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Cogeneration and distributed generation journal
Cogeneration and distributed generation journal
Pubbl/distr/stampa [Lilburn, Ga.], : [Fairmont Press], [2003]-
Disciplina 333.79
Soggetto topico Cogeneration of electric power and heat
Power resources
Soggetto genere / forma Periodicals.
Soggetto non controllato Electrical Engineering
ISSN 1545-7575
Formato Materiale a stampa
Livello bibliografico Periodico
Lingua di pubblicazione eng
Record Nr. UNISA-996198109303316
[Lilburn, Ga.], : [Fairmont Press], [2003]-
Materiale a stampa
Lo trovi qui: Univ. di Salerno
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The combined use of taxation and voluntary agreements for energy policy / Katrin Millock
The combined use of taxation and voluntary agreements for energy policy / Katrin Millock
Autore Millock, Katrin
Pubbl/distr/stampa Milano : Fondazione ENI Enrico Mattei, 2000
Descrizione fisica 21 p. ; 21 cm
Disciplina 333.79
Collana Note di lavoro della Fondazione ENI Enrico Mattei ; 109.2000
Soggetto topico Politica energetica - Accordi internazionali
Tasse
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Record Nr. UNISALENTO-991002038939707536
Millock, Katrin  
Milano : Fondazione ENI Enrico Mattei, 2000
Materiale a stampa
Lo trovi qui: Univ. del Salento
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Come si fa una comunità energetica : una storia vera di transizione alle energie rinnovabili : da Retenergie a Ènostra, per un'energia democratica, etica e condivisa / a cura di Marco Mariano
Come si fa una comunità energetica : una storia vera di transizione alle energie rinnovabili : da Retenergie a Ènostra, per un'energia democratica, etica e condivisa / a cura di Marco Mariano
Pubbl/distr/stampa Milano, : Altreconomia, 2020
Descrizione fisica 95 p. : ill. ; 20 cm
Disciplina 333.79
Soggetto non controllato Fonti rinnovabili di energia - Produzione [e] Consumo - Casi [:] Retenergie
Risparmio energetico - Cuneo (Provincia)
ISBN 978-88-6516-351-1
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione ita
Record Nr. UNINA-9910519296803321
Milano, : Altreconomia, 2020
Materiale a stampa
Lo trovi qui: Univ. Federico II
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Commodity Branding : A Qualitative Research Approach to Understanding Modern Energy Brands / / by Fridrik Larsen
Commodity Branding : A Qualitative Research Approach to Understanding Modern Energy Brands / / by Fridrik Larsen
Autore Larsen Fridrik
Edizione [1st ed. 2023.]
Pubbl/distr/stampa Cham : , : Springer Nature Switzerland : , : Imprint : Palgrave Macmillan, , 2023
Descrizione fisica 1 online resource (156 pages)
Disciplina 333.79
Soggetto topico Branding (Marketing)
Branding
ISBN 3-031-29966-3
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Nota di contenuto 1.Introduction -- 2.Literature review on energy branding and related fields. 3.Methodology: A qualitative approach -- 4.Findings: Understanding modern energy brands -- 5. Conclusion: Conceptual model of branding in the energy markets -- 6.References.
Record Nr. UNINA-9910734845203321
Larsen Fridrik  
Cham : , : Springer Nature Switzerland : , : Imprint : Palgrave Macmillan, , 2023
Materiale a stampa
Lo trovi qui: Univ. Federico II
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Complessità sviluppo : 2004 / ENEA, Ente per le nuove tecnologie, l'energia e l'ambiente
Complessità sviluppo : 2004 / ENEA, Ente per le nuove tecnologie, l'energia e l'ambiente
Autore ENEA <Ente per le nuove tecnologie, l'energia e l'ambiente>
Pubbl/distr/stampa Roma : ENEA, 2004
Descrizione fisica 181 p. ; 30 cm
Disciplina 333.79
Soggetto topico Energy policy - Italy
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione ita
Record Nr. UNISALENTO-991001388599707536
ENEA <Ente per le nuove tecnologie, l'energia e l'ambiente>  
Roma : ENEA, 2004
Materiale a stampa
Lo trovi qui: Univ. del Salento
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Compound energy systems [[electronic resource] ] : optimal operation methods / / Shin'ya Obara and Arif Hepbasli
Compound energy systems [[electronic resource] ] : optimal operation methods / / Shin'ya Obara and Arif Hepbasli
Autore Obara Shin'ya
Pubbl/distr/stampa Cambridge, : Royal Society of Chemistry, c2010
Descrizione fisica 1 online resource (283 p.)
Disciplina 333.79
Altri autori (Persone) HepbasliArif
Collana RSC energy series
Soggetto topico Distributed generation of electric power
Electric power production
Soggetto genere / forma Electronic books.
ISBN 1-84973-104-7
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Record Nr. UNINA-9910455896303321
Obara Shin'ya  
Cambridge, : Royal Society of Chemistry, c2010
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui
Compound energy systems [[electronic resource] ] : optimal operation methods / / Shin'ya Obara and Arif Hepbasli
Compound energy systems [[electronic resource] ] : optimal operation methods / / Shin'ya Obara and Arif Hepbasli
Autore Obara Shin'ya
Pubbl/distr/stampa Cambridge, : Royal Society of Chemistry, c2010
Descrizione fisica 1 online resource (283 p.)
Disciplina 333.79
Altri autori (Persone) HepbasliArif
Collana RSC energy series
Soggetto topico Distributed generation of electric power
Electric power production
ISBN 1-84973-104-7
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Record Nr. UNINA-9910780718303321
Obara Shin'ya  
Cambridge, : Royal Society of Chemistry, c2010
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui
Compound energy systems : optimal operation methods / / Shin'ya Obara and Arif Hepbasli
Compound energy systems : optimal operation methods / / Shin'ya Obara and Arif Hepbasli
Autore Obara Shin'ya
Edizione [1st ed.]
Pubbl/distr/stampa Cambridge, : Royal Society of Chemistry, c2010
Descrizione fisica 1 online resource (283 p.)
Disciplina 333.79
Altri autori (Persone) HepbasliArif
Collana ISSN
RSC energy series
Soggetto topico Distributed generation of electric power
Electric power production
ISBN 1-84973-104-7
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Nota di contenuto Compound Energy Systems -- Contents -- Chapter 1 Background -- 1.1 Distributed Energy System -- 1.2 Independent Microgrid -- 1.3 Distribution Plan of Energy System -- References -- Chapter 2 Operation Analysis of a Compound Energy System - Exhaust Heat Use Plan when Connecting Solar Modules to a Fuel Cell Network -- 2.1 Introduction -- 2.2 The Fuel Cell Energy Network with Solar Modules -- 2.2.1 Urban Area Model -- 2.2.2 Characteristic of the Solar Module -- 2.2.3 Hot-Water Piping Network -- 2.2.4 Facility Scheme -- 2.3 The Path Plan of a Hot-Water Piping Network -- 2.3.1 Heat-Transport Model of a Hot-Water Piping Network -- 2.3.2 Heat-Transfer Model of Hot-Water Piping -- 2.3.3 Heat Energy Balance -- 2.3.4 Analysis Method -- 2.3.5 Analysis Flow -- 2.4 Case Study -- 2.4.1 Specifications of Hot-Water Piping -- 2.4.2 Analysis Procedure -- 2.4.3 Analysis Conditions and Parameters -- 2.5 Analysis Results -- 2.5.1 Results of the Hot-Water Piping Path in FEN that Does not Connect Solar Modules -- 2.5.2 Influences that Changes in the Output of Solar Modules Have on a Hot-Water Piping Network -- 2.6 Conclusions -- Acknowledgments -- Nomenclature -- Subscripts -- The names of buildings -- References -- Chapter 3 Operation of Compound Energy System - Fuel Cell Network System Considering Reduction in Fuel Cell Capacity -- 3.1 Introduction -- 3.2 Load Leveling and Arrangement Plan of Fuel Cell -- 3.2.1 Fuel Cell Network System -- 3.2.2 Power-Generation Characteristics of the Fuel Cell -- 3.2.3 Load Leveling Using Water Electrolysis -- 3.2.4 Distribution of the Fuel Cell -- 3.2.5 Energy-Balance Equation -- 3.2.6 Operating Method of the System -- 3.3 Analysis Method -- 3.3.1 Procedure of Analysis -- 3.3.2 Solution Parameters -- 3.4 Case Study -- 3.4.1 Energy Demand Pattern and Network System -- 3.4.2 Reduction Effect of Fuel Cell Facility Capacity.
3.4.3 Route Planning Result of Hot-Water Piping -- 3.4.4 Result of a Fuel Cell Arrangement Plan -- 3.5 Conclusions -- Acknowledgments -- Nomenclature -- Subscripts -- References -- Chapter 4 Power-Independent House Using PEFC - Operation Plan of a Combined Fuel Cell Cogeneration, Solar Module, and Geothermal Heat Pump System -- 4.1 Introduction -- 4.2 Fuel Cell, Solar Modules, and Geothermal Heat Pump Combined System -- 4.2.1 Scheme of Combined System -- 4.2.2 Relational Expression -- 4.2.3 Energy Supply Path -- 4.3 Energy Balance and Objective Function -- 4.3.1 Objective Function of System -- 4.3.2 Multiobjective Optimization -- 4.4 Analysis Results -- 4.4.1 Results of Optimization -- 4.4.2 Equipment Capacity -- 4.4.3 Objective Function and Characteristics of Operation Plan -- 4.5 Conclusions -- Acknowledgments -- Nomenclature -- Greek Symbols -- Subscripts -- References -- Chapter 5 PEFC/Engine Generator Compound Energy System (1) - CO2 Discharge Characteristic of PEFC/Hydrogen-Gas-Engine Hybrid Cogeneration -- 5.1 Introduction -- 5.2 System Scheme -- 5.2.1 HCGS Model -- 5.2.2 Compression of Reformed Gas -- 5.2.3 Operating Method of System -- 5.2.4 Power-Generation-Efficiency Characteristics of HCGS -- 5.3 Equipment Characteristics -- 5.3.1 Output Characteristics of NEG -- 5.3.2 Output Characteristics of PEFC -- 5.3.3 Carbon-Dioxide Emission Characteristics of Boiler -- 5.4 Power and Heat Output Characteristics of HCGS -- 5.4.1 System Operation Map -- 5.4.2 Operation Map of HCGS -- 5.5 Case Study -- 5.5.1 Power and Heat Demand Model -- 5.5.2 Capacity Setup -- 5.5.3 Analysis Method -- 5.6 Results and Discussion -- 5.6.1 Operation Plan of a Representative Day -- 5.6.2 Annual Operation Plan -- 5.7 Conclusion -- Acknowledgments -- Nomenclature -- Greek Symbols -- Subscripts -- Equipment -- References.
Chapter 6 PEFC/Engine Generator Compound Energy System (2)-Power-Generation Efficiency of an Independent Microgrid Composed of Distributed Engine Generators -- 6.1 Introduction -- 6.2 System Description -- 6.2.1 Independent Microgrid Configuration -- 6.2.2 Control of the Number of Engine Generators -- 6.3 Diesel Engine Generator System -- 6.3.1 Engine Generator Specifications -- 6.3.2 Output Characteristics of a Small-Scale Diesel Engine Cogeneration System -- 6.4 Case Study -- 6.4.1 Analysis Method -- 6.4.2 Weather Conditions in Sapporo -- 6.4.3 Energy Demand Models -- 6.5 Results and Discussion -- 6.5.1 Load Distribution of the Engine Generator -- 6.5.2 Number of Distributions, and Full Force Power -- 6.5.3 Output Characteristics of Each Engine Generator -- 6.5.4 Power-Generation Efficiency -- 6.5.5 Power Cost -- 6.6 Conclusions -- Acknowledgments -- Nomenclature -- References -- Chapter 7 PEFC/Green Energy Compound System (1) - Operation Planning of a PEFC and Photovoltaics with Prediction of Electricity Production Using GA and Numerical Weather Information -- 7.1 Introduction -- 7.2 System Configurations -- 7.2.1 PEFC and Photovoltaics Compound Microgrid -- 7.2.2 System Operation -- 7.3 Analysis Method -- 7.3.1 Power System -- 7.3.2 Heat Balance -- 7.3.3 Optimal Analysis Using GA -- 7.4 Case Analysis -- 7.4.1 Equipment Specifications -- 7.4.2 GA Parameters -- 7.4.3 Energy Demand Pattern -- 7.4.4 Error of the NWI -- 7.5 Results and Discussion -- 7.5.1 Operation Planning -- 7.5.2 Influence of the Numerical Weather Information Error -- 7.5.3 Fuel Consumption -- 7.6 Conclusions -- Acknowledgements -- Nomenclature -- Greek Symbols -- Subscripts -- References -- Chapter 8 PEFC/Green Energy Compound System (2) - Overall Efficiency of a PEFC with a Bioethanol Solar Reforming System for Individual Houses -- 8.1 Introduction -- 8.2 Material and Method.
8.2.1 System Block Diagram -- 8.2.2 Fuel and Reformed Gas System -- 8.2.3 Electric Power System -- 8.2.4 Loss and Auxiliary-Machinery Power -- 8.2.5 Operation Method of the System -- 8.3 Heat-Transfer Analysis -- 8.3.1 Efficiency of Reforming Component -- 8.3.2 Heat Transfer in the Catalyst Layer -- 8.3.3 Reforming Reaction and Analytical Model for the Catalyst Layer -- 8.3.4 Heat Diffusion Equation -- 8.4 Analysis Method -- 8.4.1 Temperature Distribution of the Catalyst Layer, and the Composition Distribution -- 8.4.2 Amount of Exhaust Heat -- 8.5 Operation Case -- 8.5.1 Specification of the Reforming Component -- 8.5.2 Storage of the Reformed Gas -- 8.5.3 Installation Requirements of the System and Demand Characteristic -- 8.6 Results and Discussion -- 8.6.1 Temperature Distribution of the Catalyst Layer -- 8.6.2 Composition of the Process Gas -- 8.6.3 Amount of Hydrogen Generated -- 8.6.4 Production of Electricity and Amount of Purchased Power -- 8.6.5 Operation of the Exhaust Heat -- 8.6.6 Overall Efficiency -- 8.7 Conclusions -- Acknowledgement -- Nomenclature -- Greek Symbols -- Subscripts -- References -- Chapter 9 PEFC/Green Energy Compound System (3) - Fuel Cell Microgrid with Wind-Power Generation -- 9.1 Introduction -- 9.2 Microgrid Model -- 9.3 Response Characteristic of System Configuration Equipment -- 9.3.1 Power-Generation Characteristic of Fuel Cell -- 9.3.2 Output Characteristics of City Gas Reformer -- 9.3.3 Power-Generation Characteristics of Wind-Power Generation -- 9.3.4 Generation Efficiency of the Fuel Cell System -- 9.3.5 Inverter and System Interconnection Device -- 9.4 Control Parameters and Analysis Method -- 9.5 Load Response Characteristics of the Microgrid -- 9.5.1 Step Response -- 9.5.2 Load Response Characteristics of Cold-Region Houses -- 9.5.3 Power-Generation Efficiency -- 9.6 Conclusions -- Acknowledgments.
Nomenclature -- References -- Chapter 10 Solar Cell/Diesel Engine Compound System with Production-of-Electricity Prediction -- 10.1 Introduction -- 10.2 Independent Microgrid with Renewable Energy and Battery -- 10.2.1 System Configuration -- 10.2.2 Dynamic Operation Planning -- 10.2.3 Solar Cell System -- 10.3 Power Balance and Objective Function -- 10.3.1 Power Balance -- 10.3.2 Objective Function -- 10.4 Analysis Method -- 10.4.1 Production-of-Electricity Prediction Algorithm of Solar Cell (PAS) -- 10.4.2 Optimization of Dynamic Operation Using a Genetic Algorithm (GA) -- 10.4.3 Analysis Flow of Operation Planning -- 10.5 Case Analysis -- 10.5.1 Analysis System -- 10.5.2 Analysis Conditions -- 10.6 Analysis Results -- 10.6.1 Prediction of Solar Cell Output Power via PAS -- 10.6.2 Prediction Error of PAS, and Operation Method of Generating Equipment -- 10.6.3 Result of Dynamic Operation Planning -- 10.7 Conclusions -- References -- Chapter 11 Dynamic Characteristics of Power for PEFC Compound System -- 11.1 Introduction -- 11.2 System Description -- 11.2.1 Outline of System -- 11.2.2 System-Control Block Diagram -- 11.2.3 The Analysis Method -- 11.3 System Control -- 11.3.1 The Input of the System -- 11.3.2 Control of Startup -- 11.3.3 Control of Heat Output -- 11.3.4 Town-Gas Consumption -- 11.4 Results and Discussion -- 11.4.1 Control Variables and the Response -- 11.4.2 The Response Characteristics of the System -- 11.4.3 Operation of the System by the Selected Control Variables -- 11.5 Conclusions -- Acknowledgments -- Nomenclature -- Equipment Symbols -- References -- Chapter 12 Performance Analysis and Assessment of Compound Energy Systems Using Exergy Analysis Method -- 12.1 Introduction -- 12.2 Energetic and Exergetic Relations -- 12.2.1 Dead (or Reference) State -- 12.2.2 Relations Used.
12.3 Application of Exergy Analysis to Various Compound Energy Systems.
Record Nr. UNINA-9910816636503321
Obara Shin'ya  
Cambridge, : Royal Society of Chemistry, c2010
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui
Computational thermo-fluid dynamics [[electronic resource] ] : in materials science and engineering / / Petr A. Nikrityuk
Computational thermo-fluid dynamics [[electronic resource] ] : in materials science and engineering / / Petr A. Nikrityuk
Autore Nikrityuk Petr A
Edizione [2nd ed.]
Pubbl/distr/stampa Weinheim, Germany, : Wiley-VCH Verlag, c2011
Descrizione fisica 1 online resource (371 p.)
Disciplina 333.79
620.11
Soggetto topico Materials - Thermal properties - Mathematical models
Thermodynamics - Mathematical models
Fluid dynamics - Mathematical models
Heat - Transmission - Mathematical models
Mass transfer - Mathematical models
ISBN 3-527-63608-0
1-280-66276-X
9786613639691
3-527-63607-2
3-527-63609-9
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Nota di contenuto Computational Thermo-Fluid Dynamics; Contents; Preface; Acknowledgments; 1 Introduction; 1.1 Heat and Fluid Flows in Materials Science and Engineering; 1.2 Overview of the Present Work; 2 Mathematical Description of Physical Phenomena in Thermofluid Dynamics; 2.1 Conservation Equations for Continuum Media; 2.1.1 Conservation of Mass; 2.1.2 Conservation of Momentum; 2.1.3 Energy Conservation Equation; 2.1.4 Conservation of Chemical Species; 2.1.5 Boussinesq Approximation; 2.1.6 Unified Form of Conservation Equations; 2.1.7 Nondimensional Form of Conservation Equations; 2.1.8 Short Summary
2.2 Boundary and Initial Conditions2.2.1 Heat Transfer; 2.2.2 Solutal Transfer; 2.2.3 Fluid Dynamics; 2.3 Conservation Equations in Electromagnetics; 2.3.1 Maxwell Equations; 2.3.2 Induction and Poisson Equations; 2.3.3 An Example of a Low Magnetic Reynolds Number Approximation: Rotating Magnetic Field; 3 Discretization Approaches and Numerical Methods; 3.1 The Finite Difference Method; 3.1.1 Introduction; 3.1.2 Approximation Schemes; 3.1.3 Example of Conservative Property of FDM; 3.1.4 Discretization Schemes of Unsteady Equations; 3.1.5 Example of Unsteady Diffusion Equation
3.2 The Finite Volume Method3.2.1 Basic Concept; 3.2.2 Interpolation Schemes; 3.2.3 Linearized Form of Discretized Conservation Equation; 3.2.4 Treatment of Source Terms; 3.2.5 Boundary Conditions; 3.2.6 Comparative Study of Schemes for One-Dimensional Convection/Diffusion Problem; 3.3 Solution of Linear Equation Systems; 3.3.1 Direct Methods; 3.3.2 Iterative Methods; 3.3.3 Residuals and Convergence; 3.3.4 Multigrid Method; 3.3.5 Illustration of Iterative Methods; 4 Calculations of Flows with Heat and Mass Transfer; 4.1 Solution of Incompressible Navier-Stokes Equations
4.2 Pressure and Velocity Coupling: SIMPLE Family4.2.1 SIMPLE; 4.2.2 SIMPLER; 4.2.3 SIMPLE with Collocated Variables Arrangement; 4.3 Illustrations of Schemes for Flow with Heat Transfer; 4.4 Complex Geometry Problems on Fixed Cartesian Grids; 4.4.1 Immersed Boundary Methods; 4.4.2 Cartesian Grid Methods; 4.4.3 Immersed Surface Reconstruction; 4.4.4 Illustration of Continuous-Forcing IBM; 5 Convection-Diffusion Phase-Change Problems; 5.1 Some Aspects of Solidification Thermodynamics; 5.1.1 One-Component Melts; 5.1.2 Binary Alloys; 5.1.3 Interface and Equilibrium
5.2 Modeling of Macroscale Phase-Change Phenomena5.2.1 Heat Transfer in Phase-Change Systems: Fixed and Moving Grids; 5.2.2 Mathematical Models of a Binary Alloy Solidification; 5.2.3 Closure Relations for the Volume Fraction of Liquid; 5.3 Turbulent Solidification; 5.3.1 Review of Unsteady RANS Modeling of a Solidification; 5.3.2 Conditions for the DNS of Convection-Driven Solidification; 5.4 Microscale Phase-Change Phenomena; 5.4.1 Basic Modeling Concepts; 5.4.2 Modified Cellular Automaton Model; 5.4.3 Virtual Interface Tracking Model; 5.5 Modeling of Crystal Growth
5.5.1 Modeling Approaches
Record Nr. UNINA-9910141338503321
Nikrityuk Petr A  
Weinheim, Germany, : Wiley-VCH Verlag, c2011
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui
Computational thermo-fluid dynamics : in materials science and engineering / / Petr A. Nikrityuk
Computational thermo-fluid dynamics : in materials science and engineering / / Petr A. Nikrityuk
Autore Nikrityuk Petr A
Edizione [2nd ed.]
Pubbl/distr/stampa Weinheim, Germany, : Wiley-VCH Verlag, c2011
Descrizione fisica 1 online resource (371 p.)
Disciplina 333.79
620.11
Soggetto topico Materials - Thermal properties - Mathematical models
Thermodynamics - Mathematical models
Fluid dynamics - Mathematical models
Heat - Transmission - Mathematical models
Mass transfer - Mathematical models
ISBN 3-527-63608-0
1-280-66276-X
9786613639691
3-527-63607-2
3-527-63609-9
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Nota di contenuto Computational Thermo-Fluid Dynamics; Contents; Preface; Acknowledgments; 1 Introduction; 1.1 Heat and Fluid Flows in Materials Science and Engineering; 1.2 Overview of the Present Work; 2 Mathematical Description of Physical Phenomena in Thermofluid Dynamics; 2.1 Conservation Equations for Continuum Media; 2.1.1 Conservation of Mass; 2.1.2 Conservation of Momentum; 2.1.3 Energy Conservation Equation; 2.1.4 Conservation of Chemical Species; 2.1.5 Boussinesq Approximation; 2.1.6 Unified Form of Conservation Equations; 2.1.7 Nondimensional Form of Conservation Equations; 2.1.8 Short Summary
2.2 Boundary and Initial Conditions2.2.1 Heat Transfer; 2.2.2 Solutal Transfer; 2.2.3 Fluid Dynamics; 2.3 Conservation Equations in Electromagnetics; 2.3.1 Maxwell Equations; 2.3.2 Induction and Poisson Equations; 2.3.3 An Example of a Low Magnetic Reynolds Number Approximation: Rotating Magnetic Field; 3 Discretization Approaches and Numerical Methods; 3.1 The Finite Difference Method; 3.1.1 Introduction; 3.1.2 Approximation Schemes; 3.1.3 Example of Conservative Property of FDM; 3.1.4 Discretization Schemes of Unsteady Equations; 3.1.5 Example of Unsteady Diffusion Equation
3.2 The Finite Volume Method3.2.1 Basic Concept; 3.2.2 Interpolation Schemes; 3.2.3 Linearized Form of Discretized Conservation Equation; 3.2.4 Treatment of Source Terms; 3.2.5 Boundary Conditions; 3.2.6 Comparative Study of Schemes for One-Dimensional Convection/Diffusion Problem; 3.3 Solution of Linear Equation Systems; 3.3.1 Direct Methods; 3.3.2 Iterative Methods; 3.3.3 Residuals and Convergence; 3.3.4 Multigrid Method; 3.3.5 Illustration of Iterative Methods; 4 Calculations of Flows with Heat and Mass Transfer; 4.1 Solution of Incompressible Navier-Stokes Equations
4.2 Pressure and Velocity Coupling: SIMPLE Family4.2.1 SIMPLE; 4.2.2 SIMPLER; 4.2.3 SIMPLE with Collocated Variables Arrangement; 4.3 Illustrations of Schemes for Flow with Heat Transfer; 4.4 Complex Geometry Problems on Fixed Cartesian Grids; 4.4.1 Immersed Boundary Methods; 4.4.2 Cartesian Grid Methods; 4.4.3 Immersed Surface Reconstruction; 4.4.4 Illustration of Continuous-Forcing IBM; 5 Convection-Diffusion Phase-Change Problems; 5.1 Some Aspects of Solidification Thermodynamics; 5.1.1 One-Component Melts; 5.1.2 Binary Alloys; 5.1.3 Interface and Equilibrium
5.2 Modeling of Macroscale Phase-Change Phenomena5.2.1 Heat Transfer in Phase-Change Systems: Fixed and Moving Grids; 5.2.2 Mathematical Models of a Binary Alloy Solidification; 5.2.3 Closure Relations for the Volume Fraction of Liquid; 5.3 Turbulent Solidification; 5.3.1 Review of Unsteady RANS Modeling of a Solidification; 5.3.2 Conditions for the DNS of Convection-Driven Solidification; 5.4 Microscale Phase-Change Phenomena; 5.4.1 Basic Modeling Concepts; 5.4.2 Modified Cellular Automaton Model; 5.4.3 Virtual Interface Tracking Model; 5.5 Modeling of Crystal Growth
5.5.1 Modeling Approaches
Record Nr. UNINA-9910810441703321
Nikrityuk Petr A  
Weinheim, Germany, : Wiley-VCH Verlag, c2011
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui

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