
Underground Mining Course
This Underground Mining Course gives you a complete, practical command of every major discipline in underground mining — from geology and blast design to ground control, ventilation, and mine safety. Whether you're entering the industry or advancing your career, you'll gain the technical knowledge and decision-making skills that mines demand. Get job-ready with training built around real operational challenges.
What you will learn:
You'll cover the full scope of underground mining operations, starting with geological interpretation and ore body characterization, then moving through shaft and decline development, drilling and explosives, and ground support design. You'll study every major mining method — from room-and-pillar to block caving — and learn how to match each method to specific ore body conditions. Mine services including ventilation, dewatering, and power distribution are covered in detail, alongside safety management, hazard control, and emergency response. You'll also explore mine planning, cost estimation, environmental management, and digital automation technologies.
How you study in practice Underground Mining Course
How you practice Underground Mining 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 • 41 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Underground Mining
Foundations of Underground Mining
Lesson 1 • Regulatory Framework and Compliance Basics
Introduces the structure of mining regulations, permitting, and inspection regimes without referencing specific codes. Students understand compliance obligations and enforcement mechanisms.
Lesson 2 • Underground vs. Surface Mining Comparison
Contrasts extraction geometries, cost structures, and environmental footprints of both methods. Clarifies when underground methods are economically and technically justified.
Lesson 3 • History and Evolution of Underground Mining
Traces mining from ancient hand-dug tunnels to modern mechanized operations. Establishes historical context that frames current practices and safety imperatives.
Lesson 4 • Key Terminology and Industry Concepts
Defines essential vocabulary including stope, drift, adit, shaft, and ore grade. Shared language enables precise communication throughout the course.
Lesson 5 • Roles and Organizational Structure
Maps the mine organizational hierarchy from owner to face worker and defines each role's responsibilities. Provides context for teamwork and accountability in subsequent chapters.
Chapter 2HideHide detailsSee detailsGeology and Ore Body Characterization
Geology and Ore Body Characterization
Lesson 1 • Rock Mass Classification Systems
Applies RMR, Q-system, and GSI to quantify rock mass quality for support design. Classification outputs feed directly into ground support and excavation stability decisions.
Lesson 2 • Ore Body Geometry and Grade Distribution
Analyzes ore body shape, dip, strike, thickness, and grade variability using drill-hole data. Accurate geometry models drive stope design and resource estimation.
Lesson 3 • Structural Geology for Miners
Explains faults, folds, joints, and discontinuities and their influence on ore body continuity. Understanding structure reduces surprises during development and production.
Lesson 4 • Rock Types and Mineral Identification
Covers igneous, sedimentary, and metamorphic rock classification and common ore minerals. Accurate identification underpins all subsequent geological and geotechnical assessments.
Lesson 5 • Hydrogeology and Groundwater Impacts
Examines groundwater occurrence, inflow prediction, and dewatering requirements in underground settings. Uncontrolled water is a leading cause of instability and operational disruption.
Chapter 3HideHide detailsSee detailsUnderground Mine Access and Development
Underground Mine Access and Development
Lesson 1 • Raise and Winze Construction
Addresses raise boring, Alimak climbing, and conventional raise methods for vertical connections. Raises provide ventilation, ore passes, and secondary egress between levels.
Lesson 2 • Level and Crosscut Development
Explains the systematic development of levels, crosscuts, and ore drives from access excavations. Proper level spacing and layout maximize ore recovery and minimize dilution.
Lesson 3 • Shaft Sinking Methods and Design
Covers conventional drill-and-blast and raise-bore shaft sinking, lining, and equipping. Shaft design decisions affect hoisting capacity and mine life economics.
Lesson 4 • Development Planning and Scheduling
Integrates access design into a development schedule that meets production ramp-up targets. Students apply critical-path logic to sequence development ahead of stoping.
Lesson 5 • Decline and Adit Construction
Details decline gradient selection, adit portal design, and excavation sequencing for ramp access. Declines enable trackless equipment access and flexible ore haulage.
Chapter 4HideHide detailsSee detailsDrilling, Blasting, and Explosives
Drilling, Blasting, and Explosives
Lesson 1 • Underground Drilling Equipment and Techniques
Covers jumbo drill rigs, long-hole drills, and ITH hammers used in development and production. Equipment selection and drill accuracy directly affect blast performance.
Lesson 2 • Blast Monitoring and Post-Blast Assessment
Introduces vibration monitoring, air-blast measurement, and muck pile analysis after each blast. Feedback data drives continuous improvement of blast design parameters.
Lesson 3 • Blast Design Principles
Applies burden, spacing, stemming, and timing parameters to achieve target fragmentation. Systematic design reduces oversize, flyrock, and ground vibration.
Lesson 4 • Explosives Types and Properties
Classifies ANFO, emulsions, water gels, and detonators by sensitivity, energy, and water resistance. Matching explosive type to rock and water conditions optimizes fragmentation.
Lesson 5 • Explosives Storage, Handling, and Transport
Details magazine construction, inventory control, and underground transport protocols for explosives. Strict handling procedures prevent accidental initiation and theft.
Chapter 5HideHide detailsSee detailsGround Control and Rock Mechanics
Ground Control and Rock Mechanics
Lesson 1 • In-Situ Stress and Stress Redistribution
Explains virgin stress fields, stress concentration around excavations, and failure modes. Understanding stress redistribution is prerequisite to all support design decisions.
Lesson 2 • Ground Monitoring and Instrumentation
Introduces extensometers, convergence monitors, microseismic arrays, and visual inspection programs. Monitoring data triggers timely support upgrades before failure occurs.
Lesson 3 • Support Design and Empirical Methods
Applies rock mass classification-based charts and analytical methods to size support systems. Empirical design provides rapid, field-validated support recommendations.
Lesson 4 • Rock Failure Mechanisms
Covers structurally controlled, stress-induced, and squeezing failure modes and their indicators. Identifying the failure mechanism determines the appropriate support strategy.
Lesson 5 • Ground Support Elements and Systems
Details rock bolts, cable bolts, shotcrete, mesh, and steel sets as individual and combined systems. Support elements are selected and combined to match the failure mechanism.
Chapter 6HideHide detailsSee detailsUnderground Mining Methods
Underground Mining Methods
Lesson 1 • Method Selection Decision Framework
Applies a structured matrix comparing geotechnical, economic, and operational factors across all methods. Students practice method selection using realistic ore body scenarios.
Lesson 2 • Sublevel Caving and Block Caving
Introduces mass mining principles, draw control, and fragmentation management for caving methods. Caving methods achieve high tonnage at low cost in large, low-grade deposits.
Lesson 3 • Cut-and-Fill Mining
Details horizontal slice extraction, fill placement, and cycle management for cut-and-fill operations. The method suits irregular ore bodies and weak hanging walls.
Lesson 4 • Open Stoping and Sublevel Stoping
Covers drill pattern design, blast sequencing, and void management for open and sublevel stoping. These methods suit competent rock and steeply dipping ore bodies.
Lesson 5 • Longwall and Shortwall Mining
Covers powered support systems, shearer operation, and goaf management for coal and soft-rock longwall panels. Panel design balances productivity with ground control requirements.
Lesson 6 • Room-and-Pillar Mining
Explains room layout, pillar sizing, and retreat sequencing for flat-lying tabular deposits. Pillar design is critical to surface subsidence control and worker safety.
Chapter 7HideHide detailsSee detailsUnderground Mine Services and Infrastructure
Underground Mine Services and Infrastructure
Lesson 1 • Electrical Power Distribution Underground
Covers substation placement, cable sizing, earthing, and protection systems for underground power networks. Safe power distribution is essential for equipment reliability and personnel safety.
Lesson 2 • Auxiliary Ventilation and Dust Control
Covers forcing and exhausting auxiliary fans, duct selection, and wet drilling for dust suppression. Auxiliary ventilation delivers fresh air to development headings beyond the main circuit.
Lesson 3 • Communications and Tracking Systems
Introduces leaky-feeder radio, fiber-optic networks, and personnel tracking technologies for underground use. Reliable communication enables rapid emergency response and production coordination.
Lesson 4 • Mine Ventilation Principles and Design
Applies fan laws, airway resistance, and heat load calculations to design primary ventilation circuits. Adequate airflow controls diesel fumes, dust, and blasting gases.
Lesson 5 • Mine Dewatering Systems
Designs sump networks, pump selection, and rising main configurations to manage groundwater inflow. Reliable dewatering prevents flooding and maintains safe working conditions.
Chapter 8HideHide detailsSee detailsMine Safety, Health, and Emergency Management
Mine Safety, Health, and Emergency Management
Lesson 1 • Hazard Identification and Risk Assessment
Applies systematic hazard identification, risk ranking, and control hierarchy to underground workplaces. Risk assessment outputs drive the selection of engineering and administrative controls.
Lesson 2 • Incident Investigation and Reporting
Applies root-cause analysis methods to investigate incidents and generate corrective actions. Systematic investigation prevents recurrence and fulfills regulatory reporting obligations.
Lesson 3 • Major Underground Hazards and Controls
Addresses falls of ground, inrush, fire, gas, and equipment collision as the leading fatal hazards. Each hazard is paired with specific engineering and behavioral controls.
Lesson 4 • Personal Protective Equipment and Standards
Specifies PPE requirements for noise, dust, chemical, and impact hazards in underground environments. Correct PPE selection and fit-testing are verified through practical assessment.
Lesson 5 • Emergency Response Planning
Develops mine emergency response plans covering evacuation, refuge chambers, and rescue coordination. Plans are tested through tabletop and live drills to verify effectiveness.
Your valid completion certificate
This course is for you:
Mining technicians: ready to move from surface roles underground.
Geology graduates: seeking applied operational context for their degree.
Civil engineers: transitioning into resource extraction and mine infrastructure.
Safety officers: expanding expertise into underground-specific hazard management.
Career changers: drawn to mining from construction or heavy industry backgrounds.
Mine supervisors: formalizing hands-on experience with structured technical knowledge.
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