ISO 3585 · DIN ISO 3585
Borosilicate 3.3 — the glass, and its limits
Almost every piece of glassware we sell is made from it. Here is what the 3.3 actually refers to, what the material will and will not survive, and the numbers worth knowing before you heat something.
The name
Why 3.3
The number is the glass’s coefficient of linear thermal expansion: 3.3 × 10−6 K−1, measured between 20 and 300 °C. It is not a grade, a quality tier or a version number — it is a physical constant, and it is the reason this glass behaves the way it does.
When glass is heated unevenly, the hot part tries to expand while the cold part holds it back. The resulting stress is what cracks it. Halve the expansion coefficient and you roughly halve the stress for the same temperature difference. Ordinary soda-lime glass expands at about 9.1 × 10−6 K−1 — nearly three times as much.
That single property is what makes the difference between a flask you can take straight from a heating mantle to a cooling bath, and a jar that has to be treated gently.
The composition behind it is high in silica and boron oxide, with very little sodium:
| Component | Share by weight |
|---|---|
| Silica — SiO2 | 80.6 % |
| Boron oxide — B2O3 | 13.0 % |
| Sodium oxide — Na2O | 4.0 % |
| Alumina — Al2O3 | 2.3 % |
Interactive
Thermal shock, side by side
Drag the temperature jump and watch what happens to each glass.
0 K260 K
Borosilicate 3.3
Soda-lime
Reference
Properties to ISO 3585
Thermal and physical
| Linear expansion, 20–300 °C | 3.3 × 10−6 K−1 |
| Density at 25 °C | 2.23 g/cm3 |
| Strain point | 525 °C |
| Annealing point | 565 °C |
| Softening point | 821 °C |
| Maximum working temperature | 500 °C, short periods only |
Chemical resistance classes
| Hydrolytic resistance (ISO 719) | Class HGB 1 — highest |
| Acid resistance (DIN 12116) | Class S1 — highest |
| Alkali resistance (ISO 695) | Class A2 |
Note the asymmetry. Borosilicate 3.3 sits in the top class for water and for acids, but only the middle class for alkali. That is not a defect — it is chemistry. Hot alkaline solutions dissolve the silica network itself, and no silicate glass escapes it.
Where the temperature limits sit
Honest limits
What borosilicate 3.3 will not survive
The material is remarkably inert, which makes the exceptions worth memorising. Each of these attacks the glass itself, not whatever is on it.
Hydrofluoric acid
Dissolves silicate glass outright, at any concentration and any temperature. There is no safe exposure and no glass grade that resists it.
Phosphoric acid
Tolerable cold and dilute; aggressive hot and concentrated, where it etches the surface and progressively thins the wall.
Strong hot alkali
Hot caustic soda or potash dissolves the network steadily. Brief cold contact is routine; prolonged hot contact frosts the surface and eventually weakens it. This is why base baths destroy ground joints and sintered discs.
Damage is cumulative and invisible at first. Alkali attack does not announce itself with a crack. It frosts the surface, widens the pores of a frit past its grade, and loosens the fit of a ground joint — all of which show up later as a failed separation or a joint that will not hold vacuum.
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Borosilicate 3.3 glassware
Everything in the Synthware range is made from it.
