flexiblefullpage -
billboard - default
interstitial1 - interstitial
catfish1 - bottom
Currently Reading

12 facts about heat-treated glass: Why stronger isn’t always better

12 facts about heat-treated glass: Why stronger isn’t always better

A dozen quick tips about tempered and heat-strengthened glass


By PPG Glass Education Center | February 27, 2014
12 facts about heat-treated glass: Why stronger isn’t always better
Heat Strengthened Glass

Glass is heat-treated for two reasons: the first is to increase its strength to resist external stresses such as wind and snow loads, or thermal loads caused by the sun’s energy.

The second is to temper glass so that it meets safety glazing requirements defined by applicable codes or federal standards. 

Following are a dozen quick tips about tempered and heat-strengthened glass, including why the strongest glass isn’t always the best glass for a given application. 

1. Fabrication first. Because of the high internal stresses caused by heat-strengthening or tempering glass, all fabrication, including cutting, hole-drilling, notching or edge treatment, must be performed before glass is heat-treated.

2. Defining heat-treated glass. In North America, the standard specification for heat-treated glass is ASTM C1048 Standard Specification for Heat-Strengthened and Fully Tempered Glass.  In general, heat-treated glass is at least two to four times stronger than annealed (untreated) glass.

3. Rate of cooling determines strength. During heat treatment, annealed (untreated) glass lites are heated to approximately 1,200 degrees F, then “quenched” in cold air. Cooled rapidly, glass tempers. Slower cooling produces heat-strengthened glass. 

4. Tempered is stronger. Tempered glass has a minimum surface compression of 10,000 pounds-per-square-inch (psi) and minimum edge compression of 9,700 psi, according to ASTM C1048. That makes it about four times stronger than annealed glass. Heat-strengthened glass has surface compression of 3,500 to 7,500 psi, about twice as strong as annealed glass, with no edge compression standard.

5. Tempered glass is safety glass. When broken by impact, fully tempered glass shatters into tiny particles, reducing the potential for serious injury by flying shards of glass. For this reason, building codes require safety glazing in specific locations.

6. Stronger, yet more vulnerable. Ironically, the rapid temperature change that gives tempered glass its compression strength may also cause it to shatter, seemingly without warning. On rare occasions, tiny inclusions, including nickel-sulfide, may be present in glass, which can expand during heat treatment, then stop when the glass is cooled and resume growth when the glass is exposed to high in-service temperatures (such as on the sunny exposure of a building). This “phase change” can cause tempered glass to shatter. Heat-strengthened glass is cooled more slowly; consequently, inclusions do not experience a phase change, which essentially eliminates the possibility of spontaneous glass failure.  

7. Heat-strengthened glass is not a safety glass. Though heat-strengthened glass may meet requirements for wind, snow and thermal loads, it is not considered a safety glazing. Heat-strengthened glass does not shatter when broken, but fractures into larger, sharper pieces that can become projectiles in a tornado, hurricane, explosion or fire. 

8. Avoiding fall-out. Because it does not shatter, heat-strengthened glass tends to remain in the framing system after it is damaged, which makes it a better choice for applications where glass fall-out is a concern.

9. Lamination for consideration. Laminated interlayers, required for overhead glazing, can be used with annealed, heat-strengthened or tempered glass to combine several safety advantages into a single glazing solution, including less risk of spontaneous breakage and glass fall-out, and increased resistance to wind loads, snow loads and thermal stress.   

10. Distorted views. Heat-treatment can generate subtle roller waves in glass, which are more likely to occur in tempered glass than in heat-strengthened glass. This can cause heat-treated glass to distort reflected images, a problem that may be exacerbated when it is used in glazing units with multiple lites or a laminated interlayer.  

11. Edge quality is critical. Poor edge quality – or edge damage during fabrication, delivery or installation – makes glass more likely to break, which can offset or negate any benefit associated with heat-strengthening or tempering. 

12. Stronger isn’t always better. Although tempered glass is strongest, PPG recommends its use only where required by code as a safety glazing or for thermal stress or wind load. For other applications, annealed or heat-strengthened glass is recommended to reduce distortion and the risk of fallout and spontaneous breakage. 

What is tempered glass?

Tempered glass, also known as toughened glass, goes through a process of extreme heating and rapid cooling during the manufacturing process. It is much stronger and harder than normal glass.

What is annealed glass?

Annealed glass, also known as standard glass, has been thermally treated and then slowly cooled. Annealed glass is a softer glass and is generally used when cost is a greater concern than strength or safety.

To learn more about the differences between tempered and heat-strengthened glass, or to find the best recommendation for a specific application, visit the PPG Glass Education Center at www.educationcenter.ppg.com.

Related Stories

Sponsored | BD+C University Course | May 3, 2022

For glass openings, how big is too big?

Advances in glazing materials and glass building systems offer a seemingly unlimited horizon for not only glass performance, but also for the size and extent of these light, transparent forms. Both for enclosures and for indoor environments, novel products and assemblies allow for more glass and less opaque structure—often in places that previously limited their use.

Sponsored | BD+C University Course | Apr 19, 2022

Multi-story building systems and selection criteria

This course outlines the attributes, functions, benefits, limits, and acoustic qualities of composite deck slabs. It reviews the three primary types of composite systems that represent the full range of long-span composite floor systems and examines the criteria for their selection, design, and engineering.

Wood | Apr 13, 2022

Mass timber: Multifamily’s next big building system

Mass timber construction experts offer advice on how to use prefabricated wood systems to help you reach for the heights with your next apartment or condominium project. 

Sponsored | BD+C University Course | Apr 10, 2022

Designing with commercial and industrial insulated metal wall panels

Discover the characteristics, benefits and design options for commercial/industrial buildings using insulated metal panels (IMPs). Recognize the factors affecting panel spans and the relationship of these to structural supports. Gain knowledge of IMP code compliance.

Building Materials | Feb 17, 2022

3D-printed megapanels, unitized window-wall assemblies now available from Sto Corp.

Panel manufacturer is collaborating with Branch Technology and Kawneer North America on prefabrication solutions for building facades.

3D Printing | Jan 12, 2022

Using 3D-printed molds to create unitized window forms

COOKFOX designer Pam Campbell and Gate Precast's Mo Wright discuss the use of 3D-printed molds from Oak Ridge National Lab to create unitized window panels for One South First, a residential-commercial high-rise in Brooklyn, N.Y.

Building Materials | Nov 29, 2021

Daltile expands its Unity Collection of porcelain tiles with a new color

Addition of "Taupe" gives Daltile's Unity Collection three warm and three cool colors.

Urban Planning | Nov 11, 2021

Reimagining the concrete and steel jungle, SOM sees buildings that absorb more carbon than they emit

The firm presented its case for a cleaner built environment during the Climate Change conference in Scotland.

Sustainability | Oct 28, 2021

Reducing embodied carbon in construction, with sustainability leader Sarah King

Sustainability leader Sarah King explains how developers and contractors can use the new EC3 software tool to reduce embodied carbon in their buildings.

Sponsored | Glass and Glazing | Oct 1, 2021

Specifying Responsibly to Save Birds’ Lives

Realizing sustainable, bird-friendly glass design

boombox1 - default
boombox2 -
native1 -

More In Category


Codes and Standards

Updated document details methods of testing fenestration for exterior walls

The Fenestration and Glazing Industry Alliance (FGIA) updated a document serving a recommended practice for determining test methodology for laboratory and field testing of exterior wall systems. The document pertains to products covered by an AAMA standard such as curtain walls, storefronts, window walls, and sloped glazing. AAMA 501-24, Methods of Test for Exterior Walls was last updated in 2015. 



halfpage1 -

Most Popular Content

  1. 2021 Giants 400 Report
  2. Top 150 Architecture Firms for 2019
  3. 13 projects that represent the future of affordable housing
  4. Sagrada Familia completion date pushed back due to coronavirus
  5. Top 160 Architecture Firms 2021