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Thermal Performance of Curtain Wall Façades: Calculation and Compliance

Thermal Performance of Curtain Wall Façades: Calculation and Compliance

From Fragment Selection to a Defensible Report — A Complete Practical Framework for Curtain Wall Thermal Calculation and Compliance

Registration will open soon. Join the Facade Intelligence Professional Membership (FI PRO) to receive priority access to this seminar.

About This CPD

Join us for a hands-on technical CPD on curtain wall thermal calculation. This session takes one real stick curtain wall — thermally broken aluminium mullions and transoms, double glazing, and spandrel panels running both vertically and horizontally — and builds the complete calculation chain from scratch: from choosing a method to a wall U-value you can hand to a client and defend.

Presented by Eugene Korch (IAST), this webinar shows both standard curtain wall calculation methods side by side, and exactly how a repeating façade lets a flat cross-section stand in for the whole run — no full three-dimensional model needed for the typical joint.

This session covers:

  • How the curtain wall U-value is built up — bar values, centre-of-glass and spandrel panel U-values, and the linear thermal bridge at every joint, weighted into one wall U-value (Ucw)

  • Choosing the calculation method — the single assessment method (Utj) versus the component assessment method (ψtj) — two routes to the same answer, and when each one suits the job

  • Selecting the calculation fragment — the three cutting rules that keep a repeating cross-section representative: safe cut lines, both infill types, and the correct depth boundary

  • Collecting input data — the four groups every calculation needs: standards, geometry, material conductivities, and boundary conditions

  • Importing the DXF and preparing the model — cleaning a manufacturer's cross-section: corner radii, small holes, and the open line segments that break an import

  • Assigning materials — every closed region given its material, including the hollow aluminium chambers, the pressure-plate screw, and the glazing edge spacer

  • Setting boundary conditions — working surfaces for each method, and why internal corners are always the coldest, most condensation-prone spot

  • Verifying the model and running the calculation — catching the errors the software never flags, then confirming a result with the three post-calculation checks

  • Building up Ucw and checking compliance — the length- and area-weighted assembly table, and finding the dominant contributor when a wall fails to comply

  • Producing the report and avoiding common errors — what a defensible calculation must contain, and the invisible mistakes that hide in fragment selection and model preparation

Using one real worked example from start to finish, this CPD focuses on practical judgement — not just how to get a number, but how to know when to trust it.

What You'll Learn

  • Recognise why a curtain wall's repeating bar-and-glass geometry can be represented by a single 2D cross-section rather than a full 3D model

  • Understand how a curtain wall's overall U-value (Ucw) is built up from bar values, centre-of-glass and spandrel panel U-values, and the linear bridge at every joint

  • Distinguish between the single assessment method (Utj) and the component assessment method (ψtj), and choose the one that fits a given project

  • Select a repeating calculation fragment correctly, applying the three cutting rules: safe cut lines, both infill types, and the correct depth boundary

  • Assemble the four groups of input data a curtain wall calculation needs: standards, geometry, material conductivities, and boundary conditions

  • Prepare a manufacturer's DXF cross-section for import, cleaning the radii, small holes, and open line segments that would otherwise break the model

  • Assign materials correctly to every closed region, including the hollow aluminium chambers, the pressure-plate screw, and the glazing edge spacer

  • Set correct boundary conditions for a curtain wall cross-section, and understand why internal corners are always the coldest, most condensation-prone points

  • Verify a curtain wall model before calculating, catching the errors the software itself never flags

  • Run a calculation with either method, confirm it has converged and passed the three post-calculation checks, and read a plausible cross-section U-value

  • Build the length- and area-weighted assembly table that turns individual cross-section results into a single curtain wall U-value (Ucw)

  • Check a curtain wall's U-value against the applicable regional energy code, and identify which component to improve first when it fails

  • Produce a defensible calculation report containing every input, image, and result another engineer would need to reproduce your answer

  • Recognise the most common invisible errors in curtain wall thermal calculation — in fragment selection, DXF preparation, and results reading — and know where to look for each one

Who Should Attend

Architects, Architectural Technologists, Envelope Designers, Façade Specialist Contractors, Façade Engineers, Junior Façade Engineers, Building Envelope Consultants, Thermal Modelling Specialists, Project Managers, and Design Managers.

This session is designed for design professionals who need to build, run, or review a curtain wall thermal calculation for a real project — particularly those working across multiple markets with different regulatory frameworks.

Speakers

Eugene Korch

Programme Director, IAST

Eugene is a façade engineer and educator who leads educational initiatives through the Institute for Architectural Science and Technology (IAST) and Facade Intelligence, delivering CPD training to construction professionals.

Event Details

  • Format: Live online workshop-style webinar with interactive polls and a live model walkthrough

  • Duration: 120 minutes + Q&A

  • Date: 15

  • CPD Points: 2 hours structured CPD / 1 Learning Unit

  • Certificate: CPD certificate provided upon completion

  • Recording: Available on demand to members only

 

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19 November

Surface Condensation Risk Assessment