
PV*SOL Training
Master PV*SOL from the ground up and design solar systems that win client approval. This hands-on training covers everything from 3D shading analysis and battery storage to financial modelling and professional reporting. Whether you're sizing a residential rooftop or a large commercial array, you'll have the tools to deliver bankable, accurate proposals every time.
What you'll learn:
Configure grid-tied and off-grid PV systems with accurate inverter and string sizing.
Build detailed 3D building models to quantify and reduce shading losses effectively.
Integrate battery storage systems and evaluate self-sufficiency gains through simulation.
Model consumption profiles to optimise self-consumption and annual energy balance results.
Perform financial analysis including NPV, IRR, and sensitivity scenarios for client proposals.
Produce branded, client-ready reports that meet professional and regulatory documentation standards.
How you study in practice PV*SOL Training
How you practise PV*SOL Training
For businesses looking to train their team
With Dedika for businesses, the course includes exercises and examples tailored to your own business and the way your company needs.
Course content
8 Chapters • 37 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsIntroduction to PV*SOL and Solar Basics
Introduction to PV*SOL and Solar Basics
Lesson 1 • PV Component Database Basics
Introduces the built-in component library for modules, inverters, and batteries. Students learn to search, filter, and interpret component datasheets.
Lesson 2 • PV*SOL Software Overview
Introduces the PV*SOL interface, menu structure, and project workflow. Students gain orientation before building their first project.
Lesson 3 • Climate and Location Data Setup
Explains how to import and configure climate datasets and geographic coordinates. Accurate location data directly affects simulation reliability.
Lesson 4 • Photovoltaic Energy Fundamentals
Covers solar radiation, PV cell physics, and energy conversion principles. Establishes the scientific basis needed for all subsequent simulation work.
Chapter 2HideHide detailsSee detailsBuilding a Basic Grid-Tied PV System
Building a Basic Grid-Tied PV System
Lesson 1 • Selecting and Placing PV Modules
Guides module selection, string configuration, and placement on the roof plane. Students apply series-parallel wiring logic to meet voltage and power targets.
Lesson 2 • Defining the Project Site
Covers entering site address, orientation, and shading horizon data. Correct site definition ensures realistic irradiance calculations throughout the project.
Lesson 3 • Inverter Selection and Configuration
Covers matching inverter capacity to array output and configuring MPP tracker inputs. Proper inverter sizing prevents clipping and maximises yield.
Lesson 4 • Running the First Simulation
Executes the simulation and reviews the energy yield report. Students identify key output metrics and understand what drives performance differences.
Chapter 3HideHide detailsSee details3D Visualisation and Shading Analysis
3D Visualisation and Shading Analysis
Lesson 1 • Adding Shading Objects
Covers placing trees, chimneys, neighbouring buildings, and other obstructions. Each object type affects the shading simulation differently.
Lesson 2 • Module Placement in 3D View
Demonstrates placing and aligning module strings directly on 3D roof surfaces. Visual placement reduces layout errors compared to 2D-only workflows.
Lesson 3 • Shading Loss Quantification
Analyses shading loss reports and identifies the most impactful obstructions. Students use this data to revise layouts and improve annual yield.
Lesson 4 • Optimising Layout for Minimum Shading
Applies iterative layout adjustments to reduce shading losses below acceptable thresholds. Students balance available roof area against shading impact.
Lesson 5 • Creating the 3D Building Model
Introduces the 3D editor tools for drawing roof planes, walls, and dormers. An accurate building model is the foundation for precise shading calculations.
Chapter 4HideHide detailsSee detailsConsumption Profiles and Self-Consumption
Consumption Profiles and Self-Consumption
Lesson 1 • Demand-Side Optimisation Strategies
Explores load shifting and appliance scheduling to increase self-consumption. Students apply these strategies within the simulation to compare outcomes.
Lesson 2 • Simulating Grid Feed-In and Draw
Models the interaction between PV generation, local consumption, and the grid. Students trace energy flows across a full annual simulation cycle.
Lesson 3 • Understanding Self-Consumption Metrics
Defines self-consumption rate and self-sufficiency ratio and explains their calculation. Students interpret these metrics to evaluate system economic value.
Lesson 4 • Entering Consumption Data
Covers manual entry, profile templates, and CSV import of load data. Accurate consumption input is essential for self-consumption calculations.
Chapter 5HideHide detailsSee detailsBattery Storage System Design
Battery Storage System Design
Lesson 1 • Grid Interaction with Storage
Models peak shaving, time-of-use optimisation, and grid feed-in limits with storage active. Students understand how storage changes grid energy flows.
Lesson 2 • Battery Technology Overview
Compares lithium-ion, lead-acid, and emerging battery chemistries relevant to residential and commercial PV. Technology choice affects sizing and simulation parameters.
Lesson 3 • Simulating and Evaluating Storage Performance
Runs storage simulations and analyses self-sufficiency gains, cycle counts, and degradation. Students compare storage scenarios to identify the best design.
Lesson 4 • Battery Sizing Methodology
Applies consumption and generation data to determine optimal storage capacity. Oversizing and undersizing trade-offs are quantified through simulation.
Lesson 5 • Configuring Storage in PV*SOL
Covers adding battery systems to the project, setting charge/discharge parameters, and linking to the inverter. Correct configuration ensures valid simulation output.
Chapter 6HideHide detailsSee detailsEconomic Analysis and Financial Modelling
Economic Analysis and Financial Modelling
Lesson 1 • Generating the Financial Report
Produces and customises the PV*SOL financial report for client delivery. Students format outputs to meet professional presentation standards.
Lesson 2 • Entering System Costs
Covers module, inverter, mounting, installation, and soft cost entry in PV*SOL. Complete cost data is required for accurate profitability calculations.
Lesson 3 • Sensitivity and Scenario Analysis
Tests how changes in energy price, yield, and cost assumptions affect financial outcomes. Sensitivity analysis reveals the most critical project risk factors.
Lesson 4 • Revenue and Incentive Configuration
Models Feed-in Tariffs, net metering credits, and applicable incentive structures. Revenue inputs directly determine payback period and net present value.
Lesson 5 • Key Financial Metrics
Calculates payback period, net present value, and internal rate of return from simulation data. Students interpret these metrics to assess project viability.
Chapter 7HideHide detailsSee detailsAdvanced System Configurations
Advanced System Configurations
Lesson 1 • Hybrid and Off-Grid System Design
Configures hybrid inverter systems and fully off-grid PV installations with backup generation. Students size generators and batteries for reliable off-grid supply.
Lesson 2 • Ground-Mount and Tracker Systems
Models fixed-tilt ground-mount arrays and single-axis tracker systems in PV*SOL. Tracker simulations require specific irradiance and geometry settings.
Lesson 3 • Large Commercial Array Design
Scales design methods to commercial rooftop and ground-mount systems with multiple inverters. Students manage string grouping, combiner boxes, and DC cabling.
Lesson 4 • Carport and Facade Installations
Configures PV carport canopies and building-integrated facade systems in the 3D editor. Non-standard mounting angles require adjusted tilt and azimuth inputs.
Lesson 5 • Multi-Building and Campus Projects
Manages projects spanning multiple buildings with shared or separate inverter systems. Students coordinate energy flows and consumption across building units.
Chapter 8HideHide detailsSee detailsProfessional Reporting and Project Delivery
Professional Reporting and Project Delivery
Lesson 1 • Client Presentation Techniques
Translates simulation outputs into clear, non-technical client narratives. Students practise presenting yield, savings, and payback data persuasively.
Lesson 2 • Report Structure and Content
Reviews all available PV*SOL report sections and their purpose in a client proposal. Students select and sequence content appropriate to each project type.
Lesson 3 • Customising Report Templates
Covers logo insertion, colour schemes, cover page design, and custom text blocks. Branded reports reinforce professional credibility with clients.
Lesson 4 • Quality Assurance and Final Review
Applies a systematic checklist to verify simulation inputs, outputs, and report accuracy before delivery. QA prevents costly errors in submitted proposals.
Lesson 5 • Technical Documentation Standards
Ensures simulation assumptions, data sources, and limitations are clearly documented. Transparent documentation supports regulatory review and client trust.
Your valid completion certificate
This course is for you:
Solar installer: ready to move into system design and proposal work.
Electrical engineer: expanding expertise into photovoltaic project development professionally.
Energy consultant: needing simulation software skills to strengthen client recommendations.
Architecture graduate: integrating building-integrated PV into sustainable design projects.
Career changer: entering the renewable energy sector with a technical foundation.
Project developer: requiring accurate yield and financial data for investor submissions.
What our students say
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