
Civil Engineering Structures Course
Master the full scope of civil engineering structures, from static equilibrium and material behavior to reinforced concrete, steel design, foundations, and seismic analysis. This course delivers the technical depth and practical methods that working engineers rely on every day. Build the skills to design safe, code-compliant structural systems from the ground up.
What you will learn:
You will develop a solid command of structural analysis, including shear and moment diagrams, truss methods, and indeterminate frame analysis. The course covers reinforced concrete and structural steel design using limit-state principles, with detailed attention to beams, columns, connections, and slabs. You will also study foundation engineering, soil-structure interaction, and retaining wall design. Seismic and wind load methods, including the equivalent lateral force procedure, are covered in full. Advanced topics include prestressed concrete, structural dynamics, bridge fundamentals, and sustainable design strategies.
How you study in a practical way Civil Engineering Structures Course
How you practice Civil Engineering Structures Course
For companies who want to train their team
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 • 38 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Structural Engineering
Foundations of Structural Engineering
Lesson 1 • Structural Safety and Limit States
Introduces strength and serviceability limit states and the concept of safety factors. Establishes the design philosophy used throughout the course.
Lesson 2 • Structural Systems and Their Roles
Introduces primary structural systems—frames, trusses, shells, and cables—and their load-carrying mechanisms. Connects typology selection to functional and site requirements.
Lesson 3 • Forces, Loads, and Equilibrium
Covers static equilibrium, free-body diagrams, and load classification. Provides the mechanical foundation for all subsequent structural analysis.
Lesson 4 • Stress, Strain, and Material Behavior
Explains normal and shear stress, strain, and elastic modulus. Links material properties to structural performance under load.
Chapter 2HideHide detailsSee detailsStructural Analysis Methods
Structural Analysis Methods
Lesson 1 • Indeterminate Structure Analysis
Covers force method and slope-deflection method for statically indeterminate beams and frames. Prepares students for advanced design of redundant systems.
Lesson 2 • Reactions and Determinacy
Covers support types, reaction calculation, and determinacy classification. Establishes the analytical starting point for all structural systems.
Lesson 3 • Truss Analysis Techniques
Applies the method of joints and method of sections to determine member forces in planar trusses. Reinforces equilibrium principles from Chapter 1.
Lesson 4 • Shear and Moment Diagrams
Teaches construction of shear force and bending moment diagrams for beams under various loading conditions. Diagrams are the primary tool for member design.
Lesson 5 • Deflection and Deformation Analysis
Introduces double-integration, moment-area, and conjugate-beam methods for computing beam deflections. Links deformation to serviceability limit states.
Chapter 3HideHide detailsSee detailsProperties of Structural Materials
Properties of Structural Materials
Lesson 1 • Steel: Grades, Properties, and Behavior
Covers structural steel grades, stress-strain behavior, and failure modes including fracture and fatigue. Establishes material limits used in steel design chapters.
Lesson 2 • Timber and Engineered Wood Products
Examines wood grain, orthotropic behavior, moisture effects, and engineered products such as glulam and LVL. Prepares students for timber structural design.
Lesson 3 • Concrete: Composition and Properties
Details cement hydration, aggregate grading, water-cement ratio, and resulting mechanical properties. Connects mix design decisions to compressive strength outcomes.
Lesson 4 • Masonry and Composite Materials
Reviews masonry unit types, mortar bonding, and composite action in reinforced masonry. Introduces fiber-reinforced polymers as emerging structural materials.
Chapter 4HideHide detailsSee detailsReinforced Concrete Design
Reinforced Concrete Design
Lesson 1 • Shear Design and Torsion
Explains diagonal tension, stirrup design, and combined shear-torsion interaction. Ensures members resist non-flexural failure modes.
Lesson 2 • Column Design and Interaction Diagrams
Addresses short and slender column behavior, eccentricity, and interaction diagram construction. Enables design of compression members under combined axial and bending loads.
Lesson 3 • Flexural Design of Beams
Covers the equivalent stress block, balanced reinforcement ratio, and tension-controlled beam design. Directly applies moment diagrams from Chapter 2.
Lesson 4 • Serviceability and Detailing
Addresses crack width control, long-term deflection, and bar development length. Ensures designs meet serviceability limit states introduced in Chapter 1.
Lesson 5 • Slab Systems and Two-Way Action
Covers one-way and two-way slab behavior, direct design method, and punching shear. Connects slab design to overall floor system performance.
Chapter 5HideHide detailsSee detailsSteel Structure Design
Steel Structure Design
Lesson 1 • Tension Member Design
Covers gross yielding, net section fracture, and block shear failure modes for tension members. Establishes the multi-limit-state design approach used throughout steel design.
Lesson 2 • Beam Design and Lateral Stability
Addresses compact section classification, plastic moment capacity, and lateral-torsional buckling. Ensures beams achieve full plastic capacity or are braced appropriately.
Lesson 3 • Beam-Column and Frame Design
Applies interaction equations for combined axial and bending loads in beam-columns. Extends to frame stability and second-order effects.
Lesson 4 • Bolted and Welded Connections
Designs bolted shear and bearing connections and fillet welds under various load conditions. Completes the steel design sequence with connection detailing.
Lesson 5 • Column and Compression Member Design
Covers effective length, slenderness ratio, and column curve selection for axially loaded members. Prepares students for combined loading in beam-column design.
Chapter 6HideHide detailsSee detailsFoundation and Geotechnical Interaction
Foundation and Geotechnical Interaction
Lesson 1 • Retaining Structures and Lateral Earth Pressure
Applies Rankine and Coulomb theories to design gravity and cantilever retaining walls. Ensures stability against sliding, overturning, and bearing failure.
Lesson 2 • Deep Foundation Systems
Examines driven piles, drilled shafts, and pile groups for high-load or poor-soil conditions. Addresses capacity from skin friction and end bearing.
Lesson 3 • Bearing Capacity of Shallow Foundations
Applies bearing capacity equations to isolated and combined footings under eccentric and inclined loads. Connects superstructure column loads to footing sizing.
Lesson 4 • Settlement Analysis
Covers immediate elastic settlement and consolidation settlement for cohesive soils. Links settlement predictions to serviceability requirements of the superstructure.
Lesson 5 • Soil Classification and Properties
Reviews grain size distribution, Atterberg limits, and soil classification systems. Establishes geotechnical vocabulary needed for foundation design decisions.
Chapter 7HideHide detailsSee detailsStructural Dynamics and Seismic Design
Structural Dynamics and Seismic Design
Lesson 1 • Equivalent Lateral Force Method
Applies simplified seismic base shear calculation and vertical distribution of forces to building frames. Enables preliminary seismic design of regular structures.
Lesson 2 • Seismic Lateral Force Resisting Systems
Compares moment frames, shear walls, and braced frames as seismic force resisting systems. Guides system selection based on ductility and redundancy requirements.
Lesson 3 • Earthquake Ground Motion and Hazard
Explains seismic wave types, ground motion parameters, and probabilistic seismic hazard. Connects site conditions to design spectral accelerations.
Lesson 4 • Fundamentals of Structural Dynamics
Covers single-degree-of-freedom systems, natural frequency, and damping. Provides the dynamic theory base for wind and seismic load analysis.
Lesson 5 • Wind Load Analysis and Design
Covers wind pressure coefficients, exposure categories, and main wind force resisting system design. Completes the lateral load design sequence alongside seismic methods.
Chapter 8HideHide detailsSee detailsStructural Design Integration and Project Delivery
Structural Design Integration and Project Delivery
Lesson 1 • Structural System Selection and Layout
Guides selection of gravity and lateral systems based on occupancy, height, and site constraints. Integrates material and system knowledge from all previous chapters.
Lesson 2 • Construction Documents and Specifications
Covers structural drawing organization, general notes, and material specifications for construction. Prepares students to produce complete, buildable document sets.
Lesson 3 • Construction Phase Structural Oversight
Examines shop drawing review, field inspection, and nonconformance resolution during construction. Closes the design-to-construction loop for structural engineers.
Lesson 4 • Load Combinations and Design Workflow
Applies factored load combinations to govern member design across all materials and systems. Establishes a repeatable design workflow for complex structures.
Lesson 5 • Interdisciplinary Coordination
Addresses coordination of structural systems with architectural, MEP, and geotechnical disciplines. Reduces design conflicts and construction change orders.
Your valid completion certificate
This course is for you:
Civil engineering graduate: ready to connect academic theory to real design practice.
Early-career structural engineer: filling gaps before a licensure exam or promotion.
Architecture professional: wanting to read and challenge structural drawings with confidence.
Construction project manager: needing to understand structural decisions on active job sites.
Mechanical engineer: transitioning into infrastructure or building structural design work.
Engineering student: seeking deeper structural coverage beyond what coursework provides.
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