
Solar Energy System Designer Course
Master the complete solar energy system design process, from photovoltaic physics and site assessment to permitting, financial modeling, and client proposals. This course equips you with the technical skills and industry tools professionals use to design residential, commercial, and utility-scale PV systems. If you are ready to build a career in one of the fastest-growing energy sectors, this is where you start.
What you will learn:
You will learn how photovoltaic cells convert sunlight into electricity and how to assess solar resources at any project site. The course covers DC and AC electrical design, wire sizing, string calculations, and safety protection devices. You will work through grid-tied, off-grid, and hybrid system architectures, then apply simulation software to model energy yield and system performance. Mechanical mounting design, structural load fundamentals, and rooftop layout are covered in full. You will also navigate permitting requirements, utility interconnection processes, and applicable electrical codes. The course closes with financial analysis methods, incentive structures, and professional proposal preparation so you can deliver a complete, client-ready design package.
How you study in practice Solar Energy System Designer Course
How you practise Solar Energy System Designer Course
For companies looking to train their teams
With Dedika for Businesses, the course includes exercises and examples tailored to your own business and the specific needs of your company.
Course content
8 Chapters • 35 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Solar Energy
Foundations of Solar Energy
Lesson 1 • PV Module Construction and Types
Compares monocrystalline, polycrystalline, and thin-film technologies by efficiency and cost. Prepares students to select appropriate module types for given applications.
Lesson 2 • Core System Components Overview
Introduces inverters, batteries, charge controllers, and balance-of-system (BoS) parts. Provides a component map used throughout the entire course.
Lesson 3 • Photovoltaic Cell Physics
Explains the p-n junction, photon absorption, and electron-hole pair generation. Connects semiconductor behaviour to measurable electrical output.
Lesson 4 • Solar Radiation and the Sun
Covers solar spectrum, irradiance, and how Earth's atmosphere affects energy delivery. Establishes the physical basis for all subsequent system sizing calculations.
Chapter 2HideHide detailsSee detailsSolar Resource Assessment
Solar Resource Assessment
Lesson 1 • Shading Analysis Techniques
Teaches horizon profiling, near-shading object identification, and shading loss quantification. Directly feeds into energy yield and array layout decisions.
Lesson 2 • Site Survey and Data Collection
Covers on-site measurement protocols, roof assessment, and documentation standards. Produces the verified site data package required for system design.
Lesson 3 • Irradiance Data Sources and Tools
Surveys satellite-derived databases, ground measurement stations, and simulation software. Students learn to retrieve and validate site-specific irradiance datasets.
Lesson 4 • Solar Geometry and Sun Path
Covers declination, hour angle, azimuth, and altitude calculations. Enables accurate prediction of sun position for shading and tilt optimisation.
Chapter 3HideHide detailsSee detailsElectrical Fundamentals for PV Design
Electrical Fundamentals for PV Design
Lesson 1 • Electrical Safety and Protection Devices
Introduces overcurrent protection, grounding, arc-fault detection, and rapid shutdown. Connects safety device selection to applicable electrical safety standards.
Lesson 2 • Wire Sizing and Conduit Selection
Applies ampacity tables, temperature correction, and conduit fill rules to PV wiring. Produces code-compliant wire and conduit specifications for system drawings.
Lesson 3 • AC Electrical Concepts
Covers RMS values, frequency, power factor, and single- vs. three-phase systems. Prepares students to design grid-tied inverter output connections correctly.
Lesson 4 • DC Circuit Principles
Reviews voltage, current, resistance, and power relationships in DC circuits. Forms the mathematical backbone for all PV string and array calculations.
Lesson 5 • PV String and Array Electrical Behaviour
Analyses I-V and P-V curves, maximum power point, and mismatch losses. Enables correct string sizing and array configuration decisions.
Chapter 4HideHide detailsSee detailsPV System Types and Configurations
PV System Types and Configurations
Lesson 1 • Commercial and Utility-Scale Configurations
Introduces central inverters, combiner boxes, medium-voltage transformers, and SCADA basics. Bridges residential design knowledge to large-scale project requirements.
Lesson 2 • Hybrid and Battery Backup Systems
Examines grid-tied systems with battery storage, critical load panels, and transfer switching. Addresses growing demand for resilient solar-plus-storage installations.
Lesson 3 • Off-Grid System Architecture
Covers load-based sizing, battery bank design, and generator backup integration. Prepares students to design fully autonomous power systems for remote sites.
Lesson 4 • Grid-Tied System Architecture
Details utility interconnection, anti-islanding protection, and net metering concepts. Establishes the standard residential and commercial grid-tied design framework.
Chapter 5HideHide detailsSee detailsSystem Sizing and Energy Yield Modeling
System Sizing and Energy Yield Modeling
Lesson 1 • Load Analysis and Consumption Profiling
Teaches energy audit methods, appliance load inventories, and demand profile construction. Provides the consumption baseline that drives all sizing decisions.
Lesson 2 • Array and Inverter Sizing Calculations
Covers DC-to-AC ratio, string sizing windows, and inverter clipping analysis. Produces optimised array and inverter specifications for the design package.
Lesson 3 • Energy Simulation Software Application
Guides students through simulation tool setup, loss factor entry, and results interpretation. Validates sizing decisions with software-generated annual energy output reports.
Lesson 4 • Performance Ratio and Loss Analysis
Defines performance ratio, identifies loss categories, and benchmarks system quality. Enables designers to diagnose underperformance and improve design efficiency.
Lesson 5 • Tilt and Azimuth Optimisation
Uses irradiance modelling to find optimal panel tilt and azimuth for maximum annual yield. Balances energy gain against structural and aesthetic constraints.
Chapter 6HideHide detailsSee detailsMechanical Design and Mounting Systems
Mechanical Design and Mounting Systems
Lesson 1 • Carport and BIPV Applications
Examines canopy structural requirements, building-integrated PV facade systems, and aesthetic constraints. Expands design capability to non-traditional mounting contexts.
Lesson 2 • Rooftop Mounting System Design
Covers rafter attachment, flashing details, rail layout, and module clamp selection. Ensures weatherproof, structurally adequate rooftop installations.
Lesson 3 • Ground-Mount System Design
Addresses pile foundation types, tracker vs. fixed-tilt frames, and inter-row spacing. Prepares students to design ground arrays from foundation to module level.
Lesson 4 • Structural Load Fundamentals
Covers dead, live, wind, and seismic load types and their combination methods. Provides the structural analysis foundation required for mounting system selection.
Chapter 7HideHide detailsSee detailsPermitting, Standards, and Grid Interconnection
Permitting, Standards, and Grid Interconnection
Lesson 1 • Permit Application Preparation
Covers required drawing types, calculation submittals, and authority-having-jurisdiction expectations. Produces a permit-ready documentation package for a sample project.
Lesson 2 • Utility Interconnection Process
Explains application steps, technical screens, and agreement types for grid connection. Prepares students to manage the interconnection timeline and utility requirements.
Lesson 3 • Applicable Codes and Standards Overview
Maps electrical, building, and fire safety standards relevant to PV installations. Establishes the compliance framework used in all design documentation.
Lesson 4 • Inspection and Commissioning Compliance
Details inspection checklists, commissioning test procedures, and certificate-of-occupancy requirements. Ensures students can guide a project through final regulatory approval.
Chapter 8HideHide detailsSee detailsFinancial Analysis and Project Delivery
Financial Analysis and Project Delivery
Lesson 1 • Construction Handoff and Project Closeout
Covers design-to-installation handoff documents, as-built drawing requirements, and warranty records. Ensures a smooth transition from design to field execution and owner acceptance.
Lesson 2 • System Cost Estimation
Covers equipment, labour, permitting, and soft cost categories for accurate project budgeting. Provides the cost baseline for all financial performance calculations.
Lesson 3 • Client Proposal and Design Documentation
Structures a professional proposal with system summary, financial model, and design drawings. Integrates all prior course outputs into a client-ready deliverable.
Lesson 4 • Financial Performance Metrics
Calculates simple payback, NPV, IRR, and LCOE for residential and commercial projects. Enables designers to present compelling, data-driven investment cases to clients.
Lesson 5 • Incentives and Financing Structures
Surveys tax credits, rebates, renewable energy certificates, and third-party ownership models. Equips students to identify and apply available financial incentives for any project.
Your valid completion certificate
This course is for you:
Electricians: looking to specialise in solar and increase their earning potential.
Career changers: drawn to renewable energy and ready to build marketable technical skills.
Civil or mechanical engineers: expanding their expertise into photovoltaic system design.
Construction project managers: wanting to oversee solar installations with design-level knowledge.
Energy consultants: needing hands-on design skills to back up their advisory recommendations.
Recent STEM graduates: seeking a focused, industry-relevant credential in the solar sector.
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