Bend Allowance Calculator

Obtain an estimate of the bend allowance given the material thickness, bend angle, inside radius, and k-factor for a given material with our bend allowance calculator.

Clear
Bend allowance6.0947 mmthe arc length of the neutral axis through the bend — this is the material the bend consumes
Neutral axis position0.88 mm from the insideK = 0.44 — below the mid-thickness, because the outside stretches more than the inside compresses
Outside setback5 mm(R + T) tan(θ/2) — from the bend line to the outside mould line
Bend deduction3.9053 mmtwice the setback less the allowance — subtract this from the sum of the outside flange lengths
Flat blank length66.095 mm40 + 30 − 3.905 — cut the blank to this and the finished part comes out to size
Material the bend consumes3.9053 mm5.58% of the summed flange lengths
Radius to thickness ratio1.5a typical bend
Outside bend radius5 mm
Minimum flange the tooling allows7.5 mma rough guide — a flange much shorter than this cannot be held on the die
At a K-factor of 0.335.7491 mm allowance-0.3456 mm difference
At a K-factor of 0.56.2832 mm allowance0.1885 mm difference

The formula

bend allowance = θ(π/180)(R + K·T)

Bending stretches the outside

When sheet metal is bent, the outside surface is in tension and stretches while the inside is in compression. Somewhere between them is a neutral axis whose length does not change, and that arc length is what the flat blank must supply.

The neutral axis does not sit at the mid-thickness. Because the outside stretches more than the inside compresses, it shifts towards the inside face — typically to about 0.44 of the thickness, which is what the K-factor records. Tight bends push it lower, towards 0.33; generous radii let it approach the geometric middle at 0.5.

Bend deduction is the practical number on a shop floor: measure the part by its outside dimensions, add the flange lengths, subtract the deduction, and that is the blank size. Bend allowance is the same physics expressed from the bend line instead.

A radius smaller than the material thickness risks cracking the outside surface, and how much smaller you can go depends on the alloy and on the grain direction — bending across the grain tolerates a tighter radius than bending along it. K-factors are also material and tooling specific, so a shop measuring its own is more reliable than any published table.