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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.
51

Conversão de compostos nitrogenados em reatores biológicos: operação, caracterização microbiológica e filogenética / Nitrogen compounds conversion in biological reactors: operation, microbiological and phylogenetic characterization

Tiago Henrique Martins 27 August 2010 (has links)
Esta pesquisa objetivou enriquecer biomassa capaz de realizar a oxidação anaeróbia do amônio (anammox) utilizando inóculo proveniente de reator nitrificante-desnitrificante, com a finalidade de estabelecer biofilme nitrificante-anammox em reator de leito fixo. O enriquecimento foi realizado em reator operado em bateladas sequenciais (RBS), com volume útil de 5 L e tempo de ciclo, inicialmente, de 56 h, e depois, sem tempo predeterminado (estratégias I e II). Após 89 dias de operação, 27,2 mg de \'N\'-\'N0 IND.2\'POT.-\'/L e 32,1 mg de \'N\'-\'NH IND.4\'POT.+\'/L foram consumidos concomitantemente. A estratégia III consistiu de batelada alimentada com ciclos de sete dias com afluente contendo 210 mg de cada composto nitrogenado. Na última estratégia (IV) a operação foi com ciclos de 24 h. Nessa etapa, a carga nitrogenada aplicada (CNA) foi aumentada de 155 g de \'N\' (\'N\'-\'N0 IND.2\'POT.-\' \'N\'-\'NH IND.4\'POT.+\')/\'M POT.3\' dia para 1.405,7 g de \'N\'/\'M POT.3\' dia com eficiências de conversão de nitrogênio de 91,7% e 98,0%, respectivamente. Essa biomassa foi inoculada em reator de leito fixo ascendente (RLF) visando estabelecimento da biomassa anammox em meio suporte (PEBD). Sob tais condições foi obtido eficiência de conversão de nitrogênio de 97,6% e carga nitrogenada removida média de 598,5 \'+ OU -\' 22,5 g \'N\'/\'M POT.3\' dia. Após estabelecimento de biomassa anammox, foi adicionado lodo ativado da indústria Volkswagen (São Carlos-SP) para formação de biofilme nitrificante-anammox. Nessa fase, a remoção de nitrogênio foi de 19,2% para CNA de 112,2 g \'N\'/\'M POT.3\' dia. A atividade anammox específica máxima foi 33,5 mg \'N\'-\'NH IND.4\'POT.+\'/g SSV h com a biomassa submetida à 50 rpm. Paralelamente ao processo de enriquecimento, foi verificada a influência de micronutrientes em condições nitrificantes em três quimiostatos, nas seguintes condições: Q1 alimentado com meio contendo solução de micronutrientes completa, Q2 alimentado sem solução de micronutrientes e Q3 alimentado com solução de micronutrientes sem o elemento Boro (quimiostato experimental). Nas três condições a estabilidade foi atingida com 11 dias de operação com conversão média de nitrogênio amoniacal de 99 \'+ OU -\' 1,5%, 94,6\'+ OU -\' 6,3% e 93,3\'+ OU -\' 7,3%, para Q1, Q2 e Q3, respectivamente, para 79 mg \'N\'-\'NH IND.4\'POT.+\'/L afluente. Após 450 dias de operação do RBS foi constatado semelhança do clones com Brocadia anammoxidans, Planctomycetes, Proteobacteria, Chlorobi, Nitrospira, filo Chloroflexi e ao filo candidato OP 11. A composição microbiana encontrada no RLF com 139 dias de operação (final da fase anammox) foi de 48% dos clones relacionados à B. anammoxidans, 4% relacionados à Planctomycetes não cultivados, 12% relacionados à Proteobacteria, 8% relacionados à Chlorobi, 24% relacionados à Nitrospira, 4% relacionados ao filo Chloroflexi. Pode-se concluir que a biomassa aderida em PEBD selecionou positivamente microrganismos anammox e Nitrospira e negativamente aos filamentos relacionados ao filo Chloroflexi. / This research aimed to enhance biomass capable of performing anaerobic ammonia oxidation (anammox) using inoculum from nitrifying-denitrifying reactor, with the goal of establishing nitrifying-anammox biofilm in fixed bed reactor. The enrichment was performed in sequencing batch reactor (SBR), with a volume of 5 L and cycle time, initially, 56 h, and then, without pre-set time (strategies I and II). After 89 operation days, 27.2 mg \'N\'-\'N0 IND.2\'POT.-\'/L and 32.1 mg \'N\'-\'NH IND.4\'POT.+\'/L were consumed concomitantly. The strategy consisted of fed batch III with seven days cycles with influent containing 210 mg of each nitrogen compound. The last strategy (IV) was with 24 h/cycle. At this strategy, the nitrogen applied load (NAL) was increased from 155 \'N\' (\'N\'-\'N0 IND.2\'POT.-\' + \'N\'-\'NH IND.4\'POT.+\')/\'M POT.3\' to 1405.7 g \'N\'/\'M POT.3\' day with conversion efficiencies of 91.7% nitrogen and 98.0%, respectively. This biomass was inoculated into fixed bed reactor up (FBR) in order to establish the anammox biomass in support medium (LDPE). Under such conditions was obtained nitrogen conversion efficiency of 97.6% and nitrogen load removed an average of 598.5 \'+ OU -\' 22.5 g \'N\'/\'M POT.3\' day. After establishment of anammox biomass it was added activated sludge - Volkswagen industry (São Carlos-SP) - for nitrifying-anammox biofilm. At that stage the removaI of nitrogen was 19.2% to 112.2 g CNA \'N\'/\'M POT.3\' day. Simultaneously to enrichment process, was verified the influence of micronutrients in nitrifying conditions in three chemostats, as follows: Q1 fed with medium containing micronutrients solution complete feeds without Q2 and Q3 micronutrients solution fed micronutrients solution without the element Boron (chemostat experiment). In the three conditions stability was achieved with 11 days of operation with average conversion of ammonia nitrogen of 99 \'+ OU -\' 1.5%, 94.6 \'+ OU -\' 6.3% and 93.3 \'+ OU -\' 7.3% for Q1, Q2 and Q3 respectively for 79 mg \'N\'-\'NH IND.4\'POT.+\'/L. After 450 days of operation of the RBS was found similarity of clones with Brocadia anammoxidans, Planctomycetes, Proteobacteria, Chlorobi, Nitrospira, Chloroflexi phyla and candidate phylum OP 11. The microbial composition found in the FBR with 139 days of operation (end of anammox phase) was 48% of clones related to B. anammoxidans, 4% related to uncultured Planctomycetes, Proteobacteria related to 12%, 8% related to Chlorobi, 24% related to Nitrospira, 4% related to the phylum Chloroflexi. It can be concluded that biomass adhered to LDPE selected anammox microorganisms and Nitrospira positively, and negatively to the filaments related to the Chloroflexi phylum.
52

Synthèse de nano-catalyseurs hybrides à base de cobalt pour la catalyse Fischer-Tropsch / Synthesis of hybrid cobalt-based nano-catalysts for Fischer-Tropsch synthesis

Harmel, Justine 27 October 2016 (has links)
En raison de la raréfaction des ressources de pétrole et des variations des prix avec le contexte géopolitique, la réaction de catalyse de Fischer-Tropsch qui permet la production d’hydrocarbures à partir du mélange syngas des gaz CO et H2 en présence d’un catalyseur à base de fer ou de cobalt, présente aujourd’hui un regain d’intérêt tant de la part des industriels que des académiques. Bien que découverte en 1923 par les allemands Franz Fischer et Hans Tropsch, les mécanismes qui entrent en jeu lors de cette réaction et les paramètres importants des propriétés des catalyseurs demeurent encore incertains. Dans ce contexte, les travaux présentés dans cette thèse visent à étudier l’impact de paramètres tels que la structure cristallographique et la forme de nano-objets de cobalt, phase active du catalyseur pour cette réaction. Ceci passe par la synthèse de catalyseurs modèles à base de nano-objets de cobalt et l’étude de leurs propriétés catalytiques. Dans un premier temps, la préparation d’un catalyseur à base de cobalt présentant une structure cristallographique hcp et une morphologie anisotrope a été réalisée, via une voie de synthèse par décomposition d’un précurseur organométallique de cobalt, conduisant à la formation de nano-objets de cobalt anisotropes. Puis, des tests catalytiques ont été réalisés en réacteur slurry, en collaboration avec un partenaire industriel, l’IFP-EN. Cela a permis la réalisation de tests Fischer-Tropsch en conditions proches des conditions industrielles réelles. Ces études ont permis de mettre en évidence la très grande stabilité de ces catalyseurs en comparaison à des catalyseurs de référence.Enfin, différents catalyseurs à base de cobalt, supportés sur des supports originaux de type macrostructurés permettant une meilleure gestion des échanges thermiques de la réaction, ont été préparés et leurs propriétés catalytiques étudiées sur un réacteur de type lit-fixe, mis en œuvre durant cette thèse. / Due to the decreasing the oil resources, and because of the the fluctuations of the price as a result of the geopolitical context, the Fischer-Tropsch synthesis, that enables the production of hydrocarbons form the syngas mixture (CO and H2) in the presence of a catalyst based on cobalt or iron, has recently gained a renewed interest from industrial as well as form the academic communities. Although this reaction was discovered in 1923 by the Germans Franz Fischer and Hans Tropsch, the mechanisms that come into play during this reaction and the crucial properties of the catalyst properties remain uncertain. In this context, the work presented in this thesis, aims to investigate the impact of parameters such as the crystallographic structure and the shape of the cobalt nano-objects, which is the active phase of the catalyst for this reaction. For this purpose, model cobalt nano-objects were synthetized and their catalytic properties were studied. As a first step, a cobalt based catalyst exhibiting an hcp crystallographic structure and an anisotropic shape was prepared via a synthetic route involving the decomposition of an organometallic precursor of cobalt and leading to the formation of anisotropic cobalt nano-objects. Catalytic tests were then conducted in a slurry reactor, in collaboration with an industrial partner, IFP-EN. This collaboration allowed performing catalytic studies under conditions that are very close to the actual industrial conditions. These studies revealed an increased stability of these catalysts compared to reference catalysts that deactivate with time. Finally, several cobalt-based catalysts, supported on innovative supports, such as macrostuctured supports, allowing a better control of the exothermicity, were prepared and their catalytic properties studied on a fixed-bed reactor that was set up during the course of this thesis work.
53

Modelling and Evaluation of Fixed-Bed Photocatalytic Membrane Reactors

Phan, Duy Dũng 20 December 2019 (has links)
This work aims at modelling and evaluating a new type of photocatalytic reactors, named fixed-bed photocatalytic membrane reactor (FPMR). Such reactors are based on the deposition of a thin layer of photocatalysts on a permeable substrate by filtration. This layer serves as a photocatalytic membrane, named fixed-bed photocatalytic mem-brane (FPM), which is perpendicularly passed by the reactant solution and illuminated by a suitable light source. One advantage of FPMs is their renewability. The model, which was developed for this reactor, relates the overall reaction rate in the FPM with the intrinsic reaction kinetic at the catalyst surface and accounts for light intensity, structural and optical layer properties as well as the mass transfer in the pores. The concept of FPMR was realised by using a flat sheet membrane cell. It facilitated principal investigations into the reactor performance and the validity of the model. For this purpose, the photocatalytic degradation of organic compounds, such as meth-ylene blue and diclofenac sodium, was conducted at varying conditions. Pyrogenic ti-tania was used as a photocatalyst. The experimental data support the developed mod-el. They also indicate a significant impact of the flow conditions on the overall photo-catalytic activity, even though the Reynolds number in the FPM was very small; the to-tal mass transfer rate in the FPM amounted to more than 1.0 s−1. The experiments also showed a sufficient structural strength of the FPM and photocatalytic stability. In addi-tion, the renewal and regeneration of FPMs was successfully demonstrated. Furthermore, another FPMR was designed by means of submerged ceramic mem-branes. This reactor was mainly used to assess the effectiveness and efficiency of FPMRs at the example of the photocatalytic degradation of oxalic acid. The correspond-ing reactor was run closed loop and in continuous mode. The effectiveness of the reac-tor was evaluated based on common descriptors, such as apparent quantum yield, photocatalytic space-time yield and light energy consumption. The results showed that the FPMR based on submerged ceramic membrane had a higher efficiency than other reported photocatalytic reactors. The comparison of the different modes of operation revealed that the closed loop FPMR is most efficient with regard to light energy con-sumption. Finally, this work discusses the up-scaling of FPMRs for industrial applications and proposes a solution, which can e.g. be employed for wastewater treatment or CO2 conversion.:Abstract iii Kurzfassung v Acknowledgment vii Contents ix Nomenclature xiii 1 Introduction 1 1.1 Motivation 1 1.2 Aim and objectives of the work 3 1.3 Thesis outline 3 2 Heterogeneous photocatalytic reactors 5 2.1 Introduction to photocatalysis 5 2.2 Processes in heterogeneous photocatalysis 6 2.2.1 Optical phenomena 7 2.2.2 Mass transfer 8 2.2.3 Adsorption and desorption 9 2.2.4 Photocatalytic reactions 10 2.2.5 Factors affecting heterogeneous photocatalysis 12 2.3 Photocatalytic reactor systems towards water treatment 16 2.3.1 Introduction to photocatalytic reactors 16 2.3.2 Development of photocatalytic reactor designs 17 2.3.3 Quantitative criteria for evaluating photocatalytic reactor designs 21 2.4 Cake layer formation in membrane microfiltration 22 2.4.1 Suspension preparation 22 2.4.2 Cake layer formation 23 2.5 Fluid flow through a fixed bed of particles 25 2.5.1 Pressure drop through a fixed-bed 25 2.5.2 Liquid-solid mass transfer correlation in fixed-bed 25 3 Concept and mathematical modelling of FPMRs 29 3.1 Concept of fixed-bed photocatalytic membrane reactors 29 3.2 Modelling of fixed-bed photocatalytic membrane reactors 31 3.3 Model sensitivity analysis 37 3.4 Chapter summary 39 4 FPMR realised with flat sheet polymeric membrane 41 4.1 Introduction 41 4.2 Materials and set-up 41 4.2.1 Materials 41 4.2.2 Experimental set-up 43 4.3 Experiments and methods 48 4.3.1 Formation of fixed-bed photocatalytic membrane 48 4.3.2 Reactor performance 50 4.3.3 Parameters study and model verification 53 4.3.4 Catalyst layer characterisation 56 4.3.5 Measurement and evaluation of photocatalytic activity of FPM 59 4.4 Results and model verification 60 4.4.1 Reactor performance 60 4.4.2 Influence parameters 71 4.4.3 Model verification 79 5 FPMR realised with submerged ceramic membrane 92 5.1 Introduction 92 5.2 Materials and reactor set-up 93 5.2.1 Reactor set-up 93 5.2.2 Chemicals 97 5.3 Experiments and methods 97 5.3.1 Formation of fixed-bed photocatalytic membranes 97 5.3.2 Photocatalytic performance 97 5.3.3 Parameter study 98 5.3.4 Reactor model for calculating reaction rate constant of FPM 99 5.3.5 Comparison of different reactor schemes 102 5.4 Results and discussions 105 5.4.1 Reactor performance 105 5.4.2 Consistency of CPMR and LPMR data 107 5.4.3 Influence of catalyst loading 108 5.4.4 Influence of permeate flux and light intensity 109 5.4.5 Reactor efficiency 111 5.4.6 Comparison of different reactor schemes 113 5.5 Proposed up-scaled FPMR systems 113 5.6 Concluding remarks 116 6 Conclusion and outlook 118 6.1 Summary of thesis contributions 118 6.2 Discussion and outlook 120 References 122 List of Figures 134 List of Tables 138 Appendix A Calibration 139 A.1 Distribution of light intensity on the surface of catalyst layer 139 A.2 Concentration and absorbance of diclofenac 141 A.3 TOC concentration and electrical conductivity of oxalic acid 141 A.4 Concentration and absorbance of methylene blue 142 Appendix B Mathematical modelling 143 B.1 Influence of axial dispersion on the reaction rate 143 B.2 Special case 146 Appendix C Comparison the photocatalytic activity of TiO2 and ZnO 147 Appendix D Mathematical validation of model for LPMR and CPMR 148 D.1 Model for LPMR (cf. Eq. (5 12)):148 D.2 Model for CPMR (cf. Eq. (5 17)) 149 Appendix E Particle size distribution 151
54

Grundlagenuntersuchungen zur elektrochemischen Remediation von schwermetallkontaminierten Boden- /Sediment- Wassersystemen am Beispiel von Uran, Chrom, Arsen und Chlorbenzen

Römer, Dirk 02 February 2005 (has links) (PDF)
In den 80-iger Jahren war die DDR hinter den USA und Kanada der drittgrößte Uranproduzent mit einer Jahresproduktion von ca. 200.000 Tonnen. Die Gewinnung erfolgte durch konventio­nellen Bergbau, durch in- situ- oder offene Haufenlagerung. Die Urangewinnung auf dem Ter­ritorium der ehemaligen DDR wurde nach der Wiedervereinigung eingestellt und mit der Sa­nierung der Altstandorte begonnen. Nach Einstellung des Uranabbaus muss die Wasserhaltung solange betrieben werden, bis eine kontrollierte Flutung der Bergbauschächte erfolgen kann. Die dabei anfallen­den Grubenwässer werden je nach Schadstoffkonzentration direkt in den Vorfluter abgeleitet oder in geeigneten Aufbereitungsanlagen meist durch Flockung und Adsorption behandelt. Dieses praktisch oft angewandte Grubenwasserreinigungsverfahren bezüglich Uran und den auftretenden Begleitelementen Chrom und Arsen hat den entscheidenden Nachteil, dass die anfallenden schwermetallhaltigen Fällschlämme auf Deponien verbracht werden müssen. Durch Niederschlags­ereignisse oder ansteigendes Grundwasser besteht die Gefahr, dass die Deponien wieder ausgelaugt werden und somit eine erneute Mobilisierung von Schwermetallen in die Umwelt erfolgt. Die Sanierung kontaminierter Gebiete, insbesondere Sedimente, Sondermüll-deponien, Standorte ehemaliger Galvanikbetriebe, Betriebsflächen chemischer Industriestandorte, Rieselfelder oder Orte der Klärschlammaufbereitung erfordern neue Herangehensweisen an das gegenwärtig hochaktuelle Problem der Rehabilitation. Es wurde deshalb u.a. im Rahmen dieser Arbeit ein Konzept auf Grundlage der elektrochemischen Umset­zung im "verdünnten" elektrochemischen Festbettreaktor entwickelt, das es gestattet, die mo­bilen Schwermetallspezies im Boden bzw. Deponiekörper in immobile Schwermetallverbindungen um­zuwandeln. Damit kann die Nachsorge und Sicherung solcher Deponiekörper bezüglich einer Remobilisierung wesentlich kostengünstiger gestaltet werden. Ausgehend von diesem Konzept sollen Möglichkeiten, Einsatzbedingungen und -grenzen der Immobilisierung von Schwermetallen am Beispiel von Uran(VI), Chrom(VI), Arsen(III) und chlorierten Kohlenwasserstoffe aufgezeigt werden. Elektrochemische Verfahren zur Sanierung kontaminierter Böden, Schlämme und Sedimente befinden sich international in einer dynamischen Forschungs- und Entwicklungsphase. Sie sind einzeln und in Verfahrenskombinationen einsetzbar und werden, bei verantwortungsvoller Handhabung, in absehbarer Zeit auch als zertifizierte Verfahren in Deutschland in bestimmten Sanierungsvorhaben ihre Leistungsfähigkeit beweisen. Gegenwärtig befinden sie sich in Deutschland noch im Stadium der Forschung und Entwicklung, während international (z.B. USA, Niederlande) schon kommerzielle Anwendungen angeboten werden. Zur objektiven Beurteilung ihrer Leistungsfähigkeit und Einsatzgrenzen bedarf es spezieller Grundkenntnisse. Elektrochemische Remediationsverfahren können als ergänzende, in Einzelfällen auch als alternative Verfahren zur Sediment- und Bodensanierung angesehen werden. Sie haben dann eine Chance auf Einsatz, wenn vor Ort (in- situ) saniert werden soll. Von ihrem Prinzip her, sind sie preiswerter als Bodenaushub und Verbrennung. Das Sanierungsziel besteht in einer möglichst vollständigen Konzentrierung oder Umsetzung der Wasserschadstoffe an der Feststoffmatrix.
55

Grundlagenuntersuchungen zur elektrochemischen Remediation von schwermetallkontaminierten Boden- /Sediment- Wassersystemen am Beispiel von Uran, Chrom, Arsen und Chlorbenzen

Römer, Dirk 10 August 2004 (has links)
In den 80-iger Jahren war die DDR hinter den USA und Kanada der drittgrößte Uranproduzent mit einer Jahresproduktion von ca. 200.000 Tonnen. Die Gewinnung erfolgte durch konventio­nellen Bergbau, durch in- situ- oder offene Haufenlagerung. Die Urangewinnung auf dem Ter­ritorium der ehemaligen DDR wurde nach der Wiedervereinigung eingestellt und mit der Sa­nierung der Altstandorte begonnen. Nach Einstellung des Uranabbaus muss die Wasserhaltung solange betrieben werden, bis eine kontrollierte Flutung der Bergbauschächte erfolgen kann. Die dabei anfallen­den Grubenwässer werden je nach Schadstoffkonzentration direkt in den Vorfluter abgeleitet oder in geeigneten Aufbereitungsanlagen meist durch Flockung und Adsorption behandelt. Dieses praktisch oft angewandte Grubenwasserreinigungsverfahren bezüglich Uran und den auftretenden Begleitelementen Chrom und Arsen hat den entscheidenden Nachteil, dass die anfallenden schwermetallhaltigen Fällschlämme auf Deponien verbracht werden müssen. Durch Niederschlags­ereignisse oder ansteigendes Grundwasser besteht die Gefahr, dass die Deponien wieder ausgelaugt werden und somit eine erneute Mobilisierung von Schwermetallen in die Umwelt erfolgt. Die Sanierung kontaminierter Gebiete, insbesondere Sedimente, Sondermüll-deponien, Standorte ehemaliger Galvanikbetriebe, Betriebsflächen chemischer Industriestandorte, Rieselfelder oder Orte der Klärschlammaufbereitung erfordern neue Herangehensweisen an das gegenwärtig hochaktuelle Problem der Rehabilitation. Es wurde deshalb u.a. im Rahmen dieser Arbeit ein Konzept auf Grundlage der elektrochemischen Umset­zung im "verdünnten" elektrochemischen Festbettreaktor entwickelt, das es gestattet, die mo­bilen Schwermetallspezies im Boden bzw. Deponiekörper in immobile Schwermetallverbindungen um­zuwandeln. Damit kann die Nachsorge und Sicherung solcher Deponiekörper bezüglich einer Remobilisierung wesentlich kostengünstiger gestaltet werden. Ausgehend von diesem Konzept sollen Möglichkeiten, Einsatzbedingungen und -grenzen der Immobilisierung von Schwermetallen am Beispiel von Uran(VI), Chrom(VI), Arsen(III) und chlorierten Kohlenwasserstoffe aufgezeigt werden. Elektrochemische Verfahren zur Sanierung kontaminierter Böden, Schlämme und Sedimente befinden sich international in einer dynamischen Forschungs- und Entwicklungsphase. Sie sind einzeln und in Verfahrenskombinationen einsetzbar und werden, bei verantwortungsvoller Handhabung, in absehbarer Zeit auch als zertifizierte Verfahren in Deutschland in bestimmten Sanierungsvorhaben ihre Leistungsfähigkeit beweisen. Gegenwärtig befinden sie sich in Deutschland noch im Stadium der Forschung und Entwicklung, während international (z.B. USA, Niederlande) schon kommerzielle Anwendungen angeboten werden. Zur objektiven Beurteilung ihrer Leistungsfähigkeit und Einsatzgrenzen bedarf es spezieller Grundkenntnisse. Elektrochemische Remediationsverfahren können als ergänzende, in Einzelfällen auch als alternative Verfahren zur Sediment- und Bodensanierung angesehen werden. Sie haben dann eine Chance auf Einsatz, wenn vor Ort (in- situ) saniert werden soll. Von ihrem Prinzip her, sind sie preiswerter als Bodenaushub und Verbrennung. Das Sanierungsziel besteht in einer möglichst vollständigen Konzentrierung oder Umsetzung der Wasserschadstoffe an der Feststoffmatrix.
56

Innovative Design of Heterogeneous Catalysts with Improved CO2 Hydrogenation Performance

Cored Bandrés, Jorge 30 March 2023 (has links)
Tesis por compendio / [ES] El cambio climático es una de las amenazas de nuestro tiempo. Los gases de efecto invernadero, como el CO2, son los principales causantes de este fenómeno, siendo necesario disminuir urgentemente sus emisiones. En 2019, la Comisión Europa presentó el "Pacto Verde Europeo", que será clave para alcanzar un objetivo tremendamente ambicioso para nuestra región: la neutralidad climática de aquí a 2050. Las estrategias de descarbonización incluidas en su hoja de ruta van a implicar necesariamente la transición energética de los combustibles fósiles a las energías renovables, reduciendo de forma masiva la liberación de CO2. En este sentido, el desarrollo de tecnologías efectivas de Captura, Almacenamiento y Uso del Carbono (CAUC) permitirá la valorización del CO2, evolucionando hacia una economía de carbono circular. La presente Tesis Doctoral se enmarca en el diseño, síntesis y caracterización de sistemas catalíticos heterogéneos innovadores basados en metales capaces de transformar el CO2 en otros productos de valor añadido. Entre un amplio catálogo de reacciones que "conectan" el CO2 con diversos compuestos basados en carbono, esta Tesis se centrará principalmente en la síntesis de dos moléculas C1 plataforma de interés industrial: el metanol y el metano. Los Capítulos 3 y 4 están dedicados a la síntesis de metanol, un proceso exotérmico limitado termodinámicamente debido a la estabilidad inherente de la molécula de CO2, así como a la presencia de la reacción competitiva RWGS. Por un lado, el Capítulo 3 se centra en el efecto promotor del galio sobre las propiedades estructurales, electrónicas y catalíticas de materiales basados en Cu/ZnO (sistemas CZG). Mediante un enfoque espectroscópico-catalítico multidisciplinar se ha comparado el efecto promotor del Ga3+ dopado en la red de un ZnO tipo wurtzita presente en un catalizador Cu/ZnO/Ga2O3 con el de una fase de galato de zinc (ZnGa2O4). Por otro lado, en el Capítulo 4 se muestra un catalizador bifuncional que contiene nanopartículas de Cu de 2 nm y especies Cu+, con el objetivo de enfrentarse a la inherente baja actividad de estas pequeñas partículas, hecho que impide mejorar la eficiencia atómica de los catalizadores, dificultando así la obtención de resultados catalíticos competitivos en la hidrogenación de CO2. La realización de un estudio espectroscópico detallado (combinado con cálculo teórico y ensayos catalíticos) sobre un catalizador óxido mixto de Cu-Mg-Al derivado de un precursor de hidrotalcita tras calcinación y posterior reducción (CuHT-230) pone de manifiesto el papel clave de los iones Cu+ dopados en estructura en la producción de metanol. El éxito de las tecnologías CAUC a medio-largo plazo dependerá no solo del desarrollo de catalizadores competitivos, sino también de su capacidad para operar en condiciones de reacción más suaves, permitiendo que estos procesos sean viables económicamente. Por ello, el concepto de eficiencia energética se abordará en el Capítulo 5, a través de un innovador diseño de catalizador tipo "shell/core" formado por un núcleo de rutenio metálico y una envoltura de carburo de rutenio, sintetizado via hidrotermal. Este sistema (Ru@EDTA-20) exhibe una actividad excepcionalmente alta para la hidrogenación de CO2 a metano a bajas temperaturas (160-200 °C) con una selectividad a CH4 del 100%, superando a catalizadores de bibliografía que normalmente operan a mayores temperaturas (400-500 °C). Por último, en el Capítulo 6 se estudia un catalizador modelo compuesto por un alumino-silicato bidimensional sintetizado sobre una superficie de Ru(0001), investigación realizada durante mi estancia internacional en el Laboratorio Nacional de Brookhaven (Nueva York, EE.UU.). La combinación de estos materiales en el mismo composite permite la creación de un nanoespacio confinado que puede emplearse como nanorreactor. En este proyecto, se seleccionó la reacción de formación de agua como modelo, que se exploró a nivel fundamental en el sincrotrón NSLS-II. / [CA] El canvi climàtic és una de les amenaces del nostre temps. Els gasos d'efecte d'hivernacle, com el diòxid de carboni, són els principals causants d'aquest fenomen, sent necessari reduir urgentment les seues emissions. En 2019, la Comissió Europea va presentar el "Pacte Verd Europeu", que serà clau per a aconseguir un objectiu tremendament ambiciós per a la nostra regió: la neutralitat climàtica d'ací a 2050. Les estratègies de descarbonització incloses en el seu full de ruta implicaran necessàriament la transició energètica dels combustibles fòssils a les energies renovables, reduint de manera massiva l'alliberament de CO2. En aquest sentit, el desenvolupament de tecnologies efectives de Captura, Emmagatzematge i Ús del Carboni (CEUC) permetrà la valorització del CO2, evolucionant cap a una economia de carboni circular. La present Tesi Doctoral s'emmarca en el disseny, síntesi i caracterització de sistemes catalítics heterogenis innovadors basats en metalls capaços de transformar el CO2 en altres productes de valor afegit. Entre un ampli catàleg de reaccions que "connecten" el CO2 amb diversos compostos basats en carboni, aquesta Tesi se centrarà principalment en la síntesi de dues molècules C1 plataforma d'interés industrial: el metanol i el metà. Els Capítols 3 i 4 estan dedicats a la síntesi de metanol, un procés exotèrmic limitat degut tant a l'estabilitat inherent de la molècula de CO2 com a la presència de la reacció competitiva RWGS. D'una banda, el Capítol 3 se centra en l'efecte promotor del gal·li sobre les propietats estructurals, electròniques i catalítiques de materials basats en Cu/ZnO (sistemes CZG). Mitjançant un enfocament espectroscòpic-catalític multidisciplinari s'ha comparat l'efecte promotor del Ga3+ dopat en la xarxa d'un ZnO (wurtzita) present en un catalitzador Cu/ZnO/Ga2O3 amb el d'una fase de ZnGa2O4. D'altra banda, en el Capítol 4 es mostra un catalitzador bifuncional que conté nanopartícules de Cu de 2 nm i espècies Cu+, amb l'objectiu d'enfrontar-se a la inherent baixa activitat d'aquestes petites partícules, fet que impedeix millorar l'eficiència atòmica dels catalitzadors, dificultant així l'obtenció de resultats catalítics competitius en la hidrogenació de CO2. La realització d'un estudi espectroscòpic detallat (combinat amb càlcul teòric i assajos catalítics) sobre un catalitzador òxid mixt de Cu-Mg-Al derivat d'un precursor de hidrotalcita després de calcinació i posterior reducció (CuHT-230) posa de manifest el paper clau dels ions Cu+ dopats en estructura en la producció de metanol. L'èxit de les tecnologies CEUC a mig-llarg termini dependrà no solament del desenvolupament de catalitzadors competitius, sinó també de la seua capacitat per a operar en condicions de reacció més suaus, permetent que aquests processos siguen viables econòmicament. Per això, el concepte d'eficiència energètica s'abordarà en el Capítol 5, a través un innovador disseny de catalitzador tipus "shell/core" format per un nucli de ruteni metàl·lic i un embolcall de carbur de ruteni, sintetitzat mitjançant tractament hidrotermal. Aquest sistema (Ru@EDTA-20) exhibeix una activitat excepcionalment alta per a la hidrogenació de CO2 a metà a baixes temperatures (160-200 °C) amb una selectivitat a CH4 del 100%, superant a catalitzadors de bibliografia que normalment operen a majors temperatures (400-500 °C). Finalment, en el Capítol 6 s'estudia un catalitzador model compost per un alumino-silicat bidimensional sintetitzat sobre una superfície de Ru(0001), investigació realitzada durant la meua estada internacional en el Laboratori Nacional de Brookhaven (Nova York, els Estats Units). La combinació d'aquests dos materials en el mateix "composite" permet la creació d'un nano-espai confinat que pot emprar-se com nano-reactor. En aquest projecte, es va seleccionar la reacció de formació d'aigua com a model, que es va explorar a nivell fonamental en el sincrotró NSLS-II. / [EN] Climate change is one of the existential threats of our times. Greenhouse gases (GHG), such as carbon dioxide, are primary drivers of this phenomenon, and their emissions need to be urgently reduced. In 2019, the European Commission presented the European Green Deal, which will help the EU to attain an ambitious goal for our region: to become carbon-neutral by 2050. The decarbonization strategies included in the roadmap towards net-zero emissions will imply the energy transition from fossil fuels to renewable energies, with a massive reduction of CO2 deliverance. In this sense, the development of effective Carbon Capture and Storage (CCS) and Carbon Capture and Utilization (CCU) technologies will allow the valorization of CO2, evolving into a circular carbon economy. The present Doctoral Thesis focuses on the design, synthesis and characterization of innovative heterogeneous metal-based systems, which are able to transform CO2 into value-added products. Among a wide catalogue of reactions that "connects" CO2 with various carbon-based compounds, this thesis will be devoted to the synthesis of two C1 platform chemicals of industrial interest: methanol and methane. Chapters 3 and 4 are dedicated to methanol synthesis, a highly hampered exothermic process due to the inherent stability of the CO2 molecule and the presence of the competitive reverse water-gas shift reaction (RWSG). On the one hand, Chapter 3 is focused on the promoting effect of gallium on the structural, electronic, and catalytic properties of Cu/ZnO based materials (CZG systems). In particular, the promoting effect of Ga3+-doped in the wurtzite ZnO lattice of a Cu/ZnO/Ga2O3 catalyst is compared to that of a zinc gallate (ZnGa2O4) phase following a multimodal spectroscopic-catalytic approach. In Chapter 4, a bifunctional catalyst containing 2 nm Cu nanoparticles and Cu+ species is presented, to overcome the "assumed" low activity of small copper particles that prevents obtaining high atom efficiency and competitive catalytic results in the CO2 hydrogenation to methanol. A detailed spectroscopic study (combined with theoretical calculations and catalytic tests) performed on a Cu-Mg-Al mixed oxide catalyst derived from a hydrotalcite precursor by calcination and further reduction (CuHT-230) highlights the key role of doped Cu+ ions in methanol production. The success of CCU technologies in the medium-long term will depend not only on the development of competitive catalysts but also on their ability to operate under milder reaction conditions, which will make these processes economically viable. Consequently, the energy efficiency issue will be addressed in Chapter 5 with the innovative design of a core-shell structure formed by a core of metallic ruthenium and a shell of ruthenium carbide, synthesized via hydrothermal treatment. This catalyst (Ru@EDTA-20) exhibits exceptional high activity for CO2 hydrogenation to methane (Sabatier reaction) at low temperatures (160-200 °C) with 100% selectivity to CH4, outperforming the state of the art catalysts operating at 400-500 °C. Finally, Chapter 6 covers the investigation carried out on a model ruthenium-based catalyst composed of a 2D-bilayered aluminosilicate grown over a Ru(0001) surface during my international short-term stay at Brookhaven National Laboratory (New York, USA). The combination of these materials in a composite allows the creation of a confined nano-space that can be exploited as a nano-reactor. In this project, water formation reaction (WFR) was selected as model reaction, which was fundamentally explored at NSLS-II synchrotron. / Cored Bandrés, J. (2022). Innovative Design of Heterogeneous Catalysts with Improved CO2 Hydrogenation Performance [Tesis doctoral]. Universitat Politècnica de València. https://doi.org/10.4995/Thesis/10251/182403 / Compendio
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Analyse, conception et expérimentation de procédés de stockage thermique résidentiel de longue durée par réaction thermochimique à pression atmosphérique / Seasonal storage of solar energy by thermochemical reactions at atmospheric pressure for household applications

Marias, Foivos Epameinondas 29 January 2015 (has links)
Les travaux présentés dans ce manuscrit de doctorat s'inscrivent dans la thématique du stockage inter-saisonnier de l'énergie solaire thermique pour l'habitat et le tertiaire (eau chaude sanitaire et chauffage). Le stockage thermochimique en air humide est une des solutions les plus prometteuses, en particulier avec un réacteur à lit fixe. Le bromure de strontium et l'alun de potassium ont été sélectionnés comme réactifs pour leurs caractéristiques énergétiques lors de réactions d'hydratation et de déshydratation. L'étude est constituée d'avancées théoriques, de nombreuses expérimentations et d'un modèle numérique détaillé. Une étude thermodynamique a démontré l'existence d'une droite de charge qui relie les conditions d'entrée et de sortie de l'air humide au passage du réactif. Les équations régissant les réactions chimiques, les transferts massiques et thermiques et la conservation de la quantité de mouvement ont été établies et un modèle numérique monodimensionnel couplant ces phénomènes a été développé. Des essais sur différents échantillons des deux sels et pour divers conditions opératoires ont été effectués dans le but de comprendre les phénomènes physico-chimiques ainsi que pour valider l'étude théorique et le modèle numérique. / This PhD thesis focuses on seasonal solar thermal energy storage for household applications such as production of heat and domestic hot water. Thermochemical storage was chosen for that purpose. The specific solid/gas reactions with water vapor, also called hydration/dehydration reactions, were used with a multi-scale global approach. The level of the reactor was identified as the critical level of that multi-scale approach. As a consequence, the integrated fixed-bed reactor technology in a moist air open loop system was adopted. A theoretical, experimental and numerical methodology was used for the study where strontium bromide and potassium alum salts were chosen as reactive materials. The corresponding reactions are: + 5 (H2O) ↔ (with Δhr=67.4 kJ/molwater and Δsr=175 J/K.molwater) + 9 (H2O) ↔ < KAl(SO4)2.12H2O > (with Δhr=44.2 kJ/molwater and Δsr=109.8 J/K.molwater) The first salt exhibits very good thermochemical properties. On the other hand, the main advantages of potassium alum are its low cost and the fact that it presents no sanitary risk. More than 30 cycles with 3 different samples of potassium alum and more than 25 cycles with 4 samples of strontium bromide under various stationary and dynamic operating conditions were carried out in order to understand the phenomena. The main experimental results were the following ones: • A very good stability and reproducibility of physical and chemical phenomena was observed for both materials. • A thermal reaction front was also observed. • A thermal hysteresis for both salts was found. • Based on that last observation a theoretical equation named charge-discharge line was developed. Experimental results with both salts validate the charge-discharge line theory. • A correlation between reaction kinetics, temperature rise due to the reaction, power of the reaction and the operating conditions was observed. The criterion for that correlation is the affinity of the reaction. A proportional correlation between affinity and reaction kinetics, temperature rise and power of the reaction was observed. • Spontaneous hydration and over-hydration reactions do not produce any particular difficulties or problems. • Pressure drop through the reactor and evolution of salts volume were also measured. Experimental energy density was measured in the range of 350 kWh/m3 for strontium bromide and 240 kWh/m3 for the potassium alum. • In general, strontium bromide is a very good candidate material for seasonal storage, while potassium alum cannot provide satisfying temperature rise and power. The equations governing those phenomena were also established and used to develop a 1D numerical model with partial differential equations coupling chemical phenomena, mass and thermal transfer phenomena and momentum conservation. Verification, validation and confirmation of this model under a very large range of operating conditions were carried out based on the experimental results of strontium bromide. A total of 19 different test cases were studied in order to validate the numerical model. The effect of humidity, temperature, quantity of reactive material and air flow were studied both for stationary and dynamic conditions. The numerical model was able to provide very satisfying results.

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