suitable phase change materials (PCMs) have low thermal conductivity, thus hindering the realization of their potential. The low thermal conductivity can be solved by heat transfer enhancement in the PCM. There is also lack of suitable commercially-available PCMs to cover the operating temperature range. In this study, a hybrid cascaded storage system (HCSS) consisting of a cascaded finned LHS and a high temperature sensible or concrete tube register (CTR) stages was proposed and analysed via modelling and simulation. Fluent CFD code and the Dymola simulation environment were employed. A validated CFD phase change model was used in determining the heat transfer characteristics during charging and discharging of a finned and unfinned LHS shell-and-tube storage element. The effects of various fin configurations were investigated and heat transfer coefficients that can be used for predicting the performance of the system were obtained. A model of the HCSS was then developed in the Dymola simulation environment. Simulations were conducted considering the required boundary conditions of the system to develop the best design of a system having a capacity of 875 MWhth, equivalent to 6 hours of full load operation of a 50 MWe power plant. The cascaded finned LHS section provided ~46% of the entire HCSS capacity. The HCSS and cascaded finned LHS section have volumetric specific capacities 9.3% and 54% greater than that of the two-tank system, respectively. It has been estimated that the capital cost of the system is ~12% greater than that of the two-tank system. Considering that the passive HCSS has lower operational and maintenance costs it will be more cost effective than the twotank system considering the life cycle of the system. There is no requirement of keeping the storage material above its melting temperature always. The HCSS has also the potential of even lower capital cost at higher capacities (>6 hours of full load operation).
65

Development of a rotary thermomagnetic motor for thermal energy conversion. / Desenvolvimento de um motor termomagnético rotativo para conversão de energia térmica.

Ferreira, Lucas Diego Rodrigues 22 November 2018 (has links)
Thermomagnetic motors can represent an alternative for the conversion of heat into mechanical energy, limited by the critical transition temperature (TC) of the used magnetic materials. Thus, by using materials with a TC close to room temperature, the energy available in the form of low-grade heat sources can be converted into useful mechanical work. This thesis proposes the development of a thermomagnetic motor to be operated with heat sources at temperatures in the range from 343 to 353 K, and a heat sink at room temperature, using water as the heat transfer fluid, presenting a novel approach to the construction of thermomagnetic devices. The design of this thermomagnetic motor was developed with the intent of producing a rotary movement, working similarly to an electric stepper motor, where instead of the electromagnetic coils being activated by an electric current, plates of a magnetic material change their magnetization state, due to a change in their temperature caused by the heat transfer with the heat transfer fluid. The analysis of the thermomagnetic motor proposed was done with the adoption of an integrated approach of numerical simulation and experimental validation. The evaluation of the motor is divided into the three main physical phenomena it encompasses: the magnetic field source, the heat transfer processes involved in the change of temperature of the magnetic material, and the system dynamics and power production. Each of these systems was modeled using computational tools. These models were then validated according to the data measured, obtained from a test stand of an idealized thermomagnetic motor, and for a rotary thermomagnetic motor. This methodology allowed a more comprehensive understanding of the critical working principles of the motor developed, and with that a fast advancement of the technology through a validated computational model. The computational models helped to identify the critical components to be improved in the development of these motors. These parameters can be guidelines for the design of thermomagnetic motors. One of the ways identified to produce a significant performance improvement, in the simulations, was the adoption of a control strategy that promotes the regeneration of heat in the plates of magnetic material, through which an improvement in the efficiency of 2.7 times could be achieved. / Motores termomagnéticos representam uma alternativa para a conversão de calor em energia mecânica, limitada apenas pela temperatura crítica da transição termomagnética (TC) dos materiais magnéticos. Ao usar materiais com TC próximo à temperatura ambiente, pode-se realizar a conversão da energia contida nas chamadas fontes pobres de calor, produzindo trabalho mecânico útil. Esta tese propõe o desenvolvimento de um motor termomagnético para operação com fontes de calor com temperaturas entre 343 e 353 K, e resfriamento à temperatura ambiente, utilizando a água como fluído de troca térmica, apresentando uma abordagem inovadora para dispositivos termomagnéticos. O motor foi projetado para produção de movimento rotativo de um eixo, per meio de um princípio similar ao de um motor de passo, no qual em vez de bobinas ativadas pela passagem de corrente elétrica, placas de material magnético sofrem uma mudança em seu estado de magnetização, devido à mudança de temperatura, causada pela troca de calor com a água. A análise do motor termomagnético proposto foi realizada com a adoção de uma abordagem integrada de simulações numéricas e validação experimental, dividindo a avaliação dos motores nos três principais fenômenos físicos envolvidos em seu funcionamento: a fonte de campo magnético, o processo de troca térmica envolvido na mudança de temperatura do material magnético, a dinâmica do sistema e produção de potência. Cada um destes sistemas foi modelado usando ferramentas computacionais. Os resultados obtidos foram então validados utilizando dados experimentais, obtidos a partir da construção e caracterização de uma bancada de testes para um motor termomagnético idealizado, e também para o motor termomagnético rotativo construído. Esta metodologia propiciou maior entendimento das funções críticas do motor desenvolvido, e possibilitou ainda sua otimização, através do estudo dos modelos computacionais validados. Os parâmetros obtidos ajudaram a identificar componentes críticos para melhoria no projeto do motor rotativo construído, e servem também como guias gerais para projetos de motores termomagnéticos. Um dos componentes com elevado potencial de melhoria foi a adoção de uma estratégia de controle para a regeneração do calor nas placas de material magnético, o que possibilitou, nas simulações, uma melhoria até 2,7 vezes na eficiência.
66

Evaluation de l'impact potentiel d'un upwelling artificiel lié au fonctionnement d'une centrale à énergie thermique des mers sur le phytoplancton / Evaluation of the potential impact of an artificial upwelling linked to the operation of a thermal energy plant of the seas on phytoplankton

Giraud, Mélanie 01 February 2016 (has links)
Dans le cadre de l’implantation d’une centrale pilote à énergie thermique des mers (ETM) prévue au large des côtes caribéennes de la Martinique d’ici 2020, ces travaux de thèse visent à évaluer les impacts potentiels de la décharge d’eau profonde en surface sur le phytoplancton. La centrale pilote offshore NEMO conçue par DCNS et mise en oeuvre par Akuo Energy prévoit une production d’environ 10 MW. Les eaux froides et riches en nutriments pompées au fond et rejetées en surface par la centrale ETM avec un débit d’environ 100 000 m3.h-1 devraient enrichir les eaux de surface du site d’étude, particulièrement pauvres en nitrate et phosphate. Deux campagnes de mesures sur le terrain à deux saisons contrastées (saison humide en juin 2014 et saison sèche en novembre 2013) ont permis d’apporter une description des différents paramètres physiques et biogéochimiques susceptibles d’induire une modification de la communauté phytoplanctonique. Une variabilité saisonnière marquée de la stratification et des paramètres biogéochimiques a été mise en évidence avec en saison humide une forte influence océanique (advection d’eaux originaires de l’Amazone et de l’Orénoque) et atmosphérique (brumes des sables) enrichissant potentiellement la couche de surface en nutriments et en métaux traces. Des microcosmes in situ ont été développés afin de simuler le rejet d’eau de fond dans la couche de surface sous différents scénarios. De l’eau de surface prélevée dans le maximum de chlorophylle (45 m, où le phytoplancton est le plus abondant) et à la base de la couche euphotique (80 m, où le phytoplancton est présent en très faible abondance) a été enrichie avec un faible (2%) ou fort apport (10%) d’eau de fond (1100 m) et mise à incuber in situ pendant 6 jours. La production primaire a également été estimée dans le milieu naturel et dans les microcosmes. Ces expérimentations ont mis en évidence qu’un fort apport (10%) stimule le développement du micro-phytoplancton, des diatomées en particulier, au détriment des Prochlorococcus, tandis qu’un apport de 2% ne modifie que faiblement la communauté. La réponse des diatomées pourrait être liée à l’apport en nitrate et phosphate par les eaux profondes. La production primaire serait quant-à-elle dépendante de l’assemblage phytoplanctonique en présence, plutôt que de l’intensité de l’apport d’eau profonde. Enfin, les perturbations thermiques liées au rejet d’eau froide de fond ont été évaluées à partir du modèle numérique ROMS. Les seuils d’impact thermique de -3°C préconisés par la World Group Bank et de -0,3°C correspondant à 2% de dilution d’eau profonde ont été considérés. Même au seuil le plus bas (-0,3°C), la surface impactée sur les premiers 150 m de la colonne d’eau était trop faible pour être détectable par la simulation, quelle que soit la profondeur du rejet. L’impact thermique lié au rejet d’eau froide devrait donc être négligeable, et elle serait limitée à moins de 3 km2. Ces travaux constituent la première étape indispensable dans la compréhension de ce que pourrait être l’impact de ce rejet sur l’écosystème à plus long terme. / As part of the implementation of an Ocean thermal energy conversion (OTEC) pilot plant planned off the Caribbean coast of Martinique by 2020, this thesis aims to assess the potential impacts of deep seawater discharge at the surface on the phytoplankton. The offshore pilot plant NEMO, designed by DCNS and implemented by Akuo Energy anticipates production of approximately 10 MW. The cold and nutrient-rich waters that are pumped in the bottom and discharged at the surface by the heat engine with a flow of roughly 100 000 m3 h-1 should enrich surface waters of the study site, which are particularly poor in nitrate and phosphate. Two campaigns of field measurements in two contrasting seasons (the dry season in November 2013 and the wet season in June 2014) have allowed the description of different physical and biogeochemical parameters that may induce changes in the phytoplankton community. Marked seasonal variability in stratification and biogeochemical parameters occurred, with strong oceanic influences (advection of waters from the Amazon and Orinoco) and atmospheric influences (African dust) potentially enriching the surface layer in nutrients and trace metals during the wet season. In situ microcosms were designed to simulate the discharge of bottom waters into the surface layer under different scenarios. Surface water collected at the chlorophyll maximum(45 m, where the phytoplankton is the most abundant), and at the base of the euphotic layer (80 m, where the phytoplankton is present, but in very low abundance) was enriched with either a weak (2%) or strong (10%) input of bottom waters (1100 m), and incubated for 6 days. Primary production was estimated in both the natural environment, and in the microcosms. These experiments have shown that high input (10%) stimulates the development of micro-phytoplankton, especially diatoms, to the detriment of Prochlorococcus. The response of diatoms could be linked to the input of nitrate and phosphate by the deep seawater.Primary production would be dependent on the composition of the phytoplankton assemblage rather than on the intensity of deep water discharge. Finally, thermal disturbances linked to the discharge of cold water at the surface were assessed using a numerical model (ROMS), which considered the thermal impact threshold of -3°C as recommended by the World Bank Group, and -0.3 °C, corresponding to a 2% dilution with deep water. Even at the lowest threshold (-0.3 °C), the area impacted in the first 150 m of the water column was too low to be detected by the simulation, regardless of the discharge depth. The thermal impact of cold water should therefore be negligible and limited to an area of less than 3 km2. This work provides the first critical step in understanding how bottom water discharge may impact the ecosystem in the longer-term.
67

Thermal energy harvesting from temperature fluctuations / Récupération d'énergie thermique à partir de variations de température

Zhu, Hongying 29 September 2011 (has links)
Le développement des équipements portables, des réseaux de capteurs sans fil et systèmes auto-alimentés d'une manière générale génère une forte demande pour les dispositifs de récupération de micro-énergie. Une des voies les plus intéressantes pour auto-alimenter des dispositifs consiste à développer des systèmes recyclant l'énergie ambiante afin de renouveler sans cesse l'énergie consommée par le dispositif. En dehors de la récupération d'énergie électromécanique, il est également intéressant de convertir l'énergie thermique, qui est «disponible» partout, en énergie électrique. Au cours de cette thèse, la conversion d’énergie thermique en énergie électrique fondée sur des variations temporelles de température a été développée et améliorée. Parmi les matériaux ferroélectriques, des monocristaux de PZN-4.5PT et le terpolymère P(VDF-TrFECFE) 61.3/29.7/9 mol % ont été choisis comme matériaux actifs en raison de leurs propriétés remarquables sous champ électrique. En utilisant des cycles thermodynamiques intelligents, par exemple, Ericsson ou à cycle de Stirling, l'efficacité de la conversion de l'énergie pourrait être considérablement améliorée. Dans la première partie, la récupération d'énergie pyroélectrique en utilisant des monocristaux de PZN-4.5PT a été principalement étudiée sous deux aspects: l'effet de fréquence et des transitions de phase sur les cycles d’Ericsson. Il a été montré que l'énergie récupérée diminue de façon non linéaire avec une augmentation de la fréquence. De plus, l’utilisation optimale des transitions de phase pendant le cycle d’Ericsson permet d’améliorer grandement l’énergie récupérée en choisissant une gamme de température de travail appropriée. A partir de ces résultats, deux cycles d’Ericsson asymétriques (LH et HL) ont été réalisés avec succès. Avec les monocristaux de PZN-4.5PT, le cycle HL est le cycle le plus efficace pour la conversion d’énergie thermique en énergie électrique. La deuxième partie traite de la récupération d'énergie électrostatique via la variation non linéaire de la capacité du terpolymère P(VDF-TrFE-CFE) 61.3/29.7/9 mol %. Un cycle d’Ericsson a été réalisé entre 25 et 0°C et comparé à sa simulation à partir de la valeur de la constante diélectrique sous champ électrique DC. La concordance entre la simulation et l’expérience a prouvé la fiabilité de notre évaluation théorique. A partir de la simulation, l'énergie récupérée augmente jusqu'à 240 mJ/cm3 en appliquant un champ électrique de 80 kV/mm. Des cycles de Stirling et d’Ericsson ont également été simulés sous différentes variations de température et champ électriques. L'énergie récupérée augmente avec l’accroissment de la variation de température et de la valeur du champ électrique appliqué et ceci quelque soit le cycle réalisé. Contrairement au cycle d’Ericsson, un cycle de Stirling peut récupérer plus d'énergie pour une même énergie injectée. / The development of portable equipments, wireless sensors networks and self-powered devices in a general manner generates a strong demand for micro-energy harvesting devices. One of the most challenging ways to self power devices is the development of systems that recycle ambient energy and continually replenish the energy consumed by the system. Apart from electromechanical energy harvesting, it is also interesting to convert thermal energy, which is “available” everywhere, into suitable electrical energy. In this thesis, the thermal to electrical energy conversion from temperature fluctuations was developed and improved, and the feasibility of this technique was also confirmed by implementing the experimental experiment. Among different ferroelectric materials, PZN-4.5PT single crystal and P(VDF-TrFE-CFE) 61.3/29.7/9 mol% were chosen as active materials due to their outstanding properties under electric field. By means of some intelligent thermodynamic cycles, e.g., Ericsson or Stirling cycle, which has been presented in previous research, the efficiency of energy conversion could be improved greatly. In the first part, pyroelectric energy harvesting on PZN-4.5PT single crystals with an Ericsson cycle was mainly investigated from two aspects: frequency effect and phase transitions. It was shown that the harvested energy demonstrated a nonlinear decrease with an increase of frequency, and the optimal use of the phase transitions during the Ericsson cycle could greatly improve the harvested energy by choosing the appropriate working temperature range. Based on it, two asymmetric Ericsson models (L-H and H-L cycles) were attempted successfully, and it was confirmed that the H-L cycle is the most effective thermal energy harvesting cycle for this material. The second part concentrated on electrostatic energy harvesting by nonlinear capacitance variation on P(VDF-TrFE-CFE) 61.3/29.7/9 mol% terpolymer. Ericsson cycle was tested experimentally between 25 and 0°C and compared with the simulation from dielectric constant values obtained under DC electric field. The identical result between simulation and experiment proved the reliability of our theoretical evaluation. It was found, from simulation, that the harvested energy increased up to 240 mJ/cm3 when raising the electric field at 80 kV/mm. The further study on Ericsson and Stirling cycle was also made under different temperature and electric field conditions for evaluation. The harvested energy increases with the rising of temperature variation and electric field in both cycles, but in contrast to Ericsson cycle, Stirling cycle can harvest more energy for the same injected energy.
68

Dispositifs innovants pour la récupération de l'énergie thermique / Innovative devices for heat energy harvesting

Puscasu, Onoriu 22 January 2014 (has links)
Le présent travail est une contribution au domaine de la récupération de l’énergie. La conversion mise en place est faite à échelle centimétrique, les puissances électriques produites étant suffisantes pour alimenter des dispositifs à basse consommation, comme par exemple les capteurs sans fil. Une technologie innovante pour la récupération de l’énergie thermique est proposée, l’objectif étant de fabriquer des dispositifs fins, flexibles et bas coût pour une utilisation sans radiateur. Le fonctionnement choisi repose sur une conversion de la chaleur en électricité en deux étapes : thermomécanique (réalisée avec des bilames thermiques) et mécano-électrique (réalisée avec des piézoélectriques). Plusieurs prototypes ont été élaborés, aboutissant à des dispositifs matriciels flexibles, d’une épaisseur de quelques millimètres et fonctionnant sans radiateur avec refroidissement par convection naturelle. Les signaux générés sont des pics de tension qui dépassent les 10 V, pour une puissance mécanique disponible autour de 200 µW à 75°C. Plusieurs études ont été réalisées pour l'optimisation des dispositifs et la caractérisation de leurs composants. Leurs lois d’échelle ont été déduites, prédisant un gain en puissance avec la miniaturisation. Des modèles ont été proposés pour le comportement du piézoélectrique et pour le comportement thermique d’un dispositif. Les premiers cas d’usage ont été identifiés et les premiers tests ont été faits dans les environnements proposés par des potentiels utilisateurs. / The present work is a contribution to the domain of energy harvesting. The developed conversion is made at centimeter scale, and the generated electrical power is sufficient for low power devices, as for example wireless sensor nodes. An innovative technology for heat energy harvesting is proposed, with the goal to fabricate thin, flexible, and low cost devices for a use without a heat sink. Their working principle relies on a two-step conversion of heat into electricity: thermo-mechanical (with thermal bimetals) and mechanoelectrical (with piezoelectrics). Several prototypes have been built, resulting in flexible matrix devices that are a few millimeters thick and work without a heat sink with natural convection. The generated signals are voltage peaks above 10 V, for an available mechanical power in the order of 200 µW around 75°C. Several studies have been done for the optimization of the devices and the characterization of their components. Scale laws have been established, and predict significant power gain with miniaturization. Analytical models have been elaborated for the behavior of the piezoelectric and for the thermal behavior of a device. The first use cases have been identified, and the first tests have been performed in environments proposed by potential end users.
69

Estudo numérico da mudança de fase de PCMs em cavidades cilíndricas

Estrázulas, Jutaí Juarez 12 June 2015 (has links)
Submitted by Silvana Teresinha Dornelles Studzinski (sstudzinski) on 2015-10-26T16:14:39Z No. of bitstreams: 1 Jutaí Juarez Estrázulas_.pdf: 1716303 bytes, checksum: ac095da5508e03eaab20ab1008f22067 (MD5) / Made available in DSpace on 2015-10-26T16:14:39Z (GMT). No. of bitstreams: 1 Jutaí Juarez Estrázulas_.pdf: 1716303 bytes, checksum: ac095da5508e03eaab20ab1008f22067 (MD5) Previous issue date: 2015-06-12 / CAPES - Coordenação de Aperfeiçoamento de Pessoal de Nível Superior / Inúmeras aplicações residenciais, comerciais e industriais voltadas ao gerenciamento térmico tem seus custos operacionais reduzidos quando um sistema de armazenamento de energia térmica é incorporado. Tal tipo de sistema pode, por exemplo, absorver energia térmica oriunda de fonte solar, de reaproveitamento de calor de processo industrial ou mesmo proveniente de energia elétrica (nos horários em que esta é menos onerosa), e liberá-la em um horário em que estas fontes de calor não estejam presentes e em que a energia elétrica, se utilizada, seria mais onerosa.Os PCMs (Phase Change Materials), devido ao seu alto calor latente de fusão, são materiais que representam uma alternativa viável à implementação de sistemas de armazenamento de energia térmica. No entanto, inúmeros PCMs ainda não tiveram suas características e propriedades fluidodinâmicas investigadas suficientemente. Assim, este trabalho apresenta um estudo numérico da mudança de fasede PCMs da família RT,em cavidades cilíndricas, visando o armazenamento térmico de energia através de calor latente (LHTES). O estudo foi realizado através de simulação numérica por CFD, com o software ANSYS Fluent. O modelo numérico adotado é bidimensional e é composto pelas equações da conservação da massa, quantidade de movimento e energia. Além destas, foi utilizada a técnica de modelamento entalpia-porosidade. A malha computacional é do tipo hexaédrica, com refinamento junto às paredes da geometria e na região de interface entre o PCM e o ar. O modelo implementado foi validado com resultados numéricos e experimentais da literatura, obtendo-se bons resultados. Foi avaliado o processo de fusão de cinco diferentes tipos de PCMs (RT 4, RT 35, RT 35HC (alta capacidade), RT 55 e RT 82), cada um deles com três intervalos de temperatura (T=10, 20 e 30 °C).Além disto, para T=10 ºC, os PCMS RT 27, RT 35, RT 35 HC e RT 82 foram testados para cinco diferentes valores de constante C (Mushy Zone), totalizando trinta diferentes situações. Paraos PCMs RT 4, RT 35, RT55 e RT82, aumentando-se o T de 10 oC para 20 oC e de 10 oC para 30 oC, para frações líquidas entre 0,4 e 0,8, a redução média dos tempos de fusão foide, aproximadamente, 55,8% e 71,8% e os incrementos médios no fluxo de calor foram de 63% e 111 %, respectivamente. Para o RT35HC, as reduções médias nos tempos de fusão foram de 51,6% e de 67,8%, para a mesma faixa de fração líquidae mesmos T. O RT35HC, quando comparado com o RT 35, possui calor latente de fusão 41,1% maiore os seus tempos de fusão são entre 100% à 134% superiores, dependendo do T utilizado. / Several residential, commercial and industrial applications focused on thermal management have their operating costs reduced when a thermal energy storage system is incorporated to them. This type of system can provide, can, for example, absorb thermal energy from solar source, heat reuse from industrial process or even from electrical power (during the time this is less expensive) and release it at a time that these heat sources are not present and the electrical power, if used, would be more expensive.The Phase Change Materials (PCMs), due to their high latent heat of fusion, are materials that represent a viable alternative to the implementation of thermal energy storage systems. However, many PCMs have not had their characteristics and fluid dynamics properties sufficiently investigated. Thus, this paper presents a numerical study of RT phase change materials family, inside cylindrical cavities, aiming at the thermal energy storage trough latent heat (LHTES). The study was conducted through a CFD numerical simulation, with ANSYS Fluent software. The numeric model adopted is two-dimensional and is composed by mass conservation, movement amount and energy equations. In addition, the enthalpy-porosity modeling technique was used. The computational mesh is hexaedric, with refinement along the walls of geometry and at the interface area between the PCM and air. The model was validated with numerical and experimental results available in the literature, achieving good results. The fusion process of five different PCMs (RT 4, RT 35, RT 35 HC (high capacity), RT 55 and RT 82) was evaluated, each one of them with three temperature ranges (T= 10, 20 e 30 °C). Furthermore, for T=10 °C, the PCMs RT 27, RT 35, RT 35 HC and RT 82 were tested for five different values of C constant (Mushy Zone) totaling thirty different situations. For PCMs RT 4, RT 35, RT 55 and RT 82, increasing T from 10 oC to 20 oC and from 10 oC to 30 oC, for liquid fraction between 0,4 and 0,8, the average reduction in fusion time were, approximately, 55.8% and 71.8% and the average increase in heat flow were 63% and 111% respectively. For RT 35 HC, the average reductions in fusion time were 51.6% and 67.8% for the same liquid fraction range and same T. The RT 35 HC, when compared to RT 35, has latent heat of fusion 41.1% greater and its fusion times are between 100% to 134% greater, depending on T used.
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Carvão mineral e as energias renováveis no Brasil

Gavronski, Jorge Dariano January 2007 (has links)
O aumento da população e o desenvolvimento da economia criam a necessidade de expansão de mais de quatro mil Megawatts da energia nova por ano no Sistema Interligado Nacional (SIN). O sistema elétrico brasileiro é peculiar, devido a sua grande capacidade, extensão continental e grande dependência na energia renovável hídrica. Outra peculiaridade é a capacidade potencial de inserção de outras formas da energia renováveis “verdes” no sistema. Embora as vantagens ambientais das energias renováveis, elas têm limitações, são variáveis e dependentes das condições climáticas. Para que o setor elétrico brasileiro possa atuar com confiabilidade com mais energia renovável deve haver concomitante mais energia firme de origem térmica disponível. Assim o trabalho analisa, na perspectiva global, o estado da arte e as tendências das fontes de geração elétrica, sob o ponto de vista de disponibilidade, preço e sustentação ambiental. De forma especial, o trabalho analisa as opções de geração térmica no Brasil. Conclui pela necessidade do Brasil priorizar o uso dos recursos disponíveis dentro de suas fronteiras como o carvão mineral para garantir a geração térmica elétrica auto-suficiente. O trabalho demonstra as vantagens sociais e de desenvolvimento de uma indústria do carvão para as regiões produtoras. Aponta também a necessidade de implementação de tecnologias modernas a fim de atender à legislação ambiental, que gradativamente deve aumentar as restrições das emissões poluentes, na medida em que as tecnologias forem desenvolvidas. / The population and economy growth in Brazil generate the necessity of an expansion higher than four thousand Megawatts of new electric energy per year. The Brazilian Electrical System is peculiar because of its continental extension and also its strong dependence in renewable energy (hydro). Another reason for its peculiarity is the potential of inserting other forms of renewable and “green” energy in the system. Although the environmental advantages of the “renewable”, these kinds of energies are variable and dependant of the weather conditions. In order to the electrical system be more reliable, its operation must be combined with a larger addition of thermal energy. Thus this report analyses thermal generation option in Brazil. Looking at the developed countries trends in diversify power generation, the article indicates the advantages and the priority of using, in Brazil, internal resources like coal to guarantee the self-sufficient thermal generation electrical capacity. The dissertation demonstrates the social advantages to develop the coal industry for the producers region, witch are poor areas in Brazil. The proposition points the need of implement modern technologies in order to attend the environmental legislation, which must increase the emissions restrictions as these technologies are developed.

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