
On the tempering line, the last thing you want is a furnace hot zone that’s chasing temperature all over the place. You end up with uneven stress, bow, or worse—fractures right at the quench. Stress control isn’t a promise. It’s a thermal profile you can lock in and run.
What matters under the hood
We build the heating section around short-wave quartz infrared emitters. Glass absorbs strongly in this band, and the heat transfers by radiation, not convection. That gives you faster response and cuts down the air turbulence that creates local hot spots. The emitters run in 230 V/460 V configurations, and the layout is dense enough to deliver high power density in a compact zone. We keep the hot-face temperature under control so the thermal field across the glass surface stays repeatable. Set emissivity and the lamp-to-glass distance so the glass heats fast—without the surface overshooting.
Why this matters on the line
In tempering, stress removal comes down to uniform heating before the quench. A stable thermal field reduces differential expansion, so the glass hits the quench at a consistent temperature. The payoff is fewer edge waves, less optical distortion, and fewer rejects. The fast response also trims cycle time, which matters when you’re pushing architectural, automotive, or safety glass through the line. Energy use drops too, because the quartz IR heats the glass directly instead of heating up the whole furnace body. The module is designed as a drop-in replacement for many OEM hot-zone assemblies.
The practical details you’ll run into
This is a line-side upgrade. Make sure the electrical phases match your existing cabinet, and check reflector geometry for clearance against nearby rollers and insulation. There will be a short re-tuning window while you dial in your recipe. Once the profile is set, the process stays repeatable. Emitter life is long, but quartz tubes are sensitive to contamination. Keep the hot zone clean and keep the lamp ends dry—otherwise you’ll start seeing hot-spot drift.