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Daylight.
 

Daylight Isn’t a Design Feature.
It’s a Performance Standard.

Understanding the physics of light diffusion, thermal transfer, and visual comfort is the first step to designing building envelopes that actually work for the people inside them.

  Interior showing vision glass and Solera translucent glazing  

Most buildings are designed around glass that doesn’t actually work.

The Three Failures of Standard Glazing

  • Glare — harsh contrast between the window and the room forces occupants to close blinds
  • Heat gain — direct beam sunlight creates thermal hot spots and drives up HVAC loads
  • Poor insulation — standard vision glass is a thermal bridge, losing heat in winter and gaining it in summer

The standard approach: add vision glass for light and views, then add blinds when the glare becomes unbearable. The blinds stay closed. The building goes back to artificial lighting. The glass — which cost a fortune to install — is now a wall.

This isn’t a blind problem. It’s a glazing problem. And it’s a solvable one — but only if you understand the physics of how light actually behaves when it enters a building.

Better buildings start with better daylighting decisions. That means understanding glare, diffusion, thermal transfer, and how to use the right glazing in the right place. That’s what this page is for.

Visual Comfort: The Difference Between Brightness and Glare

More light isn’t always better light. Understanding how the human eye perceives contrast is the key to successful daylighting.

Two Crucial Factors: Absolute Brightness and Contrast

Absolute brightness can cause discomfort when levels are simply too high (like stepping outside on a bright, snowy day). The threshold varies by individual, but typically falls between 6,000 and 10,000 cd/m².

Contrast is the real culprit in building design. When there is a large difference between a bright source (a window) and the average brightness of the room (a computer screen or interior wall), the eye struggles to adapt. This extreme contrast is what we perceive as glare. A contrast ratio of 10:1 in the immediate field of view, and 20:1 in the periphery, is generally considered the maximum acceptable limit.

Why Translucent Glazing Works

Standard vision glass has purely specular transmission — light passes straight through with no scattering, creating harsh contrast. Translucent glazing distributes the light onto adjacent walls and ceilings, raising the average ambient brightness of the space. This lowers the contrast ratio, allowing the room to feel bright and open without causing glare discomfort.


Light Diffusing Power (LDP)

Not all translucent materials are equal. LDP measures how effectively a glazing material scatters light.

Materials like acid-etched glass or white laminate PVB scatter light just enough to obscure the view, but the scattering is a relatively narrow angle. The brightness of these materials still varies greatly depending on your viewing angle and the position of the sun, often resulting in hot spots.

Light Diffusing Power (LDP) is a proprietary metric developed by Advanced Glazings to compare the effectiveness of translucent materials. A material that transmits light equally in all directions (a perfect diffuser) has an LDP of 1.0. A material with no upward redirection has an LDP of 0.0.

Solera® uses a proprietary diffusing veil that achieves excellent wide-angle scattering. Regardless of the sun’s angle, a Solera® unit appears equally bright from every direction, completely eliminating hot spots.

Light Diffusion Power Diagram
How vision glass transmits light — specular, no scattering

Standard Vision Glass — Specular Transmission

How Solera diffuses light volumetrically in all directions

Solera® — Volumetric Diffusion

LDP in action — how each material’s score translates to how the space actually looks and feels:

These false-colour Radiance simulations show the measured distribution of light entering a space at 45° through five different glazing types. The brighter the ceiling and walls, the higher the LDP score — and the more usable the daylight is for the people inside.

Standard Vision Glass simulation
Standard Vision Glass
Acid Etched Glass simulation
Acid Etched Glass
White Laminated Glass simulation
White Laminated Glass
Film simulation
Film
Solera Glazing simulation
Solera® Glazing

Thermal Performance: Controlling Heat Transfer

Daylight brings heat. How you manage that heat dictates the energy efficiency of the entire building envelope.

SHGC and VLT

Visible light is energy that is absorbed as heat. Therefore, Visible Light Transmittance (VLT) and Solar Heat Gain Coefficient (SHGC) are inextricably linked — for any visible light transmittance, there will be some solar heat gain.

Traditional approaches use tinted glass or solar control Low-E coatings to reflect or absorb infrared light. While this reduces SHGC, it also reduces VLT, negatively impacts colour rendering (CRI), and fails to solve the glare problem. You end up with a dark, artificially-coloured space that still requires blinds.

Because Solera® diffuses light volumetrically, the solar infrared energy is also diffused and evenly distributed. Occupants do not experience the intense thermal hot spots associated with direct beam sunlight.

How Solera® Insulates

Heat transfers through glazing via convection (air movement) and thermal radiation.

Honeycomb Core: Solera® uses a transparent honeycomb insulation material called InsolCore. The cells are small enough to create dead air spaces, stopping convection. The cell walls also absorb thermal infrared radiation, suppressing radiation transfer.

Aerogel Integration: For maximum performance, the honeycomb cells are filled with aerogel — a solid consisting of >90% air contained in a nanoporous structure. This severely inhibits conductive heat transfer, allowing Solera® to achieve unprecedented insulation values up to R-25.

Total System Thermal Performance

The insulating properties of a complete envelope must account for the centre-of-glass, the edge-of-glass, and the framing. Solera® components dramatically improve the overall U-value of curtain wall systems, while the frameless SoleraWall® system eliminates framing thermal bridges entirely, approaching the performance of insulated metal panels.

Total System Thermal Performance Chart

Three Ways Solera® Reduces Energy Consumption

  • High insulation values — R-3 to R-25 reduces undesirable heat gains and losses through the building envelope.
  • Increased daylighted area — Solera® pushes daylight deep into the space, reducing reliance on artificial lighting and the energy it consumes.
  • Passive solar heating — Glare-free diffused light can be used for passive solar heating without the need for blinds or mechanical shading devices that block the very light you’re trying to use.

See Your Space Before You Build It

Our team uses Radiance to model your specific project — your geometry, your orientation, your glazing configuration. We produce both photorealistic renders and false-colour analysis so you can see exactly how the light will behave before a single panel is ordered.

Library — Standard Vision Glass

Office with standard vision glass - Radiance model

Library — With Solera®

Office with Solera glazing - Radiance model

Gymnasium — Standard Vision Glass

Gymnasium with standard vision glass - Radiance model

Gymnasium — With Solera®

Gymnasium with Solera glazing - Radiance model

Gymnasium — All Vision Glass (False-Colour)

Gymnasium with all vision glass - Radiance false-colour analysis

Gymnasium — Solera® in Clerestory (False-Colour)

Gymnasium with Solera in clerestory - Radiance false-colour analysis

Model Your Space — Complimentary

We model your specific project using your drawings and orientation. You see the light levels, the glare risk, and the right configuration before you commit to anything.

We also have a library of pre-modelled space types — if your project is similar to one we’ve already run, we can turn it around even faster.

REQUEST A DAYLIGHT MODEL ›

A Better Way to Design Buildings for People

The traditional approach starts with an opaque box and punches holes in it. The result is glare, heat gain, and blinds that defeat the glass entirely. There is a better way.
Step 1

Start with Views

Place vision glass at eye level where occupants need a direct connection to the outdoors. This is the glass that frames the view — and SoleraWall® is also available in Vision glass for large-expanse facades.

Step 2

Add Solera® Above & Around

Use Solera® above the vision zone, in clerestories, skylights, and side-lites to flood the space with soft, glare-free daylight — and create that iconic warm glow after dark. For entire walls or building envelopes, use SoleraWall®.

Step 3

Fill the Rest with Opaque

Everywhere else — where daylight and views aren’t the priority — use opaque cladding or insulated metal panels. Every material doing exactly the job it was designed for.

Exterior: vision glass below, Solera above Exterior
Interior: soft diffused daylight with no glare Interior

Solera® Is Glass. Not Plastic.

Conventional plastic-based translucent glazings (polycarbonate, FRP) have practical lifespans of 10–20 years, limited by colour change, scratching, cracking, and fibre bloom. Solera® achieves a usable lifespan of 60–100 years.

Glass holds its appearance indefinitely and protects all underlying components from UV exposure. The acrylic honeycomb core is inherently UV-stable and shielded by glass. The anodized aluminum spacer system is protected by the framing. And unlike standard IGUs, Solera® uses equilibrium moisture dynamics — it will not accumulate internal moisture or fail due to seal degradation.

Lifespan Comparison

Polycarbonate / FRP

10–20 years

Solera®

60–100 years

Ready to Design with Light?

Our technical team can model your space, provide optical data files, and help you choose the right configuration for your project — at no cost.

TALK TO A CONSULTANT › VIEW CASE STUDIES › VIEW PRODUCT DATA ›
AIA

AIA Continuing Education

Want to go deeper on daylighting and earn AIA learning units at the same time? We offer accredited courses available as a Lunch & Learn at your firm.

SEE OUR COURSES ›
Better Buildings for Humans podcast

Better Buildings for Better Humans.

Explore the harms of LEDs, daylighting in schools, and much more on our podcast — Better Buildings for Humans (BBFH). Powered by Advanced Glazings.

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