
Design Basics of RCC (Reinforced Cement Concrete) Buildings Course
Master the complete design process for reinforced cement concrete buildings, from material fundamentals to seismic detailing. This course walks you through beams, slabs, columns, and foundations using real limit state design methods. Whether you're an engineering student or a practicing professional, you'll gain the technical depth to produce accurate, code-compliant RCC structural designs.
What you will learn:
Analyze dead, live, wind, and seismic loads acting on RCC building structures.
Design singly and doubly reinforced beams for bending, shear, and deflection control.
Apply limit state design philosophy to size columns under axial load and biaxial bending.
Develop one-way, two-way, and flat slab reinforcement layouts for typical floor systems.
Size and detail isolated, combined, strap, and raft foundations for varying soil conditions.
Produce complete structural drawings and bar bending schedules ready for construction use.
How you study in a practical way Design Basics of RCC (Reinforced Cement Concrete) Buildings Course
How you practice Design Basics of RCC (Reinforced Cement Concrete) Buildings 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 detailsFundamentals of RCC Construction
Fundamentals of RCC Construction
Lesson 1 • Structural Systems in RCC Buildings
Introduces frame, flat-slab, shear-wall, and load-bearing systems. Students map load paths from roof to foundation across different structural configurations.
Lesson 2 • Properties of Concrete as a Material
Covers compressive strength, workability, durability, and mix proportions of concrete. Connects material science to structural performance expectations in RCC design.
Lesson 3 • Loads Acting on RCC Structures
Defines dead, live, wind, seismic, and environmental loads and their sources. Provides the load vocabulary needed for all subsequent design calculations.
Lesson 4 • Role of Steel Reinforcement
Explains why steel is embedded in concrete and how it resists tensile forces. Establishes the composite action concept central to all RCC structural design.
Chapter 2HideHide detailsSee detailsLimit State Design Philosophy
Limit State Design Philosophy
Lesson 1 • Durability and Cover Requirements
Defines exposure classes and minimum concrete cover to protect reinforcement over a structure's design life. Establishes cover as a design parameter, not an afterthought.
Lesson 2 • Ultimate Limit State Concepts
Covers flexural failure, shear failure, and collapse mechanisms under factored loads. Students calculate design strengths using partial safety factors for materials.
Lesson 3 • Design Philosophies Overview
Contrasts working stress, ultimate load, and limit state methods historically and conceptually. Positions limit state design as the current standard for RCC work.
Lesson 4 • Serviceability Limit State Concepts
Addresses deflection, cracking, and vibration limits that govern occupant comfort and durability. Links serviceability checks to practical detailing decisions.
Chapter 3HideHide detailsSee detailsDesign of RCC Beams
Design of RCC Beams
Lesson 1 • Doubly Reinforced Beam Design
Extends beam design to sections requiring compression steel when depth is restricted. Students determine both tension and compression steel areas for high-moment scenarios.
Lesson 2 • Deflection and Crack Control in Beams
Applies span-to-depth ratios and crack width formulas to verify serviceability of designed beams. Connects serviceability checks back to the limit state framework.
Lesson 3 • Flexural Behavior of Beams
Explains the stress block, neutral axis depth, and moment capacity of rectangular sections. Builds the analytical model used in all beam bending calculations.
Lesson 4 • Shear Design of Beams
Covers diagonal tension, shear capacity of concrete, and design of vertical and inclined stirrups. Students size and space shear reinforcement across a beam span.
Lesson 5 • Singly Reinforced Beam Design
Guides students through sizing a beam cross-section and calculating tension steel area for a given moment. Reinforces limit state methodology with step-by-step worked examples.
Chapter 4HideHide detailsSee detailsDesign of RCC Slabs
Design of RCC Slabs
Lesson 1 • Two-Way Slab Analysis and Design
Introduces moment coefficients for slabs spanning in two directions with various edge conditions. Students design steel in both directions and handle corner reinforcement.
Lesson 2 • Flat Slabs and Flat Plates
Covers column-supported slabs without beams, including drop panels and column heads. Students analyze punching shear and design reinforcement for flat slab systems.
Lesson 3 • Slab Detailing and Reinforcement Layout
Translates calculated steel areas into practical bar schedules, spacing, and lap lengths. Students produce dimensioned reinforcement drawings for one-way and two-way slabs.
Lesson 4 • Shear in Slabs
Addresses one-way shear and punching shear failure modes specific to slab geometry. Students verify shear capacity and add shear reinforcement where required.
Lesson 5 • One-Way Slab Analysis and Design
Treats one-way slabs as wide beams spanning in one direction and applies beam design principles. Students calculate slab thickness and main reinforcement for uniform loads.
Chapter 5HideHide detailsSee detailsDesign of RCC Columns
Design of RCC Columns
Lesson 1 • Uniaxial Bending in Columns
Develops the interaction diagram for combined axial load and bending about one axis. Students use the diagram to check adequacy and select reinforcement for eccentric loads.
Lesson 2 • Biaxial Bending in Columns
Extends column design to simultaneous bending about both axes using simplified methods. Students apply equivalent uniaxial moment approaches for corner and edge columns.
Lesson 3 • Column Detailing and Splices
Covers bar arrangement, cover, tie spacing, and lap splice requirements for columns. Students produce column schedule drawings with correct detailing at floor levels.
Lesson 4 • Column Classification and Behavior
Defines short versus slender columns using slenderness ratios and effective length concepts. Establishes how end conditions and bracing affect column design approach.
Lesson 5 • Axially Loaded Column Design
Calculates load capacity of columns under pure axial compression with minimum eccentricity. Students size cross-sections and determine longitudinal steel for concentric loading.
Chapter 6HideHide detailsSee detailsDesign of RCC Foundations
Design of RCC Foundations
Lesson 1 • Combined and Strap Footings
Addresses footings shared by two columns and strap beams connecting eccentric footings. Students analyze pressure distributions and design reinforcement for non-uniform loading.
Lesson 2 • Raft Foundation Design
Introduces rigid and flexible raft analysis methods for heavily loaded or weak-soil conditions. Students design raft thickness and reinforcement for uniform and differential pressures.
Lesson 3 • Isolated Footing Design
Covers sizing plan area, checking bearing pressure, and designing bending and shear reinforcement for pad footings. Students complete a full isolated footing design.
Lesson 4 • Pile Foundation Concepts
Covers pile types, load transfer mechanisms, and pile cap design for RCC buildings. Students design a simple pile cap and check punching shear at the column base.
Lesson 5 • Soil-Structure Interaction Basics
Introduces bearing capacity, settlement, and soil pressure distribution under footings. Connects geotechnical parameters to foundation sizing decisions.
Chapter 7HideHide detailsSee detailsSeismic and Wind Design of RCC Structures
Seismic and Wind Design of RCC Structures
Lesson 1 • Diaphragm Action and Load Transfer
Explains how floor slabs act as rigid or flexible diaphragms to transfer lateral loads to walls and frames. Students design diaphragm chords, collectors, and connections.
Lesson 2 • Seismic Design of RCC Frames
Applies capacity design principles to ensure ductile beam-sway mechanisms in moment frames. Students detail beams and columns to achieve strong-column weak-beam behavior.
Lesson 3 • Wind Load Analysis and Design
Calculates wind pressures on building surfaces and distributes forces to the lateral system. Students check drift limits and design connections for wind-induced loads.
Lesson 4 • Lateral Load Analysis Methods
Covers equivalent static, response spectrum, and time-history analysis for lateral loads. Students select and apply the appropriate method based on building height and regularity.
Lesson 5 • Shear Wall Design
Covers in-plane shear, overturning moment, and boundary element design for RCC shear walls. Students size and detail shear walls as primary lateral load-resisting elements.
Chapter 8HideHide detailsSee detailsStructural Detailing and Construction Drawings
Structural Detailing and Construction Drawings
Lesson 1 • Slab and Foundation Detailing
Addresses top and bottom mat arrangement, edge strips, and footing reinforcement layout. Students detail slabs and footings with correct bar marks and dimensions.
Lesson 2 • Reading and Producing Structural Drawings
Covers drawing conventions, notation, scale, and coordination between structural and architectural drawings. Students produce a complete set of structural drawings for a simple building.
Lesson 3 • Principles of Structural Detailing
Establishes detailing rules for cover, bar spacing, bends, hooks, and anchorage lengths. Connects detailing decisions to structural performance and constructability.
Lesson 4 • Beam and Column Detailing
Covers longitudinal bar curtailment, stirrup arrangement, and joint detailing for beams and columns. Students produce dimensioned cross-section and elevation details.
Lesson 5 • Bar Bending Schedules
Teaches systematic preparation of bar bending schedules listing shape, length, and quantity for each bar mark. Students produce schedules that enable accurate material procurement.
Your valid completion certificate
This course is for you:
Civil engineering students: ready to move beyond theory into real design work.
Junior structural engineers: filling gaps left by university coursework and early jobs.
Architecture graduates: wanting to read and challenge structural drawings with confidence.
Construction site supervisors: seeking the technical background behind reinforcement decisions.
Career changers from mechanical engineering: applying existing math skills to building structures.
Government building inspectors: needing deeper structural knowledge to evaluate submitted designs.
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