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Renewable Energy: Technologies and Storage Course
More than 2 million students worldwide

Renewable Energy: Technologies and Storage Course

Master the full spectrum of renewable energy — from solar and wind to geothermal, hydropower, and advanced storage systems. This course equips you with the technical, financial, and project development skills the clean energy industry demands. Whether you're entering the sector or leveling up your expertise, you'll gain the tools to evaluate, design, and deliver real-world renewable energy projects.

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What you will learn:

  • Analyze solar, wind, hydro, geothermal, and biomass resources for site suitability and yield.

  • Design and size PV systems using load analysis, array configuration, and loss factor modeling.

  • Evaluate wind farm layouts, wake effects, and P50/P90 energy production estimates.

  • Compare lithium-ion, flow battery, pumped hydro, and hydrogen storage technologies by application.

  • Integrate variable renewables into power grids while maintaining frequency stability and reliability.

  • Build financial models and feasibility studies to assess renewable project viability and investment risk.

How you study in practice Renewable Energy: Technologies and Storage Course

How you practice Renewable Energy: Technologies and Storage Course

For companies that want to train their team

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Course content

8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Renewable Energy

  • Lesson 1 • Energy Fundamentals and Units

    Covers thermodynamic principles, energy units, and power metrics essential to all renewable technologies. Establishes the quantitative language used throughout the course.

  • Lesson 2 • Global Energy Landscape

    Examines current fossil fuel dependence, carbon emissions, and the drivers of the energy transition. Contextualizes why renewables are economically and environmentally urgent.

  • Lesson 3 • Renewable Resource Classification

    Defines solar, wind, hydro, geothermal, and biomass resources by origin and availability. Provides a taxonomy students apply when evaluating site suitability.

  • Lesson 4 • Regulatory and Policy Frameworks

    Surveys incentive structures, grid codes, and permitting processes that govern renewable deployment. Students recognize how policy shapes project feasibility.

  • Lesson 5 • Energy Conversion Principles

    Explains photovoltaic, electromagnetic induction, and thermodynamic conversion mechanisms. Links physical principles to specific renewable technology designs.

Chapter 2See details

Solar Photovoltaic Technology

  • Lesson 1 • PV Module Characteristics

    Analyzes I-V curves, fill factor, and temperature coefficients that determine real-world module output. Connects lab ratings to field performance expectations.

  • Lesson 2 • PV Cell Physics and Materials

    Covers semiconductor band gaps, p-n junctions, and carrier generation in silicon and thin-film cells. Grounds module performance analysis in material science.

  • Lesson 3 • Solar Resource Assessment

    Teaches irradiance measurement, peak sun hours, and shading analysis tools. Enables accurate energy yield prediction before system installation.

  • Lesson 4 • PV System Sizing and Design

    Applies load analysis, array sizing, and loss factor modeling to produce a complete system design. Students deliver a sized PV design for a given load profile.

  • Lesson 5 • System Components and Architecture

    Describes inverters, charge controllers, mounting structures, and wiring in grid-tied and off-grid systems. Students select components appropriate to each application.

Chapter 3See details

Wind Energy Technology

  • Lesson 1 • Turbine Aerodynamics and Rotor Design

    Covers Betz limit, blade element momentum theory, and airfoil selection for rotor optimization. Links aerodynamic theory to turbine power curve shape.

  • Lesson 2 • Wind Resource Fundamentals

    Explains atmospheric boundary layer, wind shear, and turbulence intensity as inputs to turbine siting. Establishes the meteorological basis for wind energy assessment.

  • Lesson 3 • Wind Farm Layout and Wake Effects

    Addresses turbine spacing, wake deficit modeling, and terrain effects on array efficiency. Enables students to optimize layout for maximum annual energy production.

  • Lesson 4 • Wind Energy Yield Assessment

    Integrates wind measurement campaigns, uncertainty analysis, and P50/P90 production estimates. Students produce a bankable energy yield report.

  • Lesson 5 • Drivetrain and Generator Systems

    Compares gearbox-driven, direct-drive, and hybrid drivetrains with synchronous and induction generators. Students match drivetrain type to project requirements.

Chapter 4See details

Hydropower and Ocean Energy

  • Lesson 1 • Hydropower Resource and Site Assessment

    Covers flow duration curves, head measurement, and catchment hydrology for site screening. Provides the hydrological tools needed before turbine selection.

  • Lesson 2 • Environmental and Social Considerations

    Addresses fish passage, sediment transport, and community displacement issues in hydro project development. Students apply mitigation strategies to project planning.

  • Lesson 3 • Tidal and Wave Energy Technologies

    Describes tidal stream turbines, tidal barrages, and wave energy converters with their resource characteristics. Positions ocean energy within the broader renewable portfolio.

  • Lesson 4 • Small and Micro Hydropower

    Examines low-head turbines, pico-hydro systems, and community-scale installations for off-grid electrification. Bridges large-scale hydro concepts to distributed applications.

  • Lesson 5 • Hydropower Plant Types and Turbines

    Compares run-of-river, reservoir, and pumped-storage plants and matches Pelton, Francis, and Kaplan turbines to head-flow conditions.

Chapter 5See details

Geothermal and Biomass Energy

  • Lesson 1 • Geothermal Power Plant Configurations

    Compares dry steam, flash steam, and binary cycle plants by resource temperature and fluid characteristics. Students select plant type based on reservoir conditions.

  • Lesson 2 • Biomass Feedstocks and Supply Chains

    Surveys agricultural residues, energy crops, forestry waste, and municipal solid waste as biomass inputs. Addresses sustainability criteria and supply chain logistics.

  • Lesson 3 • Biochemical Conversion and Biofuels

    Explains anaerobic digestion, fermentation, and transesterification routes to biogas, bioethanol, and biodiesel. Students compare conversion efficiencies and end-use applications.

  • Lesson 4 • Thermochemical Conversion Pathways

    Covers combustion, gasification, and pyrolysis processes that convert solid biomass to heat, power, or syngas. Links process conditions to product quality and efficiency.

  • Lesson 5 • Geothermal Resource Characterization

    Explains hydrothermal systems, enhanced geothermal systems, and temperature gradient mapping for resource assessment. Establishes geological prerequisites for geothermal development.

Chapter 6See details

Energy Storage Technologies

  • Lesson 1 • Hydrogen as an Energy Carrier

    Explains electrolysis, hydrogen storage methods, and fuel cell reconversion for long-duration energy storage. Students evaluate green hydrogen pathways within renewable systems.

  • Lesson 2 • Pumped Hydro and Compressed Air Storage

    Covers pumped hydroelectric storage and compressed air energy storage as large-scale, long-duration options. Connects mechanical storage to grid balancing requirements.

  • Lesson 3 • Thermal Energy Storage

    Describes sensible heat, latent heat, and thermochemical storage methods used in solar thermal and building applications. Highlights integration with district heating and cooling.

  • Lesson 4 • Lithium-Ion and Advanced Battery Systems

    Examines lithium-ion chemistries, battery management systems, and emerging solid-state and flow battery alternatives. Students compare chemistries by safety, cost, and application fit.

  • Lesson 5 • Storage System Fundamentals

    Defines energy capacity, power rating, round-trip efficiency, and cycle life as universal storage metrics. Provides the evaluation framework applied to all storage technologies.

Chapter 7See details

Grid Integration and Power Systems

  • Lesson 1 • Power Grid Architecture

    Reviews transmission and distribution network structure, voltage levels, and grid codes relevant to renewable interconnection. Establishes the grid context for integration challenges.

  • Lesson 2 • Smart Grids and Microgrids

    Covers advanced metering, distributed energy resource management, and microgrid control architectures. Positions smart grid technologies as enablers of high renewable penetration.

  • Lesson 3 • High Renewable Penetration Strategies

    Examines curtailment management, sector coupling, and transmission expansion strategies for grids exceeding 50% renewable share. Students design integration roadmaps for high-penetration scenarios.

  • Lesson 4 • Ancillary Services and Frequency Control

    Explains frequency regulation, voltage support, and spinning reserve services that renewables must provide or replace. Students identify how storage and inverters deliver ancillary services.

  • Lesson 5 • Variability and Forecasting

    Addresses solar and wind output variability, ramp rates, and short-term forecasting methods used by grid operators. Links forecast accuracy to balancing reserve requirements.

Chapter 8See details

Renewable Energy Project Development

  • Lesson 1 • Operations, Maintenance, and Performance

    Addresses preventive and predictive maintenance strategies, performance ratio monitoring, and asset management over a project's operational life.

  • Lesson 2 • Project Lifecycle and Feasibility

    Maps development stages from site identification through commissioning and defines feasibility study components. Gives students a structured framework for managing project progression.

  • Lesson 3 • Procurement and Contracting

    Explains EPC contracts, equipment procurement strategies, and performance guarantees in renewable project delivery. Students structure procurement to manage cost and schedule risk.

  • Lesson 4 • Environmental and Social Impact Assessment

    Covers impact assessment methodology, stakeholder consultation, and mitigation hierarchy for renewable projects. Students apply assessment frameworks to minimize project risks.

  • Lesson 5 • Financial Modeling and Economics

    Builds discounted cash flow models, calculates LCOE, and evaluates project IRR and NPV under different scenarios. Students assess financial viability and sensitivity to key assumptions.

Certification

Your valid completion certificate

This course is for you:

  • Mechanical or electrical engineer pivoting toward clean energy careers.

  • Environmental consultant wanting technical depth in renewable systems.

  • Energy analyst seeking to expand beyond fossil fuel project work.

  • Project manager entering utility-scale solar or wind development.

  • Sustainability officer needing hands-on knowledge of storage technologies.

  • Recent STEM graduate aiming to break into the clean energy sector.

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