Master's Degree in Continuing Education in Green Hydrogen Projects
PRESENTATION
The Master’s in Green Hydrogen Projects is a high-level specialization that strategically integrates all the critical dimensions of the green hydrogen sector for professionals seeking to advance their careers and operate successfully. This program equips you with advanced skills to lead and manage green hydrogen initiatives, even under the most challenging circumstances. You will delve into product strategy, the development of complex infrastructure, and the essential funding sources needed to drive critical infrastructure projects. You will explore the generation and storage of this resource, its applications in electricity production, and specific facilities—always from the perspective of reducing emissions and mitigating climate change. You will strengthen your ability to make strategic decisions, optimizing every phase of the lifecycle of green technology projects and ensuring their technical and economic viability. You will develop high-level skills in implementing innovative and sustainable solutions, transforming the energy landscape and actively contributing to industrial and social decarbonization. You will analyze decarbonization techniques and technologies—including hydrogen production and fuel cells—to gain a comprehensive understanding of the ecosystem.
Objectives
Methodology
At Educa PHAROS, we use a highly practical methodology focused on the direct application of knowledge in the student’s professional environment, combining theoretical content with real-world cases, digital tools, and support from a team of specialized instructors.
Program
- History of Hydrogen
- What is hydrogen?
- Current Electricity and Energy Matrix
- Hydrogen as an Energy Carrier
- Outlook for the Hydrogen Roadmap
- PEM Electrolysis
- Alkaline Electrolysis
- SOEC and AEM Electrolysis
- Hydrogen Storage
- Hydrogen Distribution
- Fuel Cells
- PEM Fuel Cells
- AT Fuel Cells
- Hydrogen Turbines and Engines
- Fuel-Cell Vehicles
- Refueling stations
- Sizing of Major Equipment
- Safety Considerations. Explosive Atmospheres
- Design of Hydrogen-Related Facilities and Fuel Cells
- Example of an installation calculation.
- Energy Production and Its Evolution
- Fossil Fuels: The End of an Era
- Strategies for Sustainability
- Energy Demand and the Energy Transition
- Energy and the Future
- Climate Change
- Effects and Strategies Related to Climate Change
- Energy Transition Roadmap
- The Evolution of the Energy Transition
- Carbon taxes and ESG criteria
- Key Drivers of the Energy Transition
- Renewable Power Generation, Electrification, and Energy Storage
- Mobility and Transportation
- Carbon Capture and Storage
- Circular Economy and New Materials
- Hydrogen (H2)
- Bioenergy
- Integration of bioenergy processes with other technologies
- Cities of the Future (Smart Cities)
- Entrepreneurship and Enabling Technologies and Developments for Decarbonization
- Hydrogen Production
- Hydrocarbon Refinery
- Partial oxidation and other hydrocarbon-based processes
- Coal and Biomass Gasification
- Advantages and Disadvantages: A Comparison of the Different Processes
- Electrolytic Processes
- Alkaline Electrolyzers
- Polymer Electrolyzers
- Alternative Method for Producing Green Hydrogen
- Technology Readiness Level
- The Origins and Operation of Fuel Cells
- Composition and Types of Fuel Cells
- How Polymer Batteries Work
- Components of Polymer Batteries
- Progress and Future Outlook
- Solid-oxide fuel cells. Geometries and materials.
- Fuel Cell Efficiency
- Alkaline, phosphoric acid, and molten carbonate batteries
- Biobatteries
- Design and Cost Estimation of a Fuel Cell
- Features and Storage Systems
- Storage in the form of compressed hydrogen gas
- Pressurized Tanks: Types, Characteristics, and Development Objectives
- EIHP (European Integrated Hydrogen Project) Specifications
- Examples of Development Projects
- Characteristics and Systems for Storing Liquid Hydrogen
- Storage, Distribution, and Dispensing of Liquid Hydrogen
- Liquid Hydrogen Storage Tanks: Types, Characteristics, and Development Goals
- EIHP (European Integrated Hydrogen Project) Specifications
- Examples of Development Projects
- General Concepts
- Metal hydrides
- Intermetallic compounds
- Carbonaceous materials and organic polymers
- Glass microspheres
- Control Theory
- Model-Based Predictive Control
- Modeling Hydrogen-Based Systems
- Control Strategies
- Related Regulations
- Light rail.
- Heavy-duty transportation
- Captive fleets
- Railway Sector
- Infrastructure
- Energy Transition in Air Transport
- Sustainable Aviation Fuels (SAF)
- Energy Transition in Maritime Transport
- Sustainable Fuels for Maritime Transport
- Trends in Air and Maritime Transportation
- Risks Associated with Hydrogen
- Hydrogen Detection
- Safety Considerations
- Explosive atmospheres
- Hydrogen Risk Assessment
- The Hydrogen Journey
- Distributed Generation Systems
- Comparison of Management Systems
- Environmental, Health, and Safety Considerations Along the Hydrogen Value Chain
- Safety and Risk in the Transmission, Distribution, and Storage of Hydrogen
- Large-scale electricity generation
- Distributed Generation
- Microgeneration Systems
- Uninterruptible Power Supply Systems
- Combined Heat and Power Systems
- Introduction and Future Prospects for Mobile Applications
- Forklifts
- Passenger cars and buses
- Air Travel and People with Limited Mobility
- Other vehicles
- Reversible fuel cells
- Space Applications
- Micro fuel cells
- Portable Generators
- Other systems
- Fundamentals and Concepts of Power-to-X
- Power-to-Gas (PTG)
- Power-to-Liquid (PTL)
- Power-to-heat (PTH)
- Applications in the World of Hydrogen
- Materials, Pipes, and Fittings
- Power Supply and Storage Systems
- Hydrogen Compressors
- Components and Auxiliary Systems
- Hydrogen dispensers
- Installation and Operation of the Hydrogen Fueling Station
- Control and Instrumentation Systems
- Inspection Protocols
- Gas Station Operations
- Maintenance Work
- Key Safety Considerations
- Security Methodologies and Risk Assessment
- Risk Mitigation and ATEX Explosive Atmospheres
- Safety Distances at Hydrogen Facilities
- Measures to Protect Against External Factors
- ISO 14687. Quality of hydrogen fuel
- ISO 17268. Hydrogen refueling devices
- ISO 19880-1. General Requirements for Gas Stations
- ISO 22734. Electrolyzers
- IEC 62282-3-100. Stationary Fuel Cell Power Generation Systems
- Geopolitical Factors Shaping the Transition
- The Political History of Hydrogen: Bubbles and Expectations
- The Rise of Hydrogen Geopolitics
- The Geopolitics of Hydrogen in the Context of Climate Change
- The Key Players in the Geopolitics of Hydrogen
- Importers: The Case of the European Union
- Hydrogen in the Survival and Energy Transition of Oil-Exporting Countries: The Case of the Gulf Cooperation Council
- Emerging Exporters and Neo-Extractivism
- Emerging Technological Powers: The Case of China
- Emerging Industrial Powers: The Case of 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 Industrial Value Chains
- Hydrogen and the Return of Industrial Policy
- Hydrogen Diplomacy
- Hydrogen and the Geopolitics of Infrastructure
- Hydrogen and Green Colonialism
- Allies and Rivals in the Geopolitics of Hydrogen
- "A Comparative Study of Hydrogen Strategies in the European Union"
- Europe's Technological, Economic, and Environmental Potential
- European deployment plans, hydrogen valleys
- Factors Driving Investment in Hydrogen and Fuel Cells
- Supply- and Demand-Side Development Initiatives
- The Path to Commercializing the Technology
- Fuel Cell Handling Equipment
- Residential use. Fuel cell micro-cogeneration
- Combined Heat and Power (CHP)
- H2 Production Without CO2 Capture (I)
- Hydrogen Production with and without CO2 Capture (II)
- The Viability Plan
- Production and Expense Plan
- Investment and Financing Plan
- Reports: Income Statement, Balance Sheet, and Cash Flow Statement
- Key Indicators, Analysis, and Simulations
- First Steps in Raising Capital
- Internal Funding Sources
- Sources of External Funding
- Sources of Blended Finance
- How to Negotiate Our Financing
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