
Pvsyst Software Training Course
Master PVsyst from the ground up and produce simulation results that hold up under financial due diligence. This course takes you through every stage of the PV design workflow, from meteorological data import to bankable yield reports. If you work in solar engineering, project development, or energy consulting, this is the technical training you need.
What you will learn:
You will learn how to set up and run accurate PV system simulations using PVsyst, covering solar fundamentals, meteorological data assessment, component configuration, and 3D shading analysis. The course walks you through every major loss parameter and shows you how to interpret simulation outputs, including performance ratio, specific yield, and loss diagrams. You will also apply advanced techniques such as bifacial modeling, single-axis tracker simulation, and long-term degradation analysis. By the end, you will be able to structure and deliver professional energy yield reports that meet investor and lender requirements.
How you study in practice Pvsyst Software Training Course
How you practice Pvsyst Software Training 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 way your company needs.
Course Content
8 Chapters • 39 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsIntroduction to PVsyst and Solar Fundamentals
Introduction to PVsyst and Solar Fundamentals
Lesson 1 • Creating and Managing Projects
Guides students through starting a new project, setting site parameters, and saving files. Proper project management prevents data loss and supports team collaboration.
Lesson 2 • Solar Energy Principles for PV Design
Covers irradiance, solar geometry, and energy conversion basics. Establishes the physical context needed to interpret PVsyst simulation parameters accurately.
Lesson 3 • Understanding PVsyst Simulation Types
Distinguishes preliminary design, project design, and grid-connected versus stand-alone modes. Students select the correct simulation type for each design scenario.
Lesson 4 • PVsyst Interface and Workspace Overview
Introduces the PVsyst desktop layout, menus, and project structure. Students locate core tools and understand the workflow from project creation to report export.
Chapter 2HideHide detailsSee detailsMeteorological Data and Site Assessment
Meteorological Data and Site Assessment
Lesson 1 • Importing and Validating Meteo Data
Demonstrates importing meteo files into PVsyst and running built-in validation checks. Identifying anomalies early prevents systematic errors in energy yield calculations.
Lesson 2 • Albedo and Transposition Models
Explains ground reflectance settings and irradiance transposition models available in PVsyst. Students select models appropriate to site conditions and tilt angles.
Lesson 3 • Horizon and Shading Profile Definition
Teaches manual and tool-assisted horizon line entry to account for far-field obstructions. Accurate horizon profiles directly reduce overestimation of annual irradiance.
Lesson 4 • Meteorological Data Sources and Formats
Reviews major global and regional irradiance databases and their data formats. Students evaluate source reliability and select appropriate datasets for their project location.
Lesson 5 • Site Assessment and Data Quality Reporting
Combines meteo inputs into a site assessment summary and documents data quality decisions. This section links data preparation to bankable energy yield reports.
Chapter 3HideHide detailsSee detailsPV Component Database and System Configuration
PV Component Database and System Configuration
Lesson 1 • Creating Custom PV Module Entries
Guides students through manually entering module parameters when manufacturer files are unavailable. Correct parameter entry ensures the one-diode model fits measured data.
Lesson 2 • Inverter Database and Selection
Covers inverter search, efficiency curve interpretation, and OND file import. Students match inverter capacity to array output for optimal system sizing.
Lesson 3 • System Sizing and Configuration
Applies sizing rules to determine string length, number of strings, and inverter count. Students use PVsyst's sizing assistant to validate configuration within equipment limits.
Lesson 4 • Navigating the PV Module Database
Explores the built-in module library, search filters, and parameter fields. Students identify key electrical parameters that drive simulation accuracy.
Lesson 5 • Battery and Storage Component Setup
Introduces battery database entries and charge controller parameters for stand-alone systems. Students configure storage components to match load and autonomy requirements.
Chapter 4HideHide detailsSee details3D Scene Design and Near-Field Shading
3D Scene Design and Near-Field Shading
Lesson 1 • Electrical Shading and String Layout Optimization
Links physical shading to electrical mismatch losses using the module layout editor. Students optimize string orientation to minimize partial shading impact on output.
Lesson 2 • Shading Loss Calculation and Analysis
Runs shading simulations and interprets isoshading diagrams and loss tables. Students identify critical shading periods and evaluate layout modifications.
Lesson 3 • Placing and Configuring PV Arrays in 3D
Demonstrates placing PV tables, setting tilt and azimuth, and defining row spacing. Correct placement ensures shading calculations reflect the physical installation.
Lesson 4 • Modeling Shading Obstacles
Covers adding buildings, trees, and structural elements as shading obstacles. Accurate obstacle geometry prevents underestimation of near-field shading losses.
Lesson 5 • Introduction to the 3D Scene Editor
Familiarizes students with the 3D editor interface, coordinate system, and object types. A well-constructed scene is the foundation for reliable shading loss calculations.
Chapter 5HideHide detailsSee detailsLoss Modeling and System Parameters
Loss Modeling and System Parameters
Lesson 1 • Inverter and System Availability Losses
Covers inverter efficiency losses, clipping, and system unavailability parameters. Students set realistic availability values based on O&M contracts and historical data.
Lesson 2 • Module Quality and Mismatch Losses
Explains LID, module quality, and mismatch loss parameters and their default versus custom values. Accurate loss entry prevents systematic overestimation of system output.
Lesson 3 • PVsyst Loss Diagram Overview
Introduces the loss diagram structure and the sequence from irradiance to AC output. Understanding loss categories enables systematic identification of yield improvement opportunities.
Lesson 4 • Optical and Soiling Losses
Covers incidence angle modifier (IAM) settings and soiling loss entry by month. Students select IAM models and set soiling values based on site environment and cleaning schedules.
Lesson 5 • DC and AC Wiring Losses
Guides students through calculating and entering DC ohmic losses and AC wiring losses. Correct wiring loss entry reflects actual cable sizing decisions made during engineering.
Chapter 6HideHide detailsSee detailsRunning Simulations and Interpreting Results
Running Simulations and Interpreting Results
Lesson 1 • Report Generation and Customization
Generates the standard PVsyst PDF report and customizes content for client deliverables. Students select relevant output sections and annotate results for professional presentation.
Lesson 2 • Analyzing the Loss Diagram Output
Interprets the simulation loss diagram to rank loss contributors by magnitude. Students use this analysis to prioritize design improvements and validate assumptions.
Lesson 3 • Simulation Execution and Settings
Walks through simulation run settings, time-step selection, and output variable configuration. Correct settings ensure simulation outputs match the resolution needed for analysis.
Lesson 4 • Key Performance Indicators Explained
Defines specific yield, performance ratio, and capacity factor as primary KPIs. Students calculate and benchmark these metrics against industry references for the site type.
Lesson 5 • Monthly and Hourly Output Analysis
Examines monthly energy tables and hourly output graphs to identify seasonal patterns. Temporal analysis supports grid integration planning and financial modeling inputs.
Chapter 7HideHide detailsSee detailsAdvanced Simulation Techniques
Advanced Simulation Techniques
Lesson 1 • Agrivoltaic and Non-Standard Layouts
Adapts PVsyst inputs for elevated, wide-pitch, and agrivoltaic array configurations. Students model non-standard geometries and assess their yield and shading trade-offs.
Lesson 2 • Single-Axis and Dual-Axis Tracking Systems
Models horizontal single-axis trackers and dual-axis systems including backtracking algorithms. Students compare fixed-tilt and tracking yield gains under different irradiance conditions.
Lesson 3 • Scripting and Batch Simulation
Introduces PVsyst's scripting interface for automating repetitive simulations across multiple variants. Batch processing accelerates sensitivity studies and portfolio-level analysis.
Lesson 4 • Long-Term Degradation Modeling
Applies annual degradation rates to project lifetime energy yield calculations. Students generate P50 and P90 production estimates accounting for module degradation over time.
Lesson 5 • Bifacial Module Simulation
Configures bifacial gain parameters including bifaciality factor, ground albedo, and mounting height. Students quantify rear-side irradiance contribution to annual energy yield.
Chapter 8HideHide detailsSee detailsUncertainty Analysis and Bankable Yield Reports
Uncertainty Analysis and Bankable Yield Reports
Lesson 1 • Sources of Uncertainty in PV Simulation
Categorizes uncertainty sources: meteo data, model accuracy, equipment parameters, and losses. Students assign uncertainty values to each source using industry guidance documents.
Lesson 2 • Quality Assurance and Peer Review Process
Establishes a QA workflow for checking simulation inputs, outputs, and report content before submission. Peer review reduces errors and strengthens report credibility with financiers.
Lesson 3 • Statistical Methods for Yield Uncertainty
Applies root-sum-of-squares and Monte Carlo methods to combine individual uncertainties. Students calculate combined uncertainty and derive P50, P75, and P90 yield estimates.
Lesson 4 • Interannual Variability Assessment
Quantifies interannual irradiance variability using long-term datasets and standard deviation analysis. Variability directly widens the P90 confidence interval in bankable reports.
Lesson 5 • Structuring the Bankable Yield Report
Organizes simulation outputs, assumptions, and uncertainty results into a lender-ready report structure. Students apply professional documentation standards for independent engineer review.
Your valid completion certificate
This course is for you:
Solar engineer: needs structured simulation skills to advance beyond entry-level tasks.
Project developer: must validate energy yield figures before submitting financing applications.
Energy consultant: wants to offer clients credible, defensible PV performance assessments.
Electrical engineer transitioning to renewables: brings circuit knowledge but lacks PV simulation experience.
Graduate student in renewable energy: building practical software skills alongside academic coursework.
O&M analyst: seeks to compare live plant performance against simulation benchmarks accurately.
What our students say
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