CNC and hydraulic press brake machines for U.S. fabrication shops.
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Technical buying data
Press brake tonnage and tooling limits
Every figure in this chart is calculated from the standard air-bend formula rather than copied from another chart, and the arithmetic for each row is shown underneath so you can audit it against your own numbers.
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Air-bend press brake tonnage per lineal foot, calculated from T = (650 × t²) ÷ V.
Basis: air bending, 60,000 PSI mild steel, V-die opening set at 8× material thickness. Stainless and aluminum columns apply the published multipliers of ×1.5 and ×0.5 to the mild-steel result. The final column adds a 20% safety margin to the mild-steel figure — that is the number to spec a machine against, not the bare calculated value. Every row's arithmetic is shown in the note below.
Material thickness
V-die openingat 8 × thickness
Mild steeltons / ft
Stainless× 1.5 — tons / ft
Aluminum× 0.5 — tons / ft
Mild steel + 20% margintons / ft — spec to this
16 GA0.060 in (1.52 mm)
0.48 in (12.2 mm)
4.9
7.3
2.4
5.8
14 GA0.075 in (1.91 mm)
0.60 in (15.2 mm)
6.1
9.1
3.0
7.3
11 GA0.120 in (3.05 mm)
0.96 in (24.4 mm)
9.8
14.6
4.9
11.7
3/16 in0.1875 in (4.76 mm)
1.50 in (38.1 mm)
15.2
22.9
7.6
18.3
1/4 in0.250 in (6.35 mm)
2.00 in (50.8 mm)
20.3
30.5
10.2
24.4
3/8 in0.375 in (9.53 mm)
3.00 in (76.2 mm)
30.5
45.7
15.2
36.6
1/2 in0.500 in (12.70 mm)
4.00 in (101.6 mm)
40.6
60.9
20.3
48.8
Show your work — every row, calculated.
Formula: T = (650 × t²) ÷ V, where T is US tons per lineal foot, t is thickness in inches, V is V-die opening in inches. With V = 8t the expression reduces to T = 650t ÷ 8 = 81.25 × t, which is a useful sanity check on every row below.
• 16 GA, t = 0.060: V = 8 × 0.060 = 0.48. t² = 0.003600. 650 × 0.003600 = 2.340. 2.340 ÷ 0.48 = 4.875 → 4.9. Check: 81.25 × 0.060 = 4.875 ✓
• 14 GA, t = 0.075: V = 0.60. t² = 0.005625. 650 × 0.005625 = 3.656. 3.656 ÷ 0.60 = 6.094 → 6.1. Check: 81.25 × 0.075 = 6.094 ✓
• 11 GA, t = 0.120: V = 0.96. t² = 0.014400. 650 × 0.014400 = 9.360. 9.360 ÷ 0.96 = 9.750 → 9.8. Check: 81.25 × 0.120 = 9.750 ✓
• 3/16 in, t = 0.1875: V = 1.50. t² = 0.035156. 650 × 0.035156 = 22.852. 22.852 ÷ 1.50 = 15.234 → 15.2. Check: 81.25 × 0.1875 = 15.234 ✓
• 1/4 in, t = 0.250: V = 2.00. t² = 0.062500. 650 × 0.062500 = 40.625. 40.625 ÷ 2.00 = 20.313 → 20.3. Check: 81.25 × 0.250 = 20.313 ✓
• 3/8 in, t = 0.375: V = 3.00. t² = 0.140625. 650 × 0.140625 = 91.406. 91.406 ÷ 3.00 = 30.469 → 30.5. Check: 81.25 × 0.375 = 30.469 ✓
• 1/2 in, t = 0.500: V = 4.00. t² = 0.250000. 650 × 0.250000 = 162.500. 162.500 ÷ 4.00 = 40.625 → 40.6. Check: 81.25 × 0.500 = 40.625 ✓ Multipliers: stainless column = mild steel × 1.5; aluminum column = mild steel × 0.5; margin column = mild steel × 1.2. Published multipliers, ADH Machine Tool. Scaling to your part: these are tons per foot. A 1/4 in mild steel part with a 6 ft bend needs 20.3 × 6 = 122 tons, or 146 tons with the 20% margin. Then check that figure against the limits in Table 6 before you buy anything. What this does not cover: the 650 constant assumes air bending 60,000 PSI mild steel. Bottoming runs roughly 4–5× the air-bend figure and coining roughly 10×. Higher-strength steels raise the constant. Change any of those and this chart does not apply.
Sources for formula and multipliers: ADH Machine Tool, What Is Press Brake Tonnage · RMFG, Press Brake Tonnage Chart & Calculator. The tonnage values in the table are UmproTech's own calculation from that published formula, shown in full above so they can be audited.
Every tonnage chart online tells you how much force a bend needs; this one tells you how much force your machine and tooling can legally take in one spot, which is the number that actually bows beds and cracks tooling.
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Press brake tonnage limits: safe tons per foot and the shortest bend that is safe at full rated tonnage.
Calculated from the published 60% span rule — safe tons per foot = rated tons ÷ (0.60 × side-frame span in feet). The span column is an assumption, not a specification. Side-frame span is the clear distance between the machine's side housings, which is not the same as bed length or overall machine length. Substitute your own machine's actual span before you rely on any figure in this table; the arithmetic is shown below so you can redo it in one line.
Machine rated tonnage
Assumed side-frame spansubstitute your machine's actual figure
Safe tons per footrated ÷ (0.60 × span)
Shortest bend safe at full tonnage0.60 × span
Load at that bendtons per inch
Working tonnage after derate70% / 80% of rated
60 tons
6 ft (1.83 m)
16.7 tons / ft
3.6 ft — 43 in (1097 mm)
1.39 tons / in
42 t / 48 t
100 tons
8 ft (2.44 m)
20.8 tons / ft
4.8 ft — 58 in (1463 mm)
1.74 tons / in
70 t / 80 t
150 tons
10 ft (3.05 m)
25.0 tons / ft
6.0 ft — 72 in (1829 mm)
2.08 tons / in
105 t / 120 t
200 tons
12 ft (3.66 m)
27.8 tons / ft
7.2 ft — 86 in (2195 mm)
2.31 tons / in
140 t / 160 t
300 tons
14 ft (4.27 m)
35.7 tons / ft
8.4 ft — 101 in (2560 mm)
2.98 tons / in
210 t / 240 t
Show your work — the 60% span rule, every row.
Rule: safe tons per foot = rated tons ÷ (0.60 × span in feet), and the shortest bend that may be run at full rated tonnage is 0.60 × span. Below that length, tonnage must be reduced.
• 60 t, 6 ft span: 0.60 × 6 = 3.6. 60 ÷ 3.6 = 16.67 tons/ft. Shortest full-tonnage bend = 3.6 ft = 43.2 in. Load check: 60 ÷ 43.2 = 1.39 tons/in.
• 100 t, 8 ft span: 0.60 × 8 = 4.8. 100 ÷ 4.8 = 20.83 tons/ft. Shortest full-tonnage bend = 4.8 ft = 57.6 in. Load check: 100 ÷ 57.6 = 1.74 tons/in.
• 150 t, 10 ft span: 0.60 × 10 = 6.0. 150 ÷ 6.0 = 25.00 tons/ft. Shortest full-tonnage bend = 6.0 ft = 72 in. Load check: 150 ÷ 72 = 2.08 tons/in.
• 200 t, 12 ft span: 0.60 × 12 = 7.2. 200 ÷ 7.2 = 27.78 tons/ft. Shortest full-tonnage bend = 7.2 ft = 86.4 in. Load check: 200 ÷ 86.4 = 2.31 tons/in.
• 300 t, 14 ft span: 0.60 × 14 = 8.4. 300 ÷ 8.4 = 35.71 tons/ft. Shortest full-tonnage bend = 8.4 ft = 100.8 in. Load check: 300 ÷ 100.8 = 2.98 tons/in. How to read the "load at that bend" column: it is the tons-per-inch the tooling sees if you apply the machine's full rated tonnage across the shortest permitted bend. Compare it to the tooling's concentrated-load rating in Table 6b. On every row above it lands well under even a 4 tons/in tooling rating — which is the point: the span rule, followed correctly, keeps you inside the tooling limit. Break the span rule with a short bend at full tonnage and both limits go at once. Why derate: published guidance is to work at 70–80% of rated capacity rather than at the nameplate, which is what the last column shows. A 100-ton machine is a 70–80 ton working machine.
Product-page rule: replace the illustrative span classes above with the exact model's rated tonnage, bed length and clear housing-to-housing span. Do not present the round classes as UmproTech machine specifications.
The second limit is the tooling itself: standard press brake tooling profiles carry a published concentrated-load rating of 4 to 12 tons per inch, and guidance is to work at 70–80% of it.
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Press brake tooling concentrated-load rating, and maximum tonnage over a 12-inch bend.
Published rating band for standard tooling profiles is 4–12 tons per inch; the derated columns apply the published guidance to work at 70–80% of rated capacity. Your tooling's actual rating is stamped or published by its maker and overrides everything in this table. Precision-ground and specialty profiles fall outside the standard band.
Tooling rating
Derated to 80%
Derated to 70%
Max load over a 12 in bend, at rating
Max load over a 12 in bend, derated 80% / 70%
4 tons / inbottom of published band
3.2 tons / in
2.8 tons / in
48 tons
38.4 t / 33.6 t
6 tons / in
4.8 tons / in
4.2 tons / in
72 tons
57.6 t / 50.4 t
8 tons / in
6.4 tons / in
5.6 tons / in
96 tons
76.8 t / 67.2 t
10 tons / in
8.0 tons / in
7.0 tons / in
120 tons
96.0 t / 84.0 t
12 tons / intop of published band
9.6 tons / in
8.4 tons / in
144 tons
115.2 t / 100.8 t
Show your work. Derated rating = rating × 0.80 and rating × 0.70. Max load over a 12 in bend = rating × 12. Worked: 4 × 0.80 = 3.2 and 4 × 0.70 = 2.8; 4 × 12 = 48 t, 48 × 0.80 = 38.4 t, 48 × 0.70 = 33.6 t. Same pattern at 6, 8, 10 and 12 tons/in. The check that matters. Before a short bend at high tonnage, run both limits: (1) is the bend at least 60% of the side-frame span? and (2) does applied tons ÷ bend length in inches land under your tooling's derated rating? A 60-ton hit concentrated over a 6 in punch is 10 tons/in — inside a 12 tons/in tool at rating, but outside that same tool derated to 80% (9.6 tons/in), and far outside a 4 tons/in tool. That is the calculation that saves tooling.
Do not name a tooling line or load rating until its current manufacturer datasheet is attached to the product record; final tooling selection and tons-per-inch limits are quotation-specific
Air bending 1/4 inch (6.35 mm) mild steel over a 2.000 inch V-die (8x thickness) takes about 20.3 tons per lineal foot using T = (650 x t squared) / V, or roughly 24.4 tons per foot once a 20 percent safety margin is added. That works out to about 98 tons for a 4 foot bend and about 195 tons for an 8 foot bend. Narrow the die to 5/8 inch and the same material jumps to about 65 tons per foot, so the die opening matters as much as the thickness. Stainless at the same thickness and die needs about 1.5 times the mild-steel figure.
Why does my 200-ton brake damage tooling on a short bend?
Because full rated tonnage only applies when the bend length is at least about 60 percent of the distance between the side frames. ADH Machine Tool publishes the check as safe tons per foot = rated tons / (0.60 x span in feet), so a 200-ton machine on a 10 ft span is limited to about 33.3 tons per foot — a 12 inch bend safely takes roughly 33 tons, not 200. Concentrating full tonnage into a short bend also blows past the tooling's tons-per-inch rating, which ADH puts at 4 to 12 tons per inch for standard profiles. Jeelix recommends staying at 70–80 percent of a tool's rated capacity in production rather than running it at the number.
The standard rule is a V-opening of 6 to 8 times material thickness for sheet up to about 3 mm, then 8x for 3–8 mm, 10x for 9–10 mm and 12x above 12 mm, per MachineMFG. WILA Tooling publishes the same 6–8x rule for steel, calls for 12–15x or more on high-tensile material, and states that going below 6x thickness makes the bend less precise. The die opening also sets the inside radius: MachineMFG puts it at roughly 0.16 to 0.17 times the V-opening, so a 2 inch die produces about a 0.320–0.340 inch inside radius no matter what angle you program. Narrowing the die raises tonnage sharply — ADH Machine Tool publishes a 14 percent increase going from a 1.125 inch to a 1.000 inch die on the same material.