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| Training Mode | Platform | Fee | Enroll |
|---|---|---|---|
| Online Training | Zoom/ Google Meet | 900USD | Register |
| Course Date | Location | Fee | Enroll |
|---|---|---|---|
| 28/09/2026 to 02/10/2026 | Nairobi | 1,500 USD | Register |
| 28/09/2026 to 02/10/2026 | Mombasa | 1,750 USD | Register |
| 28/09/2026 to 02/10/2026 | Dubai | 4,900 USD | Register |
| 26/10/2026 to 30/10/2026 | Nairobi | 1,500 USD | Register |
| 26/10/2026 to 30/10/2026 | Mombasa | 1,750 USD | Register |
| 23/11/2026 to 27/11/2026 | Nairobi | 1,500 USD | Register |
| 23/11/2026 to 27/11/2026 | Mombasa | 1,750 USD | Register |
| 23/11/2026 to 27/11/2026 | Kigali | 2,500 USD | Register |
| 28/12/2026 to 01/01/2027 | Nairobi | 1,500 USD | Register |
| 28/12/2026 to 01/01/2027 | Dubai | 4,900 USD | Register |
| 28/12/2026 to 01/01/2027 | Mombasa | 1,750 USD | Register |
| 25/01/2027 to 29/01/2027 | Nairobi | 1,500 USD | Register |
| 22/02/2027 to 26/02/2027 | Nairobi | 1,500 USD | Register |
| 22/03/2027 to 26/03/2027 | Nairobi | 1,500 USD | Register |
| 26/04/2027 to 30/04/2027 | Nairobi | 1,500 USD | Register |
Course Introduction
Solar thermal technology has become a vital component of the global transition toward clean, sustainable, and energy-efficient solutions for residential, commercial, industrial, and utility-scale applications. By converting solar radiation into usable thermal energy, solar thermal systems provide reliable heating for water, space conditioning, industrial processes, desalination, and power generation. Solar Thermal Systems Design and Operation Training Course provides participants with comprehensive knowledge of solar thermal technologies, system design methodologies, operation, maintenance, performance optimization, and international engineering standards required for successful renewable energy projects.
Modern solar thermal installations integrate advanced technologies including flat-plate collectors, evacuated tube collectors, concentrating solar power systems, thermal storage units, heat exchangers, circulation pumps, piping networks, controllers, and automated monitoring equipment. Designing and operating these systems requires a strong understanding of heat transfer, fluid mechanics, thermodynamics, solar radiation, energy storage, and mechanical engineering principles. This course examines the engineering concepts governing solar thermal systems while emphasizing practical approaches for system sizing, equipment selection, installation, commissioning, troubleshooting, and lifecycle performance improvement.
Participants will develop practical expertise in collector technologies, thermal energy storage, hydraulic circuit design, circulation systems, heat exchangers, pumps, control systems, piping layouts, insulation, instrumentation, system monitoring, maintenance planning, and energy performance analysis. Through engineering calculations, design exercises, simulation workshops, industrial case studies, and real-world operational scenarios, participants will learn how to evaluate system efficiency, diagnose operational problems, optimize energy output, improve equipment reliability, and maximize return on renewable energy investments.
The course also explores internationally recognized renewable energy standards, solar thermal design codes, environmental regulations, occupational safety requirements, quality assurance systems, commissioning procedures, reliability-centered maintenance methodologies, lifecycle asset management, and engineering documentation applicable to domestic, commercial, industrial, district heating, and concentrated solar power installations. Participants will gain practical knowledge in inspection procedures, maintenance auditing, performance verification, risk management, and engineering reporting while supporting sustainable energy development and regulatory compliance.
Emerging technologies continue to transform solar thermal engineering through artificial intelligence, Industrial Internet of Things connectivity, digital twins, predictive maintenance platforms, advanced thermal storage materials, smart energy management systems, hybrid solar technologies, concentrated solar power innovations, hydrogen production integration, cloud-based monitoring, and Industry 4.0 applications. This course introduces participants to these innovations while examining decarbonization strategies, smart grids, energy storage integration, digital asset management, and intelligent renewable energy systems that improve efficiency, reliability, operational flexibility, and environmental sustainability.
Upon successful completion of this course, participants will possess the technical competence to design, operate, inspect, maintain, and optimize solar thermal systems using internationally accepted engineering principles and advanced renewable energy technologies. The acquired knowledge will enable professionals to improve thermal energy production, maximize system efficiency, reduce operating costs, strengthen environmental compliance, optimize equipment reliability, extend asset service life, and contribute effectively to sustainable energy development initiatives.
Duration
5 days
Who Should Attend
Mechanical Engineers
Renewable Energy Engineers
Energy Engineers
Solar Thermal System Designers
Project Engineers
Maintenance Engineers
Plant Engineers
HVAC Engineers
Process Engineers
Utility Engineers
Operations Engineers
Reliability Engineers
Engineering Consultants
Facility Managers
Technical Supervisors
Asset Management Engineers
Solar Energy Technicians
Sustainability Professionals
Engineering Graduates
Energy Project Managers
Course Objectives
Understand the engineering principles governing solar thermal energy conversion, heat transfer, thermodynamics, and system integration to improve renewable energy performance and operational efficiency.
Apply internationally recognized solar thermal engineering standards, design methodologies, and installation best practices to ensure reliable, safe, and efficient system operation.
Evaluate solar collectors, thermal storage systems, heat exchangers, circulation pumps, piping networks, insulation materials, and control systems using engineering analysis techniques.
Perform thermal performance calculations, system sizing, hydraulic design, equipment selection, and commissioning activities that maximize energy output and equipment reliability.
Analyze solar radiation, energy demand profiles, thermal storage requirements, and operating conditions to optimize system efficiency and long-term operational performance.
Develop preventive and predictive maintenance programs utilizing condition monitoring technologies to improve equipment availability, reduce maintenance costs, and extend system service life.
Utilize engineering software, computerized monitoring platforms, digital simulation tools, and performance analytics to support effective system design, operation, and maintenance planning.
Identify hydraulic, thermal, mechanical, and control system faults using structured troubleshooting methodologies that improve operational reliability and maintenance effectiveness.
Explore emerging technologies including artificial intelligence, Industrial Internet of Things connectivity, digital twins, advanced thermal storage, hybrid solar technologies, and smart energy management systems.
Develop comprehensive solar thermal engineering strategies that improve sustainability, environmental compliance, operational safety, lifecycle performance, energy efficiency, and long-term renewable energy asset management.
Course Outline
Introduction to solar thermal energy principles and renewable heating technologies.
Solar radiation characteristics influencing thermal energy collection and performance.
Classification of solar thermal systems for residential, commercial, and industrial use.
International renewable energy standards, terminology, and engineering best practices.
Flat-plate collectors, evacuated tube collectors, and concentrating solar technologies.
Collector performance evaluation under varying environmental and operating conditions.
Materials selection supporting collector durability, efficiency, and long-term reliability.
Collector installation practices maximizing thermal energy production efficiency.
Sensible, latent, and thermochemical thermal energy storage technologies.
Heat exchangers supporting efficient energy transfer and system performance.
Thermal insulation materials reducing heat losses and improving efficiency.
Engineering calculations supporting thermal storage sizing and optimization.
Hydraulic system design including circulation pumps, valves, and piping layouts.
Pump selection supporting reliable fluid circulation and energy efficiency.
Expansion tanks, pressure control equipment, and hydraulic balancing procedures.
Mechanical system inspection improving operational reliability and safety.
Solar thermal controllers regulating energy production and operational efficiency.
Temperature, pressure, and flow measurement instrumentation applications.
Automated monitoring systems supporting intelligent system management.
Fault diagnosis using control systems and operational performance data.
Engineering methodologies for solar thermal system sizing and equipment selection.
Energy demand assessment supporting optimized renewable energy system design.
Simulation techniques evaluating annual thermal performance and efficiency.
Performance optimization strategies reducing operating costs and energy losses.
Preventive maintenance scheduling supporting long-term equipment performance.
Reliability-centered maintenance improving system availability and lifecycle value.
Inspection procedures identifying mechanical, hydraulic, and thermal system defects.
Spare parts planning supporting efficient maintenance resource management.
Compliance with international renewable energy regulations and engineering standards.
Safe installation, operation, and maintenance of solar thermal equipment.
Environmental sustainability practices supporting clean energy objectives.
Asset lifecycle management improving investment returns and operational performance.
Artificial intelligence supporting predictive maintenance and operational optimization.
Industrial Internet of Things connectivity enabling continuous system monitoring.
Digital twins, cloud-based monitoring, and advanced thermal analytics platforms.
Hybrid renewable systems, hydrogen integration, and smart energy technologies.
International best practices in solar thermal engineering and maintenance.
Sustainable energy strategies reducing emissions and operating costs.
Digital transformation supporting intelligent renewable energy asset management.
Future innovations in solar thermal technologies, energy storage, and Industry 4.0 applications.
Training Approach
This course will be delivered by our skilled trainers who have vast knowledge and experience as expert professionals in the fields. The course is taught in English and through a mix of theory, practical activities, group discussion and case studies. Course manuals and additional training materials will be provided to the participants upon completion of the training.
Tailor-Made Course
This course can also be tailor-made to meet organization requirement. For further inquiries, please contact us on: Email: training@upskilldevelopment.com Tel: +254 721 331 808
Training Venue
The training will be held at our Upskill Training Centre. We also offer training for a group (at a discount of 10% to 50%) at requested location all over the world. The Onsite course fee covers the course tuition, training materials, two break refreshments, buffet lunch, airport transfers, Upskill gift package, and guided tour.
Visa application, travel expenses, dinners, accommodation, insurance, and other personal expenses are catered by the participant
Certification
Participants will be issued with Upskill certificate upon completion of this course.
Airport Pickup and Accommodation
Airport pickup and accommodation is arranged upon request. For booking contact our Training Coordinator through Email: training@upskilldevelopment.com, +254 721 331 808
Terms of Payment:
Unless otherwise agreed between the two parties’ payment of the course fee should be done 3 working days before commencement of the training so as to enable us to prepare better.
| Training Mode | Platform | Fee | Enroll |
|---|---|---|---|
| Online Training | Zoom/ Google Meet | 900USD | Register |
| Course Date | Location | Fee | Enroll |
|---|---|---|---|
| 28/09/2026 to 02/10/2026 | Nairobi | 1,500 USD | Register |
| 28/09/2026 to 02/10/2026 | Mombasa | 1,750 USD | Register |
| 28/09/2026 to 02/10/2026 | Dubai | 4,900 USD | Register |
| 26/10/2026 to 30/10/2026 | Nairobi | 1,500 USD | Register |
| 26/10/2026 to 30/10/2026 | Mombasa | 1,750 USD | Register |
| 23/11/2026 to 27/11/2026 | Nairobi | 1,500 USD | Register |
| 23/11/2026 to 27/11/2026 | Mombasa | 1,750 USD | Register |
| 23/11/2026 to 27/11/2026 | Kigali | 2,500 USD | Register |
| 28/12/2026 to 01/01/2027 | Nairobi | 1,500 USD | Register |
| 28/12/2026 to 01/01/2027 | Dubai | 4,900 USD | Register |
| 28/12/2026 to 01/01/2027 | Mombasa | 1,750 USD | Register |
| 25/01/2027 to 29/01/2027 | Nairobi | 1,500 USD | Register |
| 22/02/2027 to 26/02/2027 | Nairobi | 1,500 USD | Register |
| 22/03/2027 to 26/03/2027 | Nairobi | 1,500 USD | Register |
| 26/04/2027 to 30/04/2027 | Nairobi | 1,500 USD | Register |
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