ICTQual AB Level 6 International Diploma

Structural Engineering

Awarding Body

ICTQual AB

Credits

360 Credits

Course

Engineering & Technical Fields

study mode

Online Learning

Course overview

The ICTQual AB Level 6 International Diploma in Structural Engineering is designed for aspiring engineers and professionals seeking advanced knowledge and practical expertise in the analysis, design, and management of structural systems. This qualification provides a strong foundation in modern structural engineering principles, enabling learners to understand how safe, efficient, and sustainable structures are planned and delivered within the built environment.

Throughout the programme, learners develop advanced analytical, technical, and problem-solving skills required to address complex structural challenges. Key areas of study include structural analysis and design, construction materials, load assessment, geotechnical principles, risk and safety management, and compliance with international engineering standards. The course also emphasises sustainability, quality control, and the application of digital tools and engineering software in structural design and evaluation.

This diploma is ideal for structural engineers, civil engineering professionals, construction managers, and technical consultants working across infrastructure and building projects. Graduates gain the competence to contribute to structural design decisions, assess structural integrity, and support multidisciplinary engineering teams. The Level 6 International Diploma also provides progression opportunities to postgraduate studies, professional engineering certifications, and senior technical or managerial roles in the global construction and engineering sector.

ICTQual AB

Approved Training centre of ICTQual AB

Centre # : ATC24001

Entry Requirments

Entry Requirements for the ICTQual AB Level 6 International Diploma in Structural Engineering:

  • Educational Qualifications:A Level 5 qualification in engineering, construction, or a related technical discipline, or an equivalent international qualification.
  • Professional Experience:Relevant work experience in civil, structural, or construction engineering roles is recommended, especially for mature or non-traditional applicants.
  • English Language Proficiency:Since the program is delivered in English, learners must show competence in reading, writing, and communication.

The ICTQual AB Level 6 International Diploma in Structural Engineering in Personal Protective Equipment qualification consists of 36 mandatory units.

Year 1 – Foundation in Structural Engineering

  1. Principles of Civil and Structural Engineering
  2. Engineering Mathematics
  3. Engineering Mechanics and Materials
  4. Structural Analysis – Fundamentals
  5. Engineering Drawing and CAD
  6. Construction Materials and Technology
  7. Surveying and Geomatics
  8. Soil Mechanics and Geotechnics – Basics
  9. Fluid Mechanics and Hydraulics
  10. Health, Safety and Environmental Practices in Construction
  11. Communication and Technical Report Writing
  12. Introduction to Construction Management

Year 2 – Intermediate Studies in Structural Engineering

  1. Structural Analysis – Intermediate Applications
  2. Steel and Concrete Structural Design
  3. Geotechnical Engineering and Foundation Design
  4. Applied Hydraulics and Hydrology
  5. Transportation and Highway Engineering
  6. Structural Dynamics and Earthquake Engineering – Basics
  7. Environmental Engineering in Construction
  8. Advanced Surveying and GIS Applications
  9. Project Planning and Construction Management
  10. Construction Economics and Cost Control
  11. Sustainable Construction Practices
  12. Applied Research Methods in Engineering

Year 3 – Advanced Studies in Structural Engineering

  1. Advanced Structural Analysis and Modelling
  2. Design of High-Rise and Complex Structures
  3. Bridge Engineering and Design
  4. Structural Dynamics and Earthquake Engineering – Advanced
  5. Advanced Geotechnical Engineering
  6. Construction Project Risk and Quality Management
  7. Building Information Modelling (BIM) and Digital Engineering
  8. Smart Materials and Innovative Construction Technologies
  9. Professional Ethics and Sustainability in Engineering
  10. Innovation and Entrepreneurship in Engineering
  11. Infrastructure Development and Urban Planning
  12. Final Year Major Project (Capstone Project)

What you will Gain

Year 1 – Foundation in Structural Engineering

Principles of Civil and Structural Engineering

  • Understand the fundamental principles of civil and structural engineering.
  • Describe the roles of civil and structural engineers in infrastructure development.
  • Apply basic engineering concepts to real-world construction scenarios.

Engineering Mathematics

  • Solve algebraic, trigonometric, and calculus problems in structural contexts.
  • Apply mathematical modelling techniques to engineering problems.
  • Use numerical methods to support structural design and analysis.

Engineering Mechanics and Materials

  • Analyse force systems, equilibrium, stress, and strain in structural elements.
  • Evaluate the properties and behaviours of engineering materials.
  • Apply mechanics principles to design safe and reliable structures.

Structural Analysis – Fundamentals

  • Understand concepts of load, support, and structural stability.
  • Perform basic analysis of beams, trusses, and frames.
  • Apply theoretical knowledge to solve simple structural problems.

Engineering Drawing and CAD

  • Interpret and create engineering drawings using international standards.
  • Develop 2D and 3D models using CAD software.
  • Apply dimensioning and tolerancing to construction and structural drawings.

Construction Materials and Technology

  • Identify and evaluate properties of construction materials.
  • Understand traditional and modern construction technologies.
  • Select appropriate materials for structural applications.

Surveying and Geomatics

  • Apply surveying techniques for measurement and mapping.
  • Use levelling, traversing, and GPS/GIS systems in construction.
  • Analyse survey data for planning and structural layout.

Soil Mechanics and Geotechnics – Basics

  • Identify soil properties and classification systems.
  • Analyse soil behaviour under different loading conditions.
  • Apply basic geotechnical principles in foundation planning.

Fluid Mechanics and Hydraulics

  • Understand fluid properties and principles of hydrostatics.
  • Analyse fluid flow in pipes and channels.
  • Apply hydraulics to water supply and drainage systems.

Health, Safety and Environmental Practices in Construction

  • Apply workplace health and safety regulations.
  • Conduct risk assessments in construction environments.
  • Understand sustainable practices and environmental considerations.

Communication and Technical Report Writing

  • Develop professional written, visual, and verbal communication skills.
  • Prepare structured technical reports with referencing.
  • Apply industry-standard documentation practices.

Introduction to Construction Management

  • Understand the principles of construction project management.
  • Identify roles and responsibilities in construction projects.
  • Apply basic planning and scheduling tools.

Year 2 – Intermediate Studies in Structural Engineering

Structural Analysis – Intermediate Applications

  • Analyse determinate and indeterminate structures.
  • Apply methods such as moment distribution and matrix analysis.
  • Evaluate structural behaviour under complex loading conditions.

Steel and Concrete Structural Design

  • Understand codes and standards for steel and concrete design.
  • Design beams, slabs, columns, and connections.
  • Apply design software to validate structural elements.

Geotechnical Engineering and Foundation Design

  • Analyse soil bearing capacity and settlement.
  • Design shallow and deep foundations.
  • Apply geotechnical investigations to structural projects.

Applied Hydraulics and Hydrology

  • Evaluate surface and groundwater flow systems.
  • Design hydraulic structures such as dams, channels, and spillways.
  • Apply hydrological models to flood risk management.

Transportation and Highway Engineering

  • Understand geometric design principles of roads and highways.
  • Analyse pavement materials and design methods.
  • Apply traffic flow theory to transportation planning.

Structural Dynamics and Earthquake Engineering – Basics

  • Understand vibration and dynamic behaviour of structures.
  • Evaluate seismic forces and their effects on structures.
  • Apply basic seismic design principles.

Environmental Engineering in Construction

  • Apply waste management techniques in construction.
  • Evaluate water and air quality impacts of projects.
  • Integrate sustainability into construction practices.

Advanced Surveying and GIS Applications

  • Apply total station and GPS systems in advanced surveying.
  • Integrate GIS tools in construction planning.
  • Analyse spatial data for infrastructure projects.

Project Planning and Construction Management

  • Apply project management methodologies (e.g., Gantt, CPM).
  • Manage resources, time, and costs effectively.
  • Evaluate risks and apply mitigation strategies.

Construction Economics and Cost Control

  • Understand principles of construction economics.
  • Prepare cost estimates and budgets for structural projects.
  • Apply value engineering and cost control techniques.

Sustainable Construction Practices

  • Evaluate green building technologies.
  • Apply life-cycle assessment to construction projects.
  • Promote energy-efficient and eco-friendly design.

Applied Research Methods in Engineering

  • Develop a research proposal relevant to structural engineering.
  • Apply quantitative and qualitative research techniques.
  • Interpret research findings using statistical methods.

Year 3 – Advanced Studies in Structural Engineering

Advanced Structural Analysis and Modelling

  • Apply finite element analysis (FEA) in structural modelling.
  • Evaluate structural performance using advanced software.
  • Analyse non-linear and dynamic behaviours in complex systems.

Design of High-Rise and Complex Structures

  • Understand structural systems for tall buildings.
  • Design lateral load-resistant systems for stability.
  • Apply innovative methods to design complex structures.

Bridge Engineering and Design

  • Understand principles of bridge engineering.
  • Design steel, concrete, and composite bridges.
  • Evaluate construction methods for different bridge types.

Structural Dynamics and Earthquake Engineering – Advanced

  • Apply advanced methods of seismic analysis.
  • Design earthquake-resistant structural systems.
  • Assess retrofitting techniques for existing structures.

Advanced Geotechnical Engineering

  • Evaluate soil-structure interaction under complex loading.
  • Analyse slope stability and retaining wall systems.
  • Apply advanced geotechnical modelling techniques.

Construction Project Risk and Quality Management

  • Identify and analyse project risks.
  • Apply quality management systems in construction.
  • Monitor and control performance through audits.

Building Information Modelling (BIM) and Digital Engineering

  • Develop BIM models for structural projects.
  • Apply digital collaboration tools in project delivery.
  • Integrate BIM with cost and time management.

Smart Materials and Innovative Construction Technologies

  • Evaluate applications of smart and sustainable materials.
  • Apply advanced construction technologies such as 3D printing.
  • Analyse performance of new materials in structural systems.

Professional Ethics and Sustainability in Engineering

  • Apply ethical decision-making frameworks in engineering practice.
  • Evaluate social, economic, and environmental responsibilities.
  • Promote sustainable and responsible engineering solutions.

Innovation and Entrepreneurship in Engineering

  • Apply principles of innovation in construction and structural design.
  • Develop entrepreneurial skills for technology-driven ventures.
  • Create business plans for engineering solutions.

Infrastructure Development and Urban Planning

  • Understand urban infrastructure planning and design.
  • Apply structural engineering in transportation, water, and energy systems.
  • Evaluate challenges of sustainable urbanisation.

Final Year Major Project (Capstone Project)

  • Undertake independent research or applied structural project.
  • Demonstrate integration of multi-disciplinary engineering knowledge.
  • Present findings in a professional report and oral presentation.

Want to know more?

This course is ideal for aspiring structural engineers, civil engineers, construction professionals, site engineers, and technical managers seeking career progression.

Learners gain advanced skills in structural design, load calculations, material selection, risk management, sustainability, and the use of modern engineering tools.

Yes, the qualification is internationally recognised and aligned with global engineering and vocational education standards.

Yes, it offers progression routes to postgraduate degrees, professional engineering certifications, and senior technical or managerial roles.

Yes, the programme emphasises sustainability, safety, quality management, and digital technologies used in modern structural engineering.

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