Bending Guide
How to Calculate Press Brake Tonnage
The full air-bending formula, a worked example you can check your own numbers against, and the mistakes that most often throw the result off.
Press brake tonnage is the amount of bending force — measured in tons — that a machine has to apply to fold a piece of sheet metal to a given angle. Get it wrong on the low side and the brake stalls or the fold comes out short; get it wrong on the high side and you're overpaying for machine capacity you don't need, or worse, pushing a smaller machine past its rated limit. The good news is that for standard air bending, the number comes from four inputs you almost always already know: material, thickness, bend length, and V-die opening.
Skip the manual maths
Plug in your material, thickness, bend length and die width and get the tonnage instantly.
The air bending tonnage formula
For air bending — the most common method, where the punch forms the sheet against the die without pressing it fully home — bending force is calculated as:
Where:
- UTS — the material's ultimate tensile strength in megapascals (MPa). Mild steel S275 sits around 430 MPa; 304 stainless is closer to 620 MPa.
- T — sheet thickness in millimetres. This is squared in the formula, so it's the single biggest driver of tonnage.
- L — the total length of the bend in millimetres.
- V — the V-die opening width in millimetres, usually set using the 8×T rule.
The result comes out in kilonewtons. Since press brakes are rated in metric tons, divide by 9.81 (1 tonne-force ≈ 9.81 kN) to get the number you'll actually compare against a machine spec sheet.
Worked example
Take a common job: a 3mm mild steel panel (S275, ~430 MPa), a 2000mm bend, air-bent in a 24mm V-die (following the 8×T rule for 3mm stock).
Step by step
- Force = 1.54 × 430 × 3² × 2000 ÷ (24 × 1000)
- Force = 1.54 × 430 × 9 × 2000 ÷ 24,000
- Force = 11,919,600 ÷ 24,000 = 496.65 kN
- Convert to tons: 496.65 ÷ 9.81 = ~50.6 tons
- Add a 20% safety margin: 50.6 × 1.2 = ~60.8 tons
That last number — 60.8 t — is the one to shop a machine against, not the raw 50.6. A shop running this job every day would want a press brake rated comfortably above that, both for headroom on thicker stock later and to avoid running any machine flat out as routine.
Why thickness matters more than anything else
Because T is squared in the formula, tonnage scales with the square of thickness, not linearly. Double the material thickness and you roughly quadruple the force needed — everything else held constant. Going from 3mm to 6mm mild steel on the same 2000mm bend takes the requirement from ~50.6 tons to over 200 tons. This is the single most common source of surprise on a shop floor: someone specs a machine for "similar" jobs without checking that the thickest job in the mix hasn't quietly 4x'd the tonnage need.
Bottoming and coining need a lot more force
The formula above is for air bending. If the job calls for bottoming (pressing the sheet fully against the die) or coining (permanently forming the exact die radius into the material), tonnage climbs sharply — typically around 5× for bottoming, and anywhere from 5-10× again for coining, depending on how tight the corner needs to be. See air bending vs bottoming vs coining for when each method is worth the extra force.
Common mistakes that throw the number off
- Using a generic tensile strength. "Mild steel" spans a range; a specific grade (S235 vs S275 vs S355) can shift UTS by 15-20%, which shows up directly in the result.
- Guessing the V-die width. Tonnage is inversely proportional to V — a narrower die dramatically increases force. Always use the die you're actually tooling with, not an assumed one.
- Skipping the safety margin. Running a machine at its calculated limit with zero headroom leaves no room for material variation or tooling wear.
- Applying air-bend numbers to a bottoming or coining job. These need a different multiplier entirely — see above.
- Forgetting the kN → ton conversion. A lot of manual calculations quietly stay in kilonewtons and get compared against a tonnage spec by mistake, understating the requirement by roughly 10x.
Run your own numbers
The calculator handles the formula, the kN→ton conversion, and the safety margin for you — metric or imperial.
Frequently asked questions
Is press brake tonnage the same as bending force?
Yes — in this context they're the same thing. The formula gives force in kilonewtons, which gets converted to metric tons because press brakes are specified and sold by tonnage rating.
How much safety margin should I add?
20-30% is standard. It covers batch-to-batch material variation, tooling wear, and friction losses, and keeps you off the machine's rated ceiling during normal production.
Do I calculate tonnage per metre or for the whole bend?
The formula gives total force for the full bend length. A tons-per-metre figure is just that total divided by the bend length — handy for comparing against machines rated in tons/metre.
How accurate is this formula in practice?
Accurate enough for machine selection and quoting once you know true tensile strength, but it's still an estimate — friction, tooling condition and material batch all introduce some variance. Keep the safety margin and confirm against your own machine and tooling specs.
Does the formula change for bottoming or coining?
The formula above calculates air bending force specifically. Bottoming typically runs about 5x higher, and coining another 5-10x on top of that, because both methods press the material fully into the die rather than just forming it against the opening.