
Thermal camera training
Master thermal imaging from the physics of infrared radiation to professional inspection reporting. This course covers camera hardware, calibration, image acquisition, and fault diagnosis across electrical, mechanical, and building applications. Gain the technical skills and practical knowledge employers and clients demand from a qualified thermographer.
What you will learn:
You will build a solid understanding of infrared physics, heat transfer, and emissivity before moving into hands-on camera operation, calibration procedures, and image acquisition techniques. The course covers fault detection in electrical panels, rotating machinery, and building envelopes, including insulation gaps, moisture intrusion, and air leakage. You will learn to use thermal analysis software, apply severity classification systems, and produce defensible inspection reports. Supplementary modules address drone-mounted thermal surveys, active thermography, predictive maintenance integration, and certification pathways.
How you study in practice Thermal camera training
How you practise Thermal camera training
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 Thermal Imaging
Fundamentals of Thermal Imaging
Lesson 1 • Infrared Radiation Basics
Covers the electromagnetic spectrum, infrared wavelengths, and how objects emit thermal energy. Establishes the physics foundation required for all subsequent camera operation topics.
Lesson 2 • Thermal Contrast and Resolution
Introduces thermal contrast, spatial resolution, and thermal sensitivity as image quality metrics. Provides criteria for evaluating camera suitability for specific tasks.
Lesson 3 • Emissivity and Surface Properties
Defines emissivity and its effect on accurate temperature measurement. Students learn why surface material and finish alter apparent thermal readings.
Lesson 4 • Heat Transfer Mechanisms
Explains conduction, convection, and radiation as they relate to thermal signatures. Connects heat transfer theory to observable patterns in thermal imagery.
Chapter 2HideHide detailsSee detailsThermal Camera Hardware and Components
Thermal Camera Hardware and Components
Lesson 1 • Detector Types and Technologies
Compares cooled and uncooled detector technologies, including microbolometer and photon detectors. Connects detector choice to sensitivity, cost, and application requirements.
Lesson 2 • Accessories and Ancillary Equipment
Reviews tripods, external displays, calibration sources, and data storage accessories. Students understand how accessories extend camera capability and improve workflow.
Lesson 3 • Camera Body and Controls
Familiarises students with physical controls, display interfaces, and ergonomic handling. Builds confidence in navigating menus and adjusting settings in the field.
Lesson 4 • Optical Systems and Lenses
Covers infrared-transmissive lens materials, focal lengths, and field-of-view calculations. Students learn to match lens selection to target distance and required detail.
Lesson 5 • Camera Specifications and Selection Criteria
Teaches how to read and compare manufacturer specification sheets for key performance parameters. Enables informed equipment procurement decisions aligned with job requirements.
Chapter 3HideHide detailsSee detailsCamera Setup and Calibration
Camera Setup and Calibration
Lesson 1 • Non-Uniformity Correction Procedures
Explains flat-field correction and shutter-based non-uniformity correction cycles. Students learn when and how to trigger corrections to maintain image uniformity.
Lesson 2 • Pre-Inspection Equipment Checks
Establishes a systematic checklist for verifying camera readiness before deployment. Prevents measurement errors caused by overlooked hardware or software issues.
Lesson 3 • Focus and Image Optimisation
Covers manual and automatic focus techniques alongside contrast and level adjustments. Proper focus and palette selection directly affect anomaly detection reliability.
Lesson 4 • Emissivity and Atmospheric Settings
Guides students through entering emissivity, ambient temperature, humidity, and distance parameters. Accurate parameter entry is the primary driver of measurement precision.
Lesson 5 • Reference Source Calibration
Introduces blackbody reference sources for verifying and adjusting camera accuracy. Students validate measurement accuracy against traceable temperature standards.
Chapter 4HideHide detailsSee detailsImage Acquisition Techniques
Image Acquisition Techniques
Lesson 1 • Environmental Conditions and Timing
Identifies how solar loading, wind, rain, and time of day affect thermal image quality. Students plan inspections around optimal environmental windows for each application.
Lesson 2 • Dual-Sensor and Fusion Imaging
Introduces simultaneous visible-light and thermal image capture and fusion techniques. Fused images improve anomaly localisation and enhance report clarity for clients.
Lesson 3 • Camera Distance and Angle
Covers the relationship between working distance, angle of incidence, and measurement accuracy. Students position themselves to maximise thermal contrast and minimise reflection errors.
Lesson 4 • Steady-State vs. Transient Conditions
Distinguishes between steady-state thermal patterns and transient thermal events. Students recognise which condition is present and adapt acquisition strategy accordingly.
Lesson 5 • Image Capture and Storage Protocols
Establishes naming conventions, file formats, and metadata tagging for captured images. Consistent protocols enable efficient retrieval and analysis during reporting.
Chapter 5HideHide detailsSee detailsThermal Image Analysis and Interpretation
Thermal Image Analysis and Interpretation
Lesson 1 • Identifying Thermal Anomalies
Teaches systematic scanning patterns and anomaly recognition criteria across application domains. Students apply a structured approach to avoid missed findings.
Lesson 2 • Severity Classification Systems
Introduces temperature differential and risk-based severity classification frameworks. Students assign priority levels that guide maintenance scheduling and corrective action.
Lesson 3 • Temperature Measurement Tools
Covers spot meters, area analysis, line profiles, and isotherm tools within analysis software. Students extract quantitative temperature data to support objective severity ratings.
Lesson 4 • Colour Palettes and Temperature Scales
Explains how palette choice and scale range influence anomaly visibility and perception. Students select palettes that maximise contrast for the specific inspection type.
Lesson 5 • Artefacts and False Indications
Catalogues common image artefacts including reflections, atmospheric absorption, and vignetting. Students eliminate false positives before drawing diagnostic conclusions.
Chapter 6HideHide detailsSee detailsElectrical and Mechanical Inspections
Electrical and Mechanical Inspections
Lesson 1 • Electrical System Inspection Principles
Covers load requirements, safety protocols, and access procedures for energised electrical equipment. Students understand why minimum load thresholds are compulsory for valid thermal findings.
Lesson 2 • Common Electrical Fault Signatures
Identifies thermal patterns associated with loose connections, overloaded circuits, and failing components. Students correlate temperature differentials with specific fault types and urgency levels.
Lesson 3 • Comparative and Baseline Analysis
Establishes baseline thermal profiles for equipment and uses trend comparison to detect degradation. Trending over time improves diagnostic confidence and reduces false alarms.
Lesson 4 • Mechanical Equipment Inspection
Applies thermal imaging to motors, bearings, couplings, and drive systems to detect friction and wear. Students recognise early-stage mechanical degradation before failure occurs.
Lesson 5 • Reporting Electrical and Mechanical Findings
Structures findings into actionable maintenance reports with severity ratings and recommended actions. Students produce reports that maintenance teams can act on without additional interpretation.
Chapter 7HideHide detailsSee detailsBuilding Envelope and Energy Inspections
Building Envelope and Energy Inspections
Lesson 1 • Moisture and Water Intrusion Detection
Covers evaporative cooling signatures that reveal trapped moisture in roofs, walls, and floors. Students apply timing and environmental knowledge to maximise moisture detection accuracy.
Lesson 2 • Building Thermography Principles
Explains delta-T requirements, pressure differentials, and seasonal timing for valid building inspections. Students understand why environmental conditions determine inspection validity.
Lesson 3 • Energy Audit Integration
Integrates thermal findings into a broader energy audit framework alongside blower door and utility data. Students quantify heat loss areas and prioritise remediation by energy impact.
Lesson 4 • Insulation and Air Leakage Detection
Identifies thermal patterns caused by missing insulation, thermal bridging, and air infiltration. Students differentiate insulation defects from air leakage using pattern and location analysis.
Lesson 5 • HVAC and Mechanical System Scanning
Applies thermal imaging to ductwork, air handlers, and radiant systems within buildings. Students identify duct leakage, blocked airflow, and radiant system failures.
Chapter 8HideHide detailsSee detailsReporting, Documentation, and Quality Assurance
Reporting, Documentation, and Quality Assurance
Lesson 1 • Report Structure and Standards
Defines the required sections, image presentation standards, and metadata requirements for professional reports. Consistent structure ensures reports are auditable and comparable across inspections.
Lesson 2 • Record Keeping and Data Management
Covers long-term storage, retrieval, and security of thermal inspection records and raw image files. Proper data management supports trend analysis and liability protection.
Lesson 3 • Image Selection and Annotation
Teaches criteria for selecting representative images and applying clear, informative annotations. Well-annotated images are the primary evidence supporting each reported finding.
Lesson 4 • Quality Assurance and Peer Review
Establishes internal QA checklists and peer review processes for thermal inspection reports. Students identify and correct common errors before reports reach clients.
Lesson 5 • Thermal Analysis Software Workflows
Guides students through post-processing workflows in professional thermal analysis software. Efficient software use reduces report production time and improves measurement accuracy.
Your valid completion certificate
This course is for you:
Maintenance technician: wants to detect equipment faults earlier and reduce unplanned downtime.
Building inspector: needs a reliable method to find insulation gaps and moisture intrusion.
Electrical contractor: seeks to add thermal inspection as a billable diagnostic service.
Facilities manager: responsible for energy performance and wants data-backed remediation priorities.
Career changer: transitioning into NDT or predictive maintenance from a trade background.
Drone operator: looking to expand aerial survey services into thermal inspection work.
What our students say
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