
Geotechnics Course
Master the core principles and practical tools of geotechnical engineering, from soil classification and site investigation to foundation design and slope stability. This course covers the full spectrum of geotechnics with rigorous, application-focused content. Build the technical competence to solve real-world ground engineering challenges with confidence.
What you will learn:
You will develop a thorough understanding of soil behavior, including how soils form, how they are classified, and how water moves through them. You will learn to plan and interpret site investigations using SPT, CPT, and geophysical methods. The course covers effective stress, consolidation theory, and shear strength so you can predict settlements and assess stability. You will design shallow and deep foundations, retaining structures, and slopes using established engineering methods. Supplementary topics include geotechnical earthquake engineering, ground improvement, numerical modeling, and environmental geotechnics.
How you study in practice Geotechnics Course
How you practice Geotechnics 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 • 39 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFundamentals of Soil Science
Fundamentals of Soil Science
Lesson 1 • Atterberg Limits and Plasticity
Defines liquid limit, plastic limit, and plasticity index for fine-grained soils. Links plasticity to clay mineralogy and engineering behavior.
Lesson 2 • Soil Composition and Phase Relationships
Examines the three-phase soil model of solids, water, and air. Introduces void ratio, porosity, degree of saturation, and unit weight calculations.
Lesson 3 • Soil Origin and Formation
Covers geological processes that produce residual and transported soils. Establishes the link between parent rock, weathering, and resulting soil behavior.
Lesson 4 • Grain Size Analysis and Classification
Teaches sieve and hydrometer testing to determine particle size distribution. Connects gradation curves to soil behavior and classification systems.
Lesson 5 • Soil Compaction Principles
Introduces Proctor compaction testing and the relationship between moisture content and dry density. Provides the basis for field compaction control.
Chapter 2HideHide detailsSee detailsSite Investigation and In-Situ Testing
Site Investigation and In-Situ Testing
Lesson 1 • Standard Penetration Test
Explains SPT procedure, energy correction, and N-value interpretation for soil classification and design. Highlights limitations and correction factors.
Lesson 2 • Geophysical and Groundwater Methods
Introduces seismic refraction, electrical resistivity, and groundwater monitoring techniques. Demonstrates how geophysics complements intrusive investigation.
Lesson 3 • Drilling and Sampling Methods
Describes rotary, percussion, and auger drilling techniques and associated samplers. Addresses sample quality, disturbance, and preservation for laboratory testing.
Lesson 4 • Cone Penetration Test
Presents CPT mechanics, soil behavior type classification, and derived geotechnical parameters. Compares CPT to SPT for different ground conditions.
Lesson 5 • Site Investigation Planning
Covers the phases of site investigation from desk study to intrusive exploration. Links investigation scope to project risk and ground complexity.
Chapter 3HideHide detailsSee detailsSoil Water and Permeability
Soil Water and Permeability
Lesson 1 • Soil Water States and Capillarity
Distinguishes free, capillary, and adsorbed water in soil pores. Explains capillary rise and its effect on effective stress near the water table.
Lesson 2 • Darcy's Law and Hydraulic Conductivity
Presents Darcy's law as the governing equation for laminar flow in soils. Covers laboratory and field methods for measuring hydraulic conductivity.
Lesson 3 • Drainage and Filter Design
Establishes criteria for granular and geosynthetic filters to prevent internal erosion. Applies filter rules to dam cores, retaining walls, and pavements.
Lesson 4 • Seepage Analysis and Flow Nets
Applies flow net construction to quantify seepage beneath and through earth structures. Connects seepage quantity to uplift pressure and piping risk.
Chapter 4HideHide detailsSee detailsEffective Stress and Consolidation
Effective Stress and Consolidation
Lesson 1 • Effective Stress Principle
Introduces Terzaghi's effective stress equation and its role in controlling soil strength and volume change. Applies the principle to hydrostatic and seepage conditions.
Lesson 2 • Settlement Calculation Methods
Applies consolidation parameters to compute immediate, primary, and secondary settlements. Compares methods for normally and over-consolidated clays.
Lesson 3 • Secondary Compression and Creep
Distinguishes secondary compression from primary consolidation and quantifies it with the secondary compression index. Addresses long-term settlement in organic soils.
Lesson 4 • One-Dimensional Consolidation Theory
Derives Terzaghi's consolidation equation and defines compression and recompression indices. Establishes the framework for predicting primary settlement.
Lesson 5 • Rate of Consolidation and Time Factor
Uses the time factor Tv to predict the degree of consolidation at any time. Introduces vertical drains as a method to accelerate consolidation.
Chapter 5HideHide detailsSee detailsShear Strength of Soils
Shear Strength of Soils
Lesson 1 • Drained and Undrained Strength
Distinguishes drained and undrained loading scenarios and their governing strength parameters. Applies the concept to short-term and long-term stability problems.
Lesson 2 • Strength of Clays and Soft Soils
Addresses sensitivity, anisotropy, and rate effects on clay shear strength. Introduces vane shear and field methods for soft ground characterization.
Lesson 3 • Strength of Sands and Gravels
Examines dilatancy, relative density, and their influence on friction angle in granular soils. Connects in-situ test results to design friction angles.
Lesson 4 • Laboratory Shear Strength Testing
Covers direct shear, triaxial, and unconfined compression tests for measuring strength parameters. Addresses sample preparation, drainage conditions, and data interpretation.
Lesson 5 • Mohr-Coulomb Failure Criterion
Presents the Mohr-Coulomb envelope as the fundamental shear strength model. Defines cohesion and friction angle for coarse- and fine-grained soils.
Chapter 6HideHide detailsSee detailsFoundation Engineering
Foundation Engineering
Lesson 1 • Shallow Foundation Settlement
Combines elastic and consolidation settlement methods for footing design. Addresses differential settlement limits and tolerable movement criteria.
Lesson 2 • Mat and Raft Foundation Design
Covers mat foundation analysis for heavily loaded or variable-soil conditions. Introduces the modulus of subgrade reaction and simplified beam-on-elastic-foundation models.
Lesson 3 • Pile Foundation Types and Capacity
Classifies driven and bored piles and calculates axial capacity from static and dynamic methods. Addresses group effects and negative skin friction.
Lesson 4 • Bearing Capacity of Shallow Foundations
Applies the general bearing capacity equation to strip, square, and circular footings. Incorporates shape, depth, and inclination factors for realistic conditions.
Lesson 5 • Pile Load Testing and Monitoring
Describes static load tests, dynamic high-strain testing, and integrity testing for pile verification. Links test results to design confirmation and acceptance criteria.
Chapter 7HideHide detailsSee detailsSlope Stability Analysis
Slope Stability Analysis
Lesson 1 • Limit Equilibrium Methods
Applies Fellenius, Bishop, and Janbu methods to compute the factor of safety for circular and non-circular slip surfaces. Compares method assumptions and accuracy.
Lesson 2 • Probabilistic and Numerical Slope Analysis
Introduces reliability-based slope analysis and finite element strength reduction methods. Addresses parameter uncertainty and its effect on design confidence.
Lesson 3 • Slope Stabilization Techniques
Presents drainage, regrading, reinforcement, and structural measures to improve slope safety. Evaluates cost-effectiveness and long-term performance of each method.
Lesson 4 • Stability of Embankments and Cuts
Analyzes end-of-construction and long-term stability of embankments on soft ground and highway cuts. Selects appropriate strength parameters for each scenario.
Lesson 5 • Slope Failure Mechanisms
Identifies translational, rotational, and compound failure modes in natural and engineered slopes. Links failure type to soil stratigraphy and groundwater conditions.
Chapter 8HideHide detailsSee detailsEarth Retaining Structures
Earth Retaining Structures
Lesson 1 • Lateral Earth Pressure Theories
Derives Rankine and Coulomb active and passive pressure distributions for cohesive and cohesionless soils. Addresses wall friction, surcharge, and water pressure effects.
Lesson 2 • Sheet Pile and Soldier Pile Walls
Analyzes cantilever and propped sheet pile walls using free and fixed earth support methods. Introduces soldier pile and lagging systems for temporary excavations.
Lesson 3 • Anchored and Braced Excavations
Covers ground anchor design, braced excavation analysis, and apparent pressure diagrams. Addresses base heave and hydraulic uplift in deep excavations.
Lesson 4 • Gravity and Cantilever Retaining Walls
Checks sliding, overturning, and bearing capacity for gravity and cantilever walls. Covers drainage provisions and backfill selection for wall performance.
Lesson 5 • Mechanically Stabilized Earth Walls
Presents internal and external stability design of reinforced soil walls with geosynthetic and metallic reinforcement. Covers connection design and facing systems.
Your valid completion certificate
This course is for you:
Civil engineering students: building technical depth beyond classroom theory.
Junior geotechnical engineers: seeking structured knowledge to accelerate professional growth.
Structural engineers: expanding expertise to handle ground-related design challenges.
Construction project managers: needing geotechnical literacy to lead ground-risk decisions.
Environmental consultants: adding soil and subsurface competence to their practice.
Career changers from geology: transitioning into engineering applications of earth science.
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