
Solar Thermal Energy Course
Master the full spectrum of solar thermal technology, from collector physics to industrial process heat integration. This course gives engineers, technicians, and energy professionals the technical depth to design, install, commission, and maintain high-performance solar thermal systems. Build the specialised expertise that sets you apart in the growing clean energy sector.
What you will learn:
You will gain a thorough understanding of solar radiation principles, heat transfer, and thermodynamic fundamentals as they apply to real solar thermal systems. You will learn to design domestic hot water systems, solar combisystems, and large-scale industrial process heat installations. The course covers hydraulic components, control strategies, and system commissioning procedures in practical detail. You will also explore economic analysis, regulatory compliance, and integration with heat pumps and district heating networks. By the end, you will be equipped to deliver complete solar thermal projects from feasibility assessment through long-term performance monitoring.
How you study in practice Solar Thermal Energy Course
How you practise Solar Thermal Energy Course
For companies looking to train their teams
With Dedika for businesses, the course includes exercises and examples tailored to your company and its specific needs.
Course content
8 Chapters • 39 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFundamentals of Solar Thermal Energy
Fundamentals of Solar Thermal Energy
Lesson 1 • Solar Resource Assessment
Teaches methods to quantify available solar energy at a site using data tools. Enables accurate energy yield estimation before system design begins.
Lesson 2 • Solar Radiation and the Sun
Covers solar spectrum, irradiance, and seasonal variation. Establishes the energy source basis for all subsequent thermal system design.
Lesson 3 • Heat Transfer Principles
Introduces conduction, convection, and radiation as applied to solar collectors. Connects thermal physics to real collector performance.
Lesson 4 • Thermodynamic Concepts for Solar Systems
Covers energy balance, entropy, and efficiency limits relevant to solar thermal. Provides the analytical framework used throughout the course.
Chapter 2HideHide detailsSee detailsSolar Thermal Collector Technologies
Solar Thermal Collector Technologies
Lesson 1 • Concentrating Collector Systems
Introduces parabolic trough, dish, and linear Fresnel concentrators for high-temperature applications. Links concentration ratio to achievable fluid temperatures.
Lesson 2 • Collector Performance Testing
Explains standardised test procedures and efficiency parameters used to compare collectors. Enables informed product selection using certified test data.
Lesson 3 • Collector Selection Criteria
Guides matching collector type to application temperature, climate, and budget. Synthesises prior sections into a practical decision framework.
Lesson 4 • Evacuated Tube Collectors
Covers heat pipe and direct-flow tube designs and their vacuum insulation advantage. Explains performance gains in cold and diffuse-light conditions.
Lesson 5 • Flat-Plate Collector Design
Details absorber plate construction, glazing, and insulation layers. Connects component choices to thermal efficiency and heat loss.
Chapter 3HideHide detailsSee detailsSystem Components and Hydraulics
System Components and Hydraulics
Lesson 1 • Expansion Vessels and Safety Devices
Details pressure relief valves, expansion vessels, and air venting components. Ensures students can design systems that operate safely under thermal expansion.
Lesson 2 • Heat Exchangers and Storage Tanks
Covers shell-and-tube, plate, and coil-in-tank exchangers alongside stratified storage design. Establishes how thermal energy is transferred and stored effectively.
Lesson 3 • Heat Transfer Fluids
Covers water, glycol mixtures, and synthetic oils used as collector loop fluids. Links fluid properties to freeze protection, boiling risk, and material compatibility.
Lesson 4 • Piping Design and Insulation
Covers pipe material selection, sizing, layout, and thermal insulation standards. Minimises heat loss and ensures reliable long-term hydraulic performance.
Lesson 5 • Pumps and Circulation Systems
Explains pump types, flow rate sizing, and variable-speed control strategies. Connects hydraulic design to system efficiency and parasitic energy use.
Chapter 4HideHide detailsSee detailsSolar Water Heating System Design
Solar Water Heating System Design
Lesson 1 • Collector Array Sizing Methods
Introduces f-chart, simplified ratio, and simulation-based sizing approaches. Enables selection of the appropriate method for project scale and data availability.
Lesson 2 • Domestic Hot Water Load Analysis
Quantifies daily hot water demand based on occupancy and usage patterns. Provides the demand baseline required for accurate system sizing.
Lesson 3 • Commercial and Multi-Family Systems
Scales design principles to larger buildings with centralised or distributed arrays. Addresses hydraulic balancing and zoning for complex installations.
Lesson 4 • Storage Volume and Backup Heating
Determines optimal tank volume relative to collector area and demand. Integrates auxiliary heating to ensure reliable supply on low-solar days.
Lesson 5 • System Schematics and Configurations
Presents direct, indirect, drainback, and thermosiphon circuit configurations. Guides configuration selection based on climate and building constraints.
Chapter 5HideHide detailsSee detailsSolar Space Heating and Cooling
Solar Space Heating and Cooling
Lesson 1 • Building Thermal Load Fundamentals
Covers heat loss calculation, U-values, and degree-day methods for space heating loads. Establishes the demand input needed for solar space heating design.
Lesson 2 • Seasonal Thermal Energy Storage
Covers pit, aquifer, borehole, and tank storage for inter-seasonal solar heat. Evaluates storage feasibility based on geology, scale, and economic factors.
Lesson 3 • Radiant Floor and Low-Temperature Heating
Details radiant floor and low-temperature radiator systems compatible with solar supply temperatures. Maximises collector efficiency by minimising return temperatures.
Lesson 4 • Solar Cooling Technologies
Introduces absorption, adsorption, and desiccant cooling driven by solar heat. Explains the coefficient of performance and temperature requirements for each technology.
Lesson 5 • Solar Combisystems
Explains combined solar water and space heating systems with shared storage. Covers hydraulic integration strategies and control logic for dual-purpose systems.
Chapter 6HideHide detailsSee detailsIndustrial and Process Heat Applications
Industrial and Process Heat Applications
Lesson 1 • Solar Heat Integration with Industry
Explains heat exchanger network integration and pinch analysis for solar process heat. Ensures solar input is optimally placed within existing industrial energy systems.
Lesson 2 • High-Temperature Concentrating Systems
Details parabolic trough and Fresnel systems for temperatures above 250°C. Addresses tracking accuracy, heat transfer fluid selection, and thermal storage integration.
Lesson 3 • Industrial System Performance Monitoring
Covers sensor placement, data acquisition, and key performance indicators for industrial solar heat. Enables ongoing verification of energy delivery and system health.
Lesson 4 • Industrial Heat Demand Analysis
Profiles temperature levels, load schedules, and process types in industrial facilities. Identifies integration points where solar heat can displace fossil fuel use.
Lesson 5 • Medium-Temperature Collector Systems
Covers evacuated tube and compound parabolic concentrators for 80–250°C applications. Links collector choice to process temperature and optical efficiency.
Chapter 7HideHide detailsSee detailsInstallation, Commissioning, and Safety
Installation, Commissioning, and Safety
Lesson 1 • Fluid Filling and System Commissioning
Explains glycol mixing, filling station use, and initial system startup checks. Verifies correct flow rates, temperatures, and control responses at commissioning.
Lesson 2 • Collector Mounting and Roof Integration
Details mounting frame types, waterproofing, and wind load anchoring for roof installations. Ensures structural integrity and weathertight penetrations.
Lesson 3 • Site Assessment and Pre-Installation Planning
Covers roof load assessment, shading analysis, and access planning before installation. Prevents costly errors by resolving site constraints at the planning stage.
Lesson 4 • Health, Safety, and Electrical Integration
Addresses working-at-height safety, hot fluid hazards, and pump electrical connections. Ensures compliance with occupational safety standards throughout installation.
Lesson 5 • Hydraulic Installation Procedures
Covers pipe connection, component assembly, and flushing sequences for the collector loop. Establishes a clean, leak-free hydraulic circuit before fluid filling.
Chapter 8HideHide detailsSee detailsSystem Control, Monitoring, and Maintenance
System Control, Monitoring, and Maintenance
Lesson 1 • Advanced Control Strategies
Covers variable-flow control, weather-compensated setpoints, and building management system integration. Improves energy yield and comfort beyond basic on/off control.
Lesson 2 • Differential Temperature Control
Explains how differential controllers compare collector and tank sensors to activate pumps. Covers setpoint selection, hysteresis, and anti-legionella functions.
Lesson 3 • Performance Monitoring and Data Analysis
Establishes energy metering, yield benchmarking, and trend analysis for operational systems. Enables early detection of performance degradation before it becomes costly.
Lesson 4 • Fault Diagnosis and Corrective Action
Provides a systematic troubleshooting methodology for common solar thermal faults. Reduces downtime by enabling rapid identification and resolution of system problems.
Lesson 5 • Preventive Maintenance Procedures
Details annual inspection tasks including fluid testing, collector cleaning, and component checks. Extends system lifespan and maintains warranty compliance.
Your valid completion certificate
This course is for you:
Mechanical engineer: ready to add solar thermal to your project portfolio.
Plumbing or HVAC technician: looking to expand into renewable heating installations.
Energy auditor: wanting to recommend and evaluate solar thermal solutions confidently.
Renewable energy project manager: needing deeper technical grounding in thermal systems.
Career changer: transitioning from a trade background into the clean energy sector.
Facilities manager: responsible for reducing building energy costs and carbon output.
What our students say
Your lessons are perfect. I purchased the one-year package and finally have the opportunity to follow various topics of interest without needing to change platforms... I'm grateful for everything you do, I've already recommended you to other people...

I like how the lessons are straight to the point and how I can change chapters and skip content I don't need.

I like the content and the way videos are presented and transcribed, which speeds up the process!

The platform is fast, simple to use. The diversity of content and complementary videos really help with learning.

Top qualifications
FAQ
Who is Dedika?
Is the certificate valid in South Africa?
Are the courses free?
What is the course workload?
What are the courses like?
How do the courses work?
What is the duration of the courses?
What is the cost or price of the courses?
What is an EAD or online course and how does it work?
PDF Course




















