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Underground Mining Operations Course
More than 2 million students worldwide

Underground Mining Operations Course

Master every phase of underground excavation, from site investigation and ground support to drilling, blasting, and mechanical boring. This course gives working professionals and aspiring specialists the technical depth to plan, supervise, and manage complex underground operations safely and efficiently. Build the skills that serious projects demand.

Dedika for businesses

What you will learn:

This course covers the full scope of underground excavation operations, including geology fundamentals, rock mass classification, and regulatory compliance. You will learn to design blast rounds, operate tunnel boring machines, and build ventilation systems that protect workers and meet air quality standards. Ground support selection, mucking cycles, and haulage logistics are covered in practical detail. You will also develop project scheduling, cost estimation, and instrumentation monitoring skills. Supplementary modules address hydrogeology, digital technologies, environmental management, and underground leadership.

How you study in practice Underground Mining Operations Course

How you practise Underground Mining Operations Course

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Course content

8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Underground Excavation

  • Lesson 1 • Regulatory and Compliance Framework

    This section outlines occupational safety standards, environmental permits, and inspection requirements for underground work. It establishes the compliance mindset required before any excavation begins.

  • Lesson 2 • Site Investigation and Data Collection

    This section teaches borehole logging, geophysical surveys, and laboratory testing for site characterization. It directly informs excavation planning decisions covered in later chapters.

  • Lesson 3 • Geology Fundamentals for Excavators

    This section introduces rock and soil classification, structural geology, and groundwater basics. It provides the geological literacy needed to assess excavation conditions.

  • Lesson 4 • Industry Overview and Scope

    This section covers the range of underground excavation applications from mining to civil tunnelling. It connects industry scale to the safety and technical demands addressed throughout the course.

  • Lesson 5 • Excavation Method Classification

    This section surveys drill-and-blast, mechanical, and hybrid excavation methods. It enables students to match method selection to ground conditions and project objectives.

Chapter 2See details

Health, Safety, and Risk Management

  • Lesson 1 • Emergency Response Planning

    This section covers evacuation routes, refuge chambers, communication systems, and rescue coordination. It prepares students to develop and execute site-specific emergency response plans.

  • Lesson 2 • Underground Hazard Identification

    This section catalogues physical, chemical, and atmospheric hazards unique to confined underground environments. It provides the hazard vocabulary needed for all subsequent risk control work.

  • Lesson 3 • Safety Culture and Behavioural Safety

    This section examines leadership behaviours, safety observation programmes, and incident reporting culture. It links individual behaviour to systemic safety performance outcomes.

  • Lesson 4 • Risk Assessment Methodologies

    This section applies qualitative and quantitative risk assessment tools to underground scenarios. It connects hazard identification to structured decision-making for control selection.

  • Lesson 5 • Hierarchy of Controls Underground

    This section applies elimination, substitution, engineering, administrative, and PPE controls to underground hazards. It teaches prioritisation logic that underpins all safety planning.

Chapter 3See details

Ground Support and Reinforcement Systems

  • Lesson 1 • Rockbolt and Cable Bolt Systems

    This section covers resin-grouted, mechanically anchored, and cable bolt types, including installation procedures. It connects bolt selection to rock mass class and excavation geometry.

  • Lesson 2 • Ground Support Monitoring and Inspection

    This section introduces convergence measurement, extensometers, and visual inspection routines for support performance. Monitoring data feeds back into adaptive support design decisions.

  • Lesson 3 • Steel Sets and Lattice Girders

    This section covers selection, spacing, and erection of steel arch sets and lattice girders in poor ground. It addresses integration with shotcrete and rockbolts in composite support systems.

  • Lesson 4 • Rock Mass Classification Systems

    This section introduces RMR, Q-system, and GSI classification methods for quantifying rock mass quality. Classification outputs directly drive support design decisions in subsequent sections.

  • Lesson 5 • Shotcrete and Concrete Lining

    This section teaches wet-mix and dry-mix shotcrete application, mix design, and quality testing. It establishes shotcrete as a primary immediate support element in the support sequence.

Chapter 4See details

Drilling and Blasting Operations

  • Lesson 1 • Initiation Systems and Timing

    This section covers electric, non-electric, and electronic detonator systems with delay timing principles. Correct timing sequences reduce vibration and improve fragmentation quality.

  • Lesson 2 • Blast Pattern Design

    This section teaches cut hole geometry, burden and spacing calculations, and charge loading for development rounds. Proper design maximises advance per round while controlling overbreak.

  • Lesson 3 • Drilling Equipment and Techniques

    This section covers jumbo drill rigs, handheld drills, and rotary percussion methods for underground face drilling. It establishes drilling accuracy as the foundation of blast performance.

  • Lesson 4 • Post-Blast Procedures and Fume Control

    This section addresses re-entry protocols, misfire management, blast fume clearance, and face inspection. It ensures personnel safety and excavation quality after every blast round.

  • Lesson 5 • Explosive Types and Properties

    This section surveys ANFO, emulsions, water gels, and detonating cord, including sensitivity and energy output. Explosive selection criteria connect directly to blast design in the next section.

Chapter 5See details

Mechanical Excavation Methods

  • Lesson 1 • Mechanical Excavation Equipment Maintenance

    This section covers planned maintenance schedules, cutterhead interventions, and hydraulic system servicing for TBMs and roadheaders. Maintenance discipline directly determines machine availability and project schedule.

  • Lesson 2 • TBM Performance and Advance Rate

    This section covers penetration rate, utilisation, and cutter wear models for predicting TBM performance. It links ground conditions from Chapter 1 to achievable advance rates and cost forecasting.

  • Lesson 3 • Roadheader and Continuous Miner Operations

    This section covers boom-type roadheaders and continuous miners for soft to medium rock applications. It addresses cutting head selection, sumping sequences, and production cycle management.

  • Lesson 4 • Segment Lining and Precast Systems

    This section teaches precast concrete segment design, erection sequences, and gasket sealing for TBM-driven tunnels. Segment installation is the primary ground support method in mechanised tunnelling.

  • Lesson 5 • Tunnel Boring Machine Fundamentals

    This section introduces TBM types including open-face, EPB, and slurry shields, with cutterhead and thrust systems. It establishes TBM operating principles as the basis for performance and maintenance topics.

Chapter 6See details

Underground Ventilation and Air Quality

  • Lesson 1 • Emergency Ventilation and Smoke Control

    This section addresses fire smoke management, reversal procedures, and refuge chamber air supply during emergencies. Emergency ventilation planning is a compulsory component of site safety plans.

  • Lesson 2 • Ventilation Network Design

    This section applies Hardy-Cross and simulation software methods to design multi-split ventilation networks. Network design integrates airflow requirements from all active headings simultaneously.

  • Lesson 3 • Fan Types and Selection

    This section compares axial, centrifugal, and auxiliary fans, including characteristic curves and operating point analysis. Correct fan selection ensures adequate airflow at minimum energy cost.

  • Lesson 4 • Contaminant Control and Monitoring

    This section covers diesel particulate matter, blasting fumes, radon, and silica dust monitoring and control strategies. Monitoring data drives ventilation adjustments to maintain safe exposure levels.

  • Lesson 5 • Ventilation Principles and Airflow Mechanics

    This section covers natural ventilation, pressure-quantity relationships, and resistance in underground airways. These principles underpin all fan selection and network design work.

Chapter 7See details

Mucking, Haulage, and Materials Handling

  • Lesson 1 • Shaft and Vertical Transport Systems

    This section covers skip hoisting, cage systems, and vertical conveyor options for deep shaft muck removal. Vertical transport is the production bottleneck in deep underground operations.

  • Lesson 2 • Underground Haulage Systems

    This section compares rail haulage, rubber-tyred trucks, and conveyor belt systems for transporting muck to surface. System selection balances capital cost, flexibility, and production rate requirements.

  • Lesson 3 • Loading Equipment Selection and Operation

    This section covers LHD loaders, front-end loaders, and rail-mounted mucking machines for underground loading. Equipment selection depends on tunnel geometry, muck volume, and cycle time targets.

  • Lesson 4 • Muck Disposal and Waste Management

    This section addresses surface stockpile design, waste rock characterisation, and acid rock drainage prevention. Responsible disposal planning is required before excavation permits are issued.

  • Lesson 5 • Cycle Time Optimisation and Scheduling

    This section applies time-motion analysis and simulation to optimise the drill-blast-muck-support cycle. Efficient cycle management directly determines project advance rate and cost per metre.

Chapter 8See details

Project Planning and Advanced Operations

  • Lesson 1 • Cost Estimation and Budget Control

    This section teaches unit cost estimating, contingency allowances, and earned value management for underground works. Accurate cost control requires integration of production rates from all operational chapters.

  • Lesson 2 • Commissioning and Handover Procedures

    This section covers as-built documentation, structural acceptance testing, and operational handover for completed underground works. Proper handover ensures long-term asset performance and regulatory compliance.

  • Lesson 3 • Underground Project Scheduling

    This section covers critical path method, resource levelling, and schedule risk analysis for underground projects. Scheduling integrates all preceding operational elements into a coherent execution timeline.

  • Lesson 4 • Instrumentation and Performance Monitoring

    This section covers geotechnical instrumentation arrays, real-time data dashboards, and trigger action response plans. Monitoring systems provide the feedback loop for adaptive project management.

  • Lesson 5 • Complex Ground Condition Management

    This section addresses fault zones, squeezing ground, high water inflow, and mixed-face conditions with mitigation strategies. These scenarios require combining techniques from all previous core chapters.

Certification

Your valid completion certificate

This course is for you:

  • Mining engineer: ready to deepen technical expertise in underground operations.

  • Civil construction supervisor: transitioning from surface projects to tunnel work.

  • Geology graduate: seeking applied skills to enter the excavation industry.

  • Safety officer: expanding competency into underground hazard and risk environments.

  • Project manager: moving into underground infrastructure from general construction roles.

  • Military engineer: converting demolition and earthworks experience to civilian tunnelling.

What our students say

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