
Graphics Card Repairing Course
Master every skill required to diagnose and repair modern video cards, from power delivery failures to BGA rework and display output faults. This course covers GPU architecture, schematic reading, advanced soldering, and quality control in a single structured programme. Whether you are starting a repair business or expanding your electronics skills, this is the most complete GPU repair training available.
What you will learn:
You will learn how GPU hardware is designed, how to read board schematics and datasheets, and how to use professional diagnostic instruments to locate faults before touching a soldering iron. The course covers power system repair, BGA removal and reballing, display output IC replacement, and video memory chip swaps. You will also learn how to handle liquid-damaged cards, recover corrupted BIOS firmware, and apply a repeatable quality control process to every repair. Business topics including pricing, parts sourcing, customer intake, and warranty management are included. By the end, you will have the technical knowledge and hands-on procedures to repair real cards and deliver verified results.
How you study in practice Graphics Card Repairing Course
How you practise Graphics Card Repairing 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 • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of GPU Architecture
Foundations of GPU Architecture
Lesson 1 • GPU Die and Core Structure
Covers shader clusters, render output units, and memory controllers inside the GPU die. Establishes the functional map technicians reference throughout all repair work.
Lesson 2 • Display Output and Signal Chain
Traces the signal path from framebuffer through TMDS/DisplayPort encoders to output connectors. Provides the baseline for diagnosing no-display and artifact faults.
Lesson 3 • Video Memory Types and Roles
Examines GDDR and HBM memory architectures, bus widths, and bandwidth implications. Connects memory specs to common failure symptoms observed during diagnosis.
Lesson 4 • Power Delivery Subsystem
Details VRM topology, inductors, capacitors, and MOSFETs that regulate GPU and memory voltages. Understanding this subsystem is prerequisite to all power-fault diagnosis.
Lesson 5 • PCIe Interface and Communication
Explains PCIe lane negotiation, power pins, and auxiliary connectors. Technicians use this knowledge to isolate interface faults from GPU-internal faults.
Chapter 2HideHide detailsSee detailsTools, Safety, and Workspace Setup
Tools, Safety, and Workspace Setup
Lesson 1 • Workspace Organisation and Safety
Addresses fume extraction, lighting, anti-fatigue matting, and component organisation. A well-organised bench reduces errors and protects technician health.
Lesson 2 • Measurement and Diagnostic Instruments
Covers multimeters, oscilloscopes, bench power supplies, and thermal cameras. Each instrument is matched to specific fault categories covered in later chapters.
Lesson 3 • Soldering and Rework Equipment
Introduces hot-air stations, soldering irons, infrared rework systems, and their calibration. Selecting the right tool for each joint type directly affects repair quality.
Lesson 4 • Chemical Supplies and Consumables
Details flux types, solder alloys, isopropyl alcohol, and thermal interface materials. Correct consumable selection prevents corrosion and ensures reliable joints.
Lesson 5 • Electrostatic Discharge Prevention
Covers ESD physics, wrist strap use, mat grounding, and ionizer placement. Proper ESD control prevents latent damage that causes callbacks after repair.
Chapter 3HideHide detailsSee detailsReading Schematics and Board Documentation
Reading Schematics and Board Documentation
Lesson 1 • Board View Software Usage
Introduces board view tools that overlay component locations on PCB images. Linking schematic nets to physical pads accelerates component location during repair.
Lesson 2 • Power Rail Mapping
Explains how to trace power rails from input connectors through VRMs to load points. Rail maps are the primary reference for voltage measurement sequences.
Lesson 3 • Schematic Symbol Conventions
Teaches resistor, capacitor, inductor, transistor, and IC symbols used in GPU schematics. Accurate symbol recognition is the entry point to all schematic-based diagnosis.
Lesson 4 • Signal Net Tracing Techniques
Covers net names, page cross-references, and bus notation for tracing data signals. Technicians apply these skills to locate open or shorted signal lines on the board.
Lesson 5 • Datasheet Interpretation
Teaches extraction of pinouts, electrical characteristics, and application circuits from IC datasheets. Datasheet data validates measurements and guides component replacement.
Chapter 4HideHide detailsSee detailsSystematic Fault Diagnosis Methods
Systematic Fault Diagnosis Methods
Lesson 1 • Symptom Classification Framework
Categorises faults as no-power, no-display, artifact, thermal, or intermittent. Classification directs the technician to the correct diagnostic branch immediately.
Lesson 2 • Voltage and Resistance Measurement
Details in-circuit resistance checks, diode mode testing, and live voltage measurement sequences. Measurements are interpreted against schematic reference values established in Chapter 3.
Lesson 3 • Thermal Fault Identification
Uses thermal cameras and freeze spray to locate hot spots and cold joints under load. Thermal data narrows fault location to a specific component or solder joint.
Lesson 4 • Visual Inspection Techniques
Covers macro and microscope inspection for burnt components, lifted pads, cracked solder, and corrosion. Visual findings often resolve diagnosis before any measurement is taken.
Lesson 5 • Fault Hypothesis and Verification
Teaches forming a testable fault hypothesis and designing a verification test before repair. This step prevents unnecessary component replacement and reduces repair time.
Chapter 5HideHide detailsSee detailsPower System Repair
Power System Repair
Lesson 1 • PWM Controller Diagnosis and Swap
Diagnoses failed PWM controllers by checking enable, feedback, and switching signals. Controller replacement restores phase switching when MOSFETs test good.
Lesson 2 • Post-Repair Power Validation
Defines the voltage measurement sequence and load test used to confirm full power system recovery. Validation data is recorded and compared against schematic reference values.
Lesson 3 • MOSFET Testing and Replacement
Covers in-circuit MOSFET testing, hot-air removal, pad cleaning, and replacement soldering. MOSFET failures are among the most frequent power-fault causes on modern cards.
Lesson 4 • Inductor and Capacitor Replacement
Addresses shorted inductors, failed bulk capacitors, and failed ceramic capacitors in VRM circuits. Passive component replacement restores ripple performance and rail stability.
Lesson 5 • Short-Circuit Isolation Procedures
Uses current-limited bench supply injection to locate shorted rails without board damage. Isolating the short before component removal prevents collateral damage.
Chapter 6HideHide detailsSee detailsBGA Rework and GPU Reballing
BGA Rework and GPU Reballing
Lesson 1 • BGA Placement and Reflow
Covers optical alignment, flux application to pads, chip placement, and final reflow cycle. X-ray or dye-and-pry testing confirms joint quality after reflow.
Lesson 2 • BGA Removal Techniques
Demonstrates infrared and hot-air BGA removal with board preheating and chip lifting. Controlled removal preserves pad integrity for subsequent reballing.
Lesson 3 • Thermal Profile Design
Covers preheat, soak, reflow, and cooling ramp rates for lead-free and leaded BGA profiles. Correct profiles prevent PCB delamination and ensure full ball reflow.
Lesson 4 • BGA Fundamentals and Failure Modes
Explains BGA ball composition, underfill types, and common failure modes including cracked balls and delamination. This context guides rework temperature profile selection.
Lesson 5 • Reballing Process
Details stencil selection, flux application, ball placement, and reflow for reballing GPU and memory chips. Uniform ball height is verified before board placement.
Chapter 7HideHide detailsSee detailsDisplay Output and Memory Fault Repair
Display Output and Memory Fault Repair
Lesson 1 • Display Output IC Replacement
Covers removal and replacement of DisplayPort and HDMI output ICs using hot-air and stencil techniques. Correct IC orientation and pad preparation are verified before reflow.
Lesson 2 • Artifact Fault Diagnosis
Identifies artifact causes including memory errors, GPU core damage, and signal integrity issues. Artifact pattern analysis directs the technician to the correct repair action.
Lesson 3 • No-Display Fault Diagnosis
Traces the display signal chain from GPU encoder through output IC to connector to isolate no-display faults. Distinguishes GPU-side failures from output-stage component failures.
Lesson 4 • Video Memory Chip Replacement
Applies BGA rework skills from Chapter 6 to remove and replace failed GDDR memory chips. Memory bus termination resistors are inspected and replaced as needed.
Lesson 5 • Post-Repair Display and Memory Testing
Runs display output tests, memory stress utilities, and artifact detection tools to confirm full repair. Pass criteria are defined and results are documented for the repair record.
Chapter 8HideHide detailsSee detailsAdvanced Repair Strategies and Quality Control
Advanced Repair Strategies and Quality Control
Lesson 1 • Previously Repaired Card Assessment
Identifies signs of prior rework including pad damage, wrong components, and flux residue. Assessment findings determine whether the card is repairable or beyond economic repair.
Lesson 2 • Pad and Trace Repair Techniques
Covers lifted pad re-anchoring, trace jumper wiring, and via repair using conductive epoxy. These techniques recover boards that would otherwise be scrapped.
Lesson 3 • Multi-Fault Repair Sequencing
Teaches prioritisation and sequencing when multiple independent faults are present on one card. Correct sequencing prevents masking secondary faults and reduces total repair time.
Lesson 4 • BIOS and Firmware Considerations
Addresses BIOS chip reading, flashing, and recovery for cards with corrupted or mismatched firmware. Correct firmware is required before final functional testing.
Lesson 5 • Quality Control and Final Validation
Defines a repeatable QC checklist covering visual, electrical, thermal, and functional tests. Consistent QC application produces documented proof of repair quality for every card.
Your valid completion certificate
This course is for you:
Electronics hobbyist: wants to move beyond basic repairs into GPU-level work.
PC repair technician: ready to add high-value GPU services to their shop.
IT professional: looking to branch into hardware repair as a side income stream.
Career changer: drawn to hands-on technical work with strong market demand.
Gaming enthusiast: tired of discarding failed cards and wants to fix them.
Freelance repair tech: needs structured GPU training to handle complex client jobs.
What our students say
Your lessons are perfect. I purchased the one-year package and finally have the opportunity to follow various topics of my interest without needing to change platforms... I'm grateful for everything you do, I've already recommended you to other people...

I like how the lessons are straight to the point and how I can change chapters and skip content I don't need.

I like the content and the way videos are presented and transcribed, which speeds up the process!

The platform is fast, simple to use. The diversity of content and complementary videos help a lot with learning.

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