
Drilling and Blasting Course
Master every stage of the drill-and-blast cycle, from rock mechanics and explosive selection to blast design, hazard control, and performance optimization. This course delivers the technical knowledge and practical frameworks that mining, quarrying, tunneling, and civil excavation professionals need to execute safe, compliant, and cost-effective blasting operations.
What you will learn:
You will build a complete understanding of rock properties, drilling equipment, and commercial explosives before moving into systematic blast design for both surface and underground operations. You will learn how to calculate geometric parameters, select initiation systems, and apply fragmentation prediction models. Hazard management covers flyrock, ground vibration, airblast, and toxic fumes, with guidance on writing regulatory-compliant management plans. You will also study post-blast inspection, root cause analysis, and data-driven optimization methods that reduce cost per tonne. Specialized topics include controlled blasting, stope and ring blasting, digital design software, and geotechnical integration.
How you study in practice Drilling and Blasting Course
How you practice Drilling and Blasting Course
For companies that want to train their team
With Dedika for Business, 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 detailsFoundations of Drilling and Blasting
Foundations of Drilling and Blasting
Lesson 1 • Industry Overview and Applications
Covers the scope of drilling and blasting across mining, quarrying, tunneling, and civil works. Establishes context for all subsequent technical content.
Lesson 2 • Regulatory and Safety Framework
Outlines the regulatory environment, licensing requirements, and safety obligations governing explosives use. Establishes compliance expectations before any practical work begins.
Lesson 3 • Rock Properties and Classification
Introduces physical and mechanical rock properties that govern drillability and blastability. Connects material behavior to design decisions made throughout the course.
Lesson 4 • Stress and Fracture Mechanics Basics
Explains how stress waves propagate through rock and initiate fracture during a blast. Provides the physical basis for understanding explosive energy use.
Chapter 2HideHide detailsSee detailsDrilling Equipment and Operations
Drilling Equipment and Operations
Lesson 1 • Drilling Parameters and Control
Teaches feed force, rotation speed, flushing pressure, and penetration rate optimization. Controlled parameters directly affect hole straightness and explosive loading accuracy.
Lesson 2 • Drill Rig Types and Selection
Compares rotary, percussive, and rotary-percussive rigs across application scenarios. Guides selection based on rock strength, hole diameter, and depth requirements.
Lesson 3 • Drill Bit and Steel Selection
Covers bit geometry, button configurations, and steel grades suited to varying rock conditions. Proper selection reduces cost per meter and improves hole quality.
Lesson 4 • Drill Rig Maintenance and Troubleshooting
Covers preventive maintenance schedules, hydraulic system checks, and common fault diagnosis. Minimizes unplanned downtime and extends equipment service life.
Lesson 5 • Drill Pattern Layout and Surveying
Explains collar marking, burden and spacing layout, and hole inclination setting on bench and tunnel faces. Accurate layout is prerequisite to effective blast design.
Chapter 3HideHide detailsSee detailsExplosives: Types, Properties, and Handling
Explosives: Types, Properties, and Handling
Lesson 1 • Classification of Commercial Explosives
Distinguishes primary, secondary, and blasting agent categories by sensitivity, composition, and regulatory class. Classification determines storage, transport, and use requirements.
Lesson 2 • Explosives Storage and Transport
Details magazine construction standards, compatibility segregation, and transport regulations for explosives. Compliance prevents accidental initiation and legal liability.
Lesson 3 • Initiation Systems
Covers electric, non-electric, and electronic detonator systems, including delay timing principles. Initiation system choice controls fragmentation, vibration, and safety.
Lesson 4 • Safe Handling and Misfire Procedures
Establishes protocols for charging, stemming, and responding to misfires and hangfires. Correct procedures protect personnel from the most common explosive-related fatalities.
Lesson 5 • Explosive Performance Parameters
Quantifies detonation velocity, brisance, density, and energy output as design inputs. Understanding these parameters enables matching product to rock and geometry.
Chapter 4HideHide detailsSee detailsBlast Design Principles
Blast Design Principles
Lesson 1 • Fragmentation Prediction Models
Introduces empirical models such as Kuz-Ram and crush-zone approaches for predicting fragment size distribution. Predictions guide design adjustments before committing to a blast.
Lesson 2 • Powder Factor and Energy Distribution
Explains powder factor as a design control linking explosive mass to rock volume. Balancing energy distribution prevents overbreak, underbreak, and toe problems.
Lesson 3 • Geometric Design Parameters
Defines burden, spacing, subdrill, stemming length, and bench height as interdependent variables. Correct geometry is the primary driver of fragmentation and muck pile shape.
Lesson 4 • Blast Design Documentation
Establishes requirements for blast plans, charge sheets, and post-blast records. Proper documentation supports regulatory compliance and continuous improvement.
Lesson 5 • Delay Timing and Sequencing
Covers inter-row and inter-hole delay selection to control fragmentation, vibration, and throw direction. Timing design integrates initiation system capabilities with site constraints.
Chapter 5HideHide detailsSee detailsSurface Blasting Operations
Surface Blasting Operations
Lesson 1 • Quarry and Aggregate Production Blasting
Adapts bench blast design to aggregate quality, crusher feed size, and production rate targets. Fragmentation control directly affects downstream processing costs.
Lesson 2 • Exclusion Zone and Blast Clearance
Defines exclusion zone calculation, personnel evacuation, and all-clear procedures for surface operations. Exclusion zone management is the primary flyrock fatality prevention control.
Lesson 3 • Post-Blast Inspection and Assessment
Establishes systematic post-blast inspection for misfires, flyrock damage, and fragmentation quality. Assessment data feeds back into design improvement cycles.
Lesson 4 • Bench Blasting Setup and Execution
Covers hole loading sequence, primer placement, stemming, and surface tie-up procedures for bench blasts. Correct execution translates design intent into field results.
Lesson 5 • Civil Excavation and Controlled Blasting
Introduces presplit, trim, and smooth blasting techniques for slope stability and structure protection. Controlled blasting limits overbreak in sensitive civil environments.
Chapter 6HideHide detailsSee detailsUnderground Blasting Operations
Underground Blasting Operations
Lesson 1 • Development Heading Rounds
Covers drill pattern design, delay sequencing, and loading for full-face development headings. Efficient rounds maximize advance per blast and minimize re-drill.
Lesson 2 • Underground Blast Design Fundamentals
Adapts surface design principles to confined geometry, single free face, and limited burden conditions. Cut design is the critical difference from surface bench blasting.
Lesson 3 • Underground Ventilation After Blasting
Explains toxic fume generation, re-entry time calculation, and ventilation system requirements. Inadequate ventilation is a leading cause of underground blast-related fatalities.
Lesson 4 • Underground Misfire and Emergency Response
Details misfire protocols specific to underground confined spaces, including waiting times and disposal methods. Emergency response planning is mandatory before any underground blast.
Lesson 5 • Stope and Ring Blasting
Introduces long-hole stoping, ring blasting, and sublevel caving drill-and-blast methods. Stope design balances ore recovery with dilution and stability.
Chapter 7HideHide detailsSee detailsBlast Hazard Management
Blast Hazard Management
Lesson 1 • Dust and Fume Hazard Control
Addresses blast-generated dust, nitrogen oxide fumes, and carbon monoxide as occupational health hazards. Control measures include product selection, water use, and exposure monitoring.
Lesson 2 • Hazard Management Plan Development
Guides students through writing a site-specific blast hazard management plan integrating all identified controls. The plan format meets regulatory submission requirements.
Lesson 3 • Airblast and Overpressure Management
Explains airblast generation from exposed detonating cord, inadequate stemming, and face conditions. Overpressure limits protect structures and community amenity.
Lesson 4 • Ground Vibration Monitoring and Control
Covers peak particle velocity measurement, scaled distance law, and vibration limit compliance. Vibration control protects structures and maintains community and regulatory acceptance.
Lesson 5 • Flyrock Causes and Prevention
Analyzes mechanisms of flyrock generation from face, collar, and stemming ejection. Prevention controls are ranked by effectiveness and integrated into blast design.
Chapter 8HideHide detailsSee detailsBlast Performance Optimization
Blast Performance Optimization
Lesson 1 • Root Cause Analysis of Blast Failures
Applies structured root cause analysis to poor fragmentation, toe problems, and overbreak events. Identifying root causes prevents recurrence and drives design refinement.
Lesson 2 • Fragmentation Measurement Techniques
Covers image analysis software, sieve analysis, and muck pile profiling for quantifying fragmentation. Accurate measurement is the foundation of evidence-based design improvement.
Lesson 3 • Design Modification and Trial Blasts
Structures controlled trial blast programs to test design changes with measurable outcomes. Trial blast methodology isolates variables and validates improvements statistically.
Lesson 4 • Blast Performance KPIs and Benchmarking
Defines key performance indicators including powder factor, advance per round, and cost per tonne. Benchmarking against industry norms identifies improvement priorities.
Lesson 5 • Cost Optimization Across the Drill-Blast Cycle
Integrates drilling, explosive, and downstream processing costs into a total cost model. Optimization targets the lowest total cost, not just the lowest explosive cost.
Your valid completion certificate
This course is for you:
Drill and blast technician: ready to move into a supervisory or design role.
Mining engineering student: bridging classroom theory with real operational practice.
Quarry supervisor: needing structured technical grounding behind daily blasting decisions.
Civil construction foreman: expanding into excavation projects that require explosives knowledge.
Career changer from military demolition: translating explosive experience into civilian mining work.
Geotechnical technician: adding blasting competency to complement existing ground assessment skills.
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