Master´s Degree in Green Hydrogen Projects
PRESENTACIÓN
Objetivos
By pursuing this master's degree, the student will be able to:
- Learn about hydrogen in terms of properties as an element, as an energy vector, and its environmental impact.
- Delve into hydrogen production and conversion methods.
- Apply relevant storage and control systems.
- Delve into the associated infrastructure and means of transport.
- Master the use and applications of hydrogen.
- Delve into the fundamental aspects of hydrogen fueling stations.
- Learn about the key players involved through a strategic vision of the sector.
- Master economic and business aspects associated with hydrogen energy projects
Metodología
En Educa PHAROS trabajamos con una metodología eminentemente práctica, orientada a la aplicación directa de los conocimientos en el entorno profesional del alumno, combinando contenidos teóricos con casos reales, herramientas digitales y el acompañamiento de un equipo docente especializado.
Programa
- The hystory of hydrogen
- What is hydrogen?
- Current electricity and energy matrix
- Hydrogen as an energy carrier
- Prospects for the hydrogen roadmap
- PEM electrolysis
- Alkaline electrolysis
- SOEC and AEM electrolysis
- Hydrogen storage
- Hydrogen distribution
- Fuel cells
- PEM fuel cell
- High temperature fuel cell
- Hydrogen turbines and engines
- Hydrogen vehicles
- Refuelling stations
- Sizing of main equipment
- Safety considerations. Explosive atmospheres
- Design of hydrogen and fuel cell installations
- Examples of installation calculations
- Energy production and its evolution
- Fossil fuels. The change of an era
- Strategies for sustainability
- Energy demand and transition
- Energy and the fuel future
- Climate change
- Effects and strategies related to climate change
- The energy transition roadmap
- The evolution of the energy transition
- Carbon credits and ESG criteria
- Vectors of the energy transition
- Renewable electricity generation, electrification, and storage
- Mobility and transportation
- Carbon capture and storage
- Circular economy and new materials
- Hydrogen (H2)
- Bioenergy
- Integration between bioenergy processes and other technologies
- The cities of the future (smart cities)
- Entrepreneurship and enabling technologies and developments for decarbonization
- Hydrogen production
- Hydrocarbon reforming
- Partial oxidation and other hydrocarbon based processes
- Coal and biomass gasification
- Advantages and disadvantages. Comparison between the different processes
- Electrolytic processes
- Alkaline electrolysers
- Polymer electrolyser
- Green hydrogen production alternatives
- Technological maturity level
- Origin and operation of fuel cells
- Composition and types of fuel cells
- Operation of polymer batteries
- Polymer battery components
- Progress and future expectations
- Solid oxide fuel cells. Geometries and materials
- Fuel cell efficiency
- Alkaline, phosphoric acid and molten carbonate batteries
- Microbial fuel cell
- Fuel cell design and costing
- Storage systems and their characteristics
- Storage in the form of compressed hydrogen gas
- Pressure vessels, types, characteristics and development objectives
- Specifications of EIHP (European Integrated Hydrogen Project)
- Examples of development projects
- Liquid hydrogen storage systems and characteristics
- Storage, distribution and dispensing of liquid hydrogen
- Liquid hydrogen storage tanks, types, characteristics and development objectives
- Specifications of EIHP (European Integrated Hydrogen Project)
- Examples of development projects
- General concepts
- Metal hydrides
- Intermetallic compounds
- Carbonaceous materials and organic polymers
- Glass microspheres
- Control theory
- Model-based Predictive Control (MPC)
- Hydrogen system modeling
- Control strategies
- Associated standards and regulations
- Light transport
- Heavy duty transport
- Captive fleets
- Railway sector
- Infrastructures
- Energy transition in air transport
- Sustainable aviation fuels
- Energy transition in maritime transport
- Sustainable fuels for maritime transport
- Evolution of air and maritime transport
- Risk of hydrogen
- Hydrogen detection
- Security aspects
- Explosive environments
- Hydrogen risk assesment
- Hydrogen production pathways
- Distributed generation systems
- Comparison between generation systems
- Environmental, health, and safety aspects of the hydrogen production pathways
- Safety and risks associated with hydrogen transmissionn, distribution and storage
- Large-scale power production
- Decentralized power generation systems
- Power microgeneration systems
- Uninterruptible Power Supply Systems (UPS)
- Heat-energy combined systems
- Introduction and future perspectives on mobile applications
- Forklift trucks
- Passenger cars and buses
- Air mobility and maritime mobility
- Other vehicles
- Reversible fuel cells
- Space applications
- Micro fuel cells
- Portable generators
- Other systems
- Power-to-X. Basis and concepts
- Power-to-Gas (PTG)
- Power-to-Liquid (PTL)
- Power-to-Heat (PTH)
- Hydrogen and applications worldwide
- Materials, pipelines, and accessories
- Feed systems and storage
- Hydrogen compressors
- Auxiliary components and systems
- Hydrogen dispensers
- Set up and operation of a hydrogen filling station
- Instrumentation and control systems
- Inspections protocols
- Filling station operation
- Maintenance tasks
- Safety fundamentals
- Safety methodologies and risk assesment
- Risk mitigation, explosive atmospheres, and the atex
- Safety distance in hydrogen facilities
- Protection measures against external agents
- ISO 14687. Hydrogen fuel quality
- ISO 17268. Hydrogen refuelling devices
- ISO 19880-1. Fuelling stations. General requirements
- ISO 22734. Electrolyzers
- IEC 62282-3-100. Stationary fuel cell power systems
- The basics of the geopolitics of the energy transition
- Political history of hydrogen: bubbles and expectations
- The arrival of hydrogen geopolitics
- Hydrogen geopolitics in the context of climate change
- Actors of hydrogen geopolitics
- Importers: the case of the European Union
- Hydrogen in the Survival and Energy Transition of Petro-states: The Case of the Gulf Co-operation Council
- Emerging exporters and neoexctractivism
- Emerging tech superpowers: China
- Emerging industrial power: the United States
- Hydrogen in the new globalization of derisking, decoupling and friendshoring
- Strategic minerals for the hydrogen economy
- The geopolitics of electrolyzers
- Hydrogen and the reconfiguration of value chains
- Hydrogen and the return of industrial policies
- Hydrogen diplomacy
- Hydrogen and the geopolitics of critical infrastructure
- Hydrogen and green colonialism
- Allies and rivals in hydrogen geopolitics
- Comparative study of hydrogen strategies in the EU
- Europe's technological, economic and environmental potential
- European deployment plans, the hydrogen valleys
- Drivers for hydrogen and fuel cell investment
- Supply and demand development initiatives
- The route to technology commercialization
- Fuel cell handling equipment
- Residential use. Fuel cell cogeneration
- Cogeneration CHP
- Hydrogen production without CO2 capture. Part I
- Hydrogen production with and without CO2 capture. Part II
- Overview of economic viability
- Economic viability plan
- Investment and financing plan
- Profitability and risks in hydrogen projects: a financial approach
- Commercialisation strategies and feasibility in the hydrogen industry: economic and business perspectives
- First steps towards the search for capital
- Internal financing sources
- External financing sources
- Mixed financing sources
- Financing negotiations
Másteres Destacados
Master´s Degree in Continuing Education in Advanced Disaster Risk Management
Máster de Formación Permanente en Ingeniería del Ciclo Integral del Agua
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Educa PHAROS es un modelo formativo de nueva generación que posiciona al capital humano de la empresa a la vanguardia. A través de una plataforma que se adapta a la imagen corporativa de cada empresa y con un total de más de 900 cursos se consigue una formación específica para cada organización. La tarifa plana ilimitada, proporciona a cada empresa el número de cursos que se ajuste a sus necesidades y también la posibilidad de determinar qué empleados podrán tener acceso.