Learning Objectives
5 objectives- Understand the foundational concepts and significance of structural engineering within the construction industry.
- Identify and analyze various types of loads acting on structures and their influence on design.
- Explore structural analysis methods and their application in predicting structural behavior.
- Examine structural materials and design principles essential for creating safe and efficient structural systems.
- Apply knowledge of codes, standards, and sustainable design to real-world structural engineering problems.
Content Outline
PreviewUnit 2908 - Structural Engineering Fundamentals
1. Introduction to Structural Engineering
- Definition and scope of structural engineering
- Importance in construction and infrastructure development
- Basic principles and concepts: load transfer, safety, efficiency
- Overview of structural engineering roles and responsibilities
2. Types of Loads on Structures
- Definition and classification of loads
- Dead Loads: nature, examples, calculation methods
- Live Loads: variability, occupancy factors
- Environmental Loads:
- Wind Loads: characteristics, impact on tall structures
- Snow Loads: regional considerations and effects
- Seismic Loads: earthquake forces and structural response
- Load combinations and factors of safety
3. Structural Analysis Methods
- Introduction to structural analysis
- Static Analysis:
- Assumptions and applications
- Deterministic approaches
- Dynamic Analysis:
- Importance for seismic and wind loads
- Modal analysis basics
- Finite Element Analysis (FEA):
- Concept and advantages
- Typical applications in structural engineering
- Computer-Aided Design (CAD) and analysis tools:
- Overview of software used
- Integration with analysis methods
4. Structural Materials
- Overview of common materials
- Concrete:
- Properties: strength, durability, workability
- Types and uses
- Steel:
- Mechanical properties, grades, and forms
- Advantages and limitations
- Timber:
- Characteristics and structural applications
- Treatment and sustainability considerations
- Masonry:
- Types (brick, stone, block)
- Load-bearing capabilities
- Material selection criteria and impact on design
5. Structural Design Principles
- Equilibrium:
- Force and moment balance
- Stability:
- Concepts and failure modes
- Strength:
- Stress and strain fundamentals
- Load capacity and factor of safety
- Serviceability:
- Deflection, vibration, and durability considerations
- Load paths and redundancy
6. Structural Elements and Systems
- Beams:
- Types and load behavior
- Design considerations
- Columns:
- Axial loading and buckling
- Slenderness effects
- Slabs:
- One-way and two-way slabs
- Thickness and reinforcement
- Foundations:
- Types (shallow, deep)
- Soil-structure interaction basics
- Integration of elements into structural systems:
- Frames, trusses, arches, and shells
7. Codes and Standards in Structural Engineering
- Purpose and importance of codes
- Overview of major building codes and standards (e.g., Eurocodes, AISC, ACI)
- Material specifications and testing standards
- Design guidelines and safety factors
- Compliance and ethical considerations
8. Structural Health Monitoring (SHM)
- Importance of SHM for safety and maintenance
- Techniques and technologies:
- Sensors (strain gauges, accelerometers, displacement sensors)
- Data acquisition and analysis
- Remote and real-time monitoring systems
- Case studies of SHM applications
9. Sustainable Design in Structural Engineering
- Principles of sustainability in construction
- Energy efficiency in structural design
- Material recycling and reuse
- Minimizing environmental impact:
- Carbon footprint reduction
- Innovative materials and methods
- Life cycle assessment and sustainable certification
Unlock the full outline
Get the complete content outline, learning outcomes and assessment methods for Structural Engineering.
KSh 20 one-off, or included with a plan
Learning Outcomes
Unlock the outline above to see learning outcomes.
Assessment Methods
Unlock the outline above to see assessment methods.