
Structural Scheme Setting and ETABS Analysis of RCC (Reinforced Cement Concrete) Buildings Course
Master the full workflow from structural scheme development to code-based RCC building design using ETABS. Learn to read architectural drawings, build accurate 3D models, run linear and seismic analyses, and produce professional deliverables. This course gives structural engineers and advanced students the practical skills to handle real multi-story RCC projects with confidence.
What you will learn:
Develop a complete preliminary structural scheme from architectural floor plans and sections.
Configure ETABS models with correct grids, story data, material properties, and section definitions.
Apply gravity, wind, and seismic loads to RCC building models following design code requirements.
Execute linear static and modal analyses, then verify force, drift, and deformation results.
Design beams, columns, slabs, and shear walls in ETABS and interpret reinforcement demand output.
Generate professional analysis and design reports organized for client submission and quality review.
How you study in practice Structural Scheme Setting and ETABS Analysis of RCC (Reinforced Cement Concrete) Buildings Course
How you practice Structural Scheme Setting and ETABS Analysis of RCC (Reinforced Cement Concrete) Buildings Course
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Course Content
8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of RCC Building Structural Systems
Foundations of RCC Building Structural Systems
Lesson 1 • Structural Systems and Load Paths
Examines frame, shear wall, and flat-slab systems and how gravity and lateral loads travel through them. Connects system choice to building performance.
Lesson 2 • Building Geometry and Grid Systems
Introduces structural grids, bay spacing, story heights, and plan regularity. Provides the geometric vocabulary needed for scheme layout.
Lesson 3 • Structural Members and Their Functions
Defines beams, columns, slabs, walls, and foundations and their individual roles. Prepares students to assign member types correctly during modeling.
Lesson 4 • Introduction to RCC Structural Concepts
Covers concrete and steel interaction, stress-strain behavior, and ductility. Establishes the material basis for all subsequent structural decisions.
Lesson 5 • Codes and Standards Overview
Surveys functional requirements from design standards for loads, materials, and detailing. Anchors all design decisions to regulatory intent throughout the course.
Chapter 2HideHide detailsSee detailsStructural Scheme Development and Planning
Structural Scheme Development and Planning
Lesson 1 • Reading and Interpreting Architectural Drawings
Teaches extraction of structural information from floor plans, sections, and elevations. Directly enables accurate scheme setup in subsequent sections.
Lesson 2 • Scheme Documentation and Review
Formalizes the structural scheme into annotated drawings and a member schedule. Prepares deliverables for peer review and client communication.
Lesson 3 • Lateral System Selection and Placement
Guides selection and positioning of shear walls and cores for wind and seismic resistance. Establishes the lateral scheme before model creation.
Lesson 4 • Structural Scheme Layout Principles
Covers column placement logic, beam layout strategies, and slab panel organization. Ensures the scheme is efficient, buildable, and analysis-ready.
Lesson 5 • Preliminary Member Sizing
Applies thumb rules and span-to-depth ratios to size beams, columns, and slabs before analysis. Produces realistic starting dimensions for the ETABS model.
Chapter 3HideHide detailsSee detailsETABS Interface and Model Setup
ETABS Interface and Model Setup
Lesson 1 • Section Property Definition
Creates frame and shell section properties for beams, columns, slabs, and walls. Links section definitions to the material properties set in the previous section.
Lesson 2 • Model Templates and File Management
Uses built-in templates to accelerate setup and establishes a file-saving and backup protocol. Protects model integrity throughout the project lifecycle.
Lesson 3 • Material Property Definition
Defines concrete and rebar material properties including strength, modulus, and weight. Accurate material data is essential for correct analysis results.
Lesson 4 • Units, Grid, and Story Configuration
Configures unit systems, defines structural grids, and sets story data including heights and master stories. Creates the spatial framework for all model objects.
Lesson 5 • ETABS Workspace and Interface Overview
Introduces the ETABS screen layout, toolbars, view controls, and navigation shortcuts. Reduces interface friction so students focus on structural tasks.
Chapter 4HideHide detailsSee detailsGeometry Modeling of RCC Buildings in ETABS
Geometry Modeling of RCC Buildings in ETABS
Lesson 1 • Foundation and Support Modeling
Defines base supports, spring foundations, and mat slab elements at the ground level. Proper boundary conditions directly affect global model behavior.
Lesson 2 • Model Geometry Verification
Uses ETABS check tools to detect unconnected nodes, overlapping elements, and missing assignments. Eliminates geometry errors before load application.
Lesson 3 • Modeling Slabs and Floor Systems
Creates slab areas, defines membrane and shell behavior, and handles openings and voids. Accurate slab modeling governs load distribution and diaphragm action.
Lesson 4 • Drawing and Placing Frame Elements
Draws beams and columns using point, line, and grid-snap tools with correct section assignments. Establishes the primary skeleton of the structural model.
Lesson 5 • Modeling Shear Walls and Core Walls
Places wall objects, assigns pier and spandrel labels, and handles wall openings. Correct wall modeling is critical for lateral load resistance.
Chapter 5HideHide detailsSee detailsLoad Definition and Assignment in ETABS
Load Definition and Assignment in ETABS
Lesson 1 • Load Combinations Setup
Creates strength and serviceability load combinations per design standard requirements. Correct combinations drive all design checks performed in later chapters.
Lesson 2 • Seismic Load Definition
Sets up equivalent static and response spectrum seismic loads using site and structural parameters. Prepares the model for both static and dynamic seismic analysis.
Lesson 3 • Wind Load Definition and Application
Configures wind load parameters using code-based pressure coefficients and applies them to the building envelope. Produces realistic lateral wind demand on the structure.
Lesson 4 • Load Pattern and Load Case Fundamentals
Distinguishes load patterns from load cases and sets up the load pattern library. Correct setup prevents errors in all downstream combinations and analysis.
Lesson 5 • Gravity Load Assignment
Assigns superimposed dead loads, partition loads, and live loads to slabs and beams. Covers area, line, and point load input methods for complete gravity loading.
Chapter 6HideHide detailsSee detailsStructural Analysis Execution and Verification
Structural Analysis Execution and Verification
Lesson 1 • Reviewing Force and Stress Results
Extracts bending moments, shear forces, and axial loads in beams, columns, and walls. Validates that force distributions match expected structural behavior.
Lesson 2 • Reviewing Deformation and Drift Results
Examines story displacements, inter-story drift ratios, and deformed shapes for all load cases. Drift results are benchmarked against code serviceability limits.
Lesson 3 • Analysis Options and Run Settings
Configures analysis type, solver options, and modal parameters before execution. Proper settings ensure efficient and accurate analysis for the building type.
Lesson 4 • Modal Analysis and Mass Participation
Reviews mode shapes, natural periods, and cumulative mass participation ratios. Confirms that sufficient modes are captured for accurate seismic response.
Lesson 5 • Running the Analysis and Monitoring
Executes the analysis, monitors the solver log, and interprets warning and error messages. Teaches students to identify and resolve common run-time issues.
Chapter 7HideHide detailsSee detailsRCC Member Design Using ETABS
RCC Member Design Using ETABS
Lesson 1 • Column Design and Interaction Diagrams
Designs columns under combined axial and biaxial bending and reviews interaction diagram plots. Confirms column adequacy for all governing load combinations.
Lesson 2 • Slab and Wall Design
Performs slab flexural design and wall pier design, extracting reinforcement per unit width. Covers punching shear checks for flat slabs.
Lesson 3 • Design Preferences and Code Selection
Sets the concrete design code, design preferences, and overwrites at the global and member level. Correct preferences govern all reinforcement calculations in the chapter.
Lesson 4 • Beam Design and Reinforcement Output
Runs beam design, reviews flexural and shear reinforcement demands, and interprets design ratios. Identifies beams requiring resizing or scheme revision.
Lesson 5 • Design Iteration and Member Optimization
Revises member sizes based on design output and re-runs analysis to confirm compliance. Teaches the iterative loop between scheme, analysis, and design.
Chapter 8HideHide detailsSee detailsReporting, Documentation, and Project Delivery
Reporting, Documentation, and Project Delivery
Lesson 1 • Structural Calculation Documentation
Organizes hand calculations, code references, and model assumptions into a structured calculation package. Ensures traceability and auditability of all design decisions.
Lesson 2 • ETABS Report Generation
Configures and exports analysis and design reports including tables, diagrams, and summaries. Covers report customization for different audience types.
Lesson 3 • Extracting and Presenting Key Results
Identifies the most critical results—drift, design ratios, reinforcement demands—and formats them for clear communication. Prepares concise technical summaries.
Lesson 4 • Drawing Coordination and Output
Exports model geometry to structural drawing formats and coordinates with detailing teams. Bridges the gap between analysis output and construction documents.
Lesson 5 • Project Delivery and Quality Assurance
Applies a structured QA checklist to the full deliverable package before submission. Instills professional standards for accuracy, completeness, and peer review.
Your valid completion certificate
This course is for you:
Junior structural engineers: ready to move beyond theory into real project workflows.
Civil engineering graduates: seeking hands-on software skills before entering the workforce.
Structural drafters: wanting to understand the analysis behind the drawings they produce.
Mid-level engineers: looking to add ETABS proficiency to their existing design toolkit.
Architecture graduates: aiming to deepen their understanding of structural decision-making.
Construction project managers: needing to read and evaluate structural analysis deliverables confidently.
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