Seismic Analysis and Design of Steel and Reinforced Concrete Buildings Using NBCC 2025
This course can be customized and delivered to your team where and when it's convenient for you.
Online / On-site
OVERVIEW
Description
By the end of this course, you will be able to:
Evaluate seismic hazards and their implications for building design in Canadian cities
Apply the seismic design provisions of the National Building Code of Canada 2025 to structural design projects
Perform equivalent static and dynamic seismic analysis using manual methods and computer-based tools
Design and detail earthquake-resistant reinforced concrete and steel building systems using relevant CSA requirements
Integrate appropriate seismic force-resisting systems into the design of multi-storey buildings
Description:
Designing buildings in seismic regions requires you to make critical decisions about structural systems, analysis methods, and detailing requirements that directly affect life safety and code compliance. As seismic provisions continue to evolve, applying NBCC 2025 and the associated CSA standards consistently and correctly can be challenging, particularly when selecting force-resisting systems, evaluating structural responses, and detailing buildings for ductile behaviour.
This advanced course focuses on the practical application of the seismic provisions of NBCC 2025, together with the requirements of CSA A23.3-24 and CSA S16-24. Through worked examples and applied analysis exercises, you will examine equivalent static and dynamic analysis methods, design response spectra, drift limits, structural irregularities, and the integration of seismic force-resisting systems into multi-storey buildings.
You will also explore the design and detailing requirements for reinforced concrete and steel structures, including ductile frames, shear walls, and concentrically braced systems. By the end of the course, you will be better equipped to apply seismic design requirements with confidence and consistency on real building projects.
Who Should Attend
This course is designed for:
Structural engineers
Forensic engineers
Consulting engineers
Project engineers
Structural designers
Important note: This is an advanced course. A working knowledge of earthquake engineering fundamentals and structural dynamics is required to fully participate in the course content.
If you do not have prior knowledge of earthquake engineering or seismic analysis, it is strongly recommended that you first complete Fundamentals of Earthquake Engineering and Seismic Design before taking this course. This prerequisite will help establish the foundational understanding needed for the advanced analysis, design, and detailing topics covered here.
Course Outline
Day I
Welcome, Introduction, Course Preview, Learning Outcomes and the Assessment Method
Overview of Earthquake Engineering
Important characteristics of earthquakes
Seismicity in Canada
Elements of structural dynamics
Overview of dynamic analysis methods
Seismic Provisions of the National Building Code of Canada
Minimum lateral earthquake design force
Design response spectrum
Types of seismic force-resisting systems
Equivalent static force procedure
Deflections and drift limits
Other design requirements (irregularities, torsional effects, etc.)
Solved example: seismic analysis of a building according to the NBCC
Day II
Seismic Design Philosophy
Introduction to “fuse” mechanisms
General architectural and construction requirements for seismic design
Seismic Design of Reinforced Concrete Structures
General seismic design requirements
Seismic provisions for the design of ductile moment-resisting reinforced concrete frames
Solved example 1 for reinforced concrete buildings
Day III
Seismic Design of Reinforced Concrete Structures (Continued)
Seismic provisions for the design of ductile reinforced concrete shear walls
Solved example 2 for reinforced concrete buildings
Seismic Design of Steel Buildings
General seismic design requirements
Seismic provisions for the design of ductile moment-resisting steel frames
Solved example 1 for steel buildings
Seismic provisions for the design of concentrically braced steel frames
Solved example 2 for steel buildings
Questions and Answers and Feedback to Participants on Achievement of Learning Outcomes