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Bending: Where the Metal Goes, and How Much Comes Back
Emma

Nilikha ni

Emma

27. Setyembre 2026SE
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Bending: Where the Metal Goes, and How Much Comes Back

Two things go wrong the first time anyone folds sheet metal, and they are both arithmetic. The part comes out too big, because a bend **consumes** metal — the outside of the bend has further to travel than the inside, and the length that counts is neither. And the angle comes out too open, because part of the bend was elastic and gave itself back the moment the punch lifted. Both have closed-form answers that a maker can actually use: the bend allowance with its K-factor, and the springback ratio. This rung measures the K-factor of your own material on your own brake — which is the only figure worth trusting — then uses it to cut a flat blank that folds up to size.
Katamtaman
About 3 hours

Mga Tagubilin

1

Bend a test coupon and find YOUR K-factor

Every table of K-factors is somebody else's material on somebody else's machine. Measure your own; it takes twenty minutes and everything afterwards depends on it. Cut three strips of 1 mm sheet, **exactly 100.00 mm long** and about 40 mm wide. Measure each one with the calipers and write the real number down, not the intended one. Bend each strip to 90° in the press brake, roughly in the middle, and let it spring. Then measure, on the finished part: - the two **outside** leg lengths, A and B, with the calipers against a flat reference; - the **inside radius**, by trying radius gauges or by rolling drill shanks into the corner until one just touches; - the actual **angle**, with the combination square or a protractor. Now work backwards. The bend allowance is what the flat length gave up: `BA = flat − (A + B) + 2·(R + t)·tan(θ/2)`. Put that into the allowance formula from step 4 and solve for K. Expect something between 0.33 and 0.45 for a tight bend in mild steel. If you get a number outside 0.25–0.55, check the angle: the formula assumes you reached the angle you think you did, and springback means you usually did not. Do it for each material you keep in stock and tape the list inside the brake. This is the single most useful piece of paper in a sheet metal shop.

Mga materyales para sa hakbang na ito:

Plantsang asero na may sinkeng patong, 0,9 mmPlantsang asero na may sinkeng patong, 0,9 mm1 piraso
Plantsang aluminyoPlantsang aluminyo1 piraso

Mga kailangang kasangkapan:

Hidrolikong pambaluktot na pisaan (12 tonelada)Hidrolikong pambaluktot na pisaan (12 tonelada)
Gunting sa lataGunting sa lata
Digital na Kalibrador 6 PulgadaDigital na Kalibrador 6 Pulgada
MikrometroMikrometro
Panuka na PinagsamaPanuka na Pinagsama
RulerRuler
Set ng panukat ng siwangSet ng panukat ng siwang
Panggilit ng labi ng hulmaPanggilit ng labi ng hulma
Malinaw na Salaming PangkaligtasanMalinaw na Salaming Pangkaligtasan
Guwantes na Katad PangtrabahoGuwantes na Katad Pangtrabaho
Kuwaderno sa laboratoryo (may kopya)Kuwaderno sa laboratoryo (may kopya)
2

Bend across the grain, then along it, and see the difference

Rolled sheet is not the same in every direction. The rolling elongated its grains, so the metal is more ductile **across** the rolling direction than along it. Find the grain first. On most sheet it is visible as a faint directional texture under a low raking light; on galvanised steel look at the spangle pattern; if in doubt, the long edge of a standard sheet usually runs with the grain. Cut two identical coupons, one with its bend line **across** the grain and one **along** it. Bend both to 90° over progressively tighter radii — start generous, work down — and record the radius at which each one first shows cracking on the outside of the bend. Use the microscope; the first cracks are small and matt before they are visible as splits. The across-grain coupon will take a noticeably tighter radius. For soft aluminium the difference is small; for a half-hard temper or a high-strength alloy it can be the difference between a good part and a scrap one. Two practical consequences: 1. **Orient the part on the sheet so tight bends run across the grain.** That decision is made at the nesting stage of rung 1, before anything is cut, and cannot be recovered afterwards. 2. **Put the sheared edge's burr on the INSIDE of the bend.** Rung 1 left microcracks in the fracture zone; on the outside of a bend they open. Deburring first is not tidiness, it is what stops the part splitting.

Mga materyales para sa hakbang na ito:

Plantsang aluminyoPlantsang aluminyo1 piraso
Plantsang asero na may sinkeng patong, 0,9 mmPlantsang asero na may sinkeng patong, 0,9 mm1 piraso
Lapad na BronseLapad na Bronse1 piraso

Mga kailangang kasangkapan:

Hidrolikong pambaluktot na pisaan (12 tonelada)Hidrolikong pambaluktot na pisaan (12 tonelada)
Bais sa Mesang PanggawaBais sa Mesang Panggawa
Kabit na prensa para sa bisyo ng mesaKabit na prensa para sa bisyo ng mesa
Mikroskopyong DigitalMikroskopyong Digital
Digital na Kalibrador 6 PulgadaDigital na Kalibrador 6 Pulgada
Panggilit ng labi ng hulmaPanggilit ng labi ng hulma
Pangmarkang Hindi NabuburaPangmarkang Hindi Nabubura
Malinaw na Salaming PangkaligtasanMalinaw na Salaming Pangkaligtasan
Kuwaderno sa laboratoryo (may kopya)Kuwaderno sa laboratoryo (may kopya)
3

Cut one flat blank from the arithmetic and fold it up

Now prove the whole thing on a part with more than one bend, because errors in a flat pattern accumulate and a single bend hides them. Draw a simple **U channel**: 40 mm / 60 mm / 40 mm outside, in 1 mm sheet, 1 mm inside radius. Two bends. Using your own measured K, compute the bend deduction and the flat blank length. The notebook in step 4 works exactly this example through; get the same answer by hand before you look at it. Cut the blank to that length, mark both bend lines, and set the back gauge from the mark rather than from the end of the sheet — back gauge errors are the other half of why channels come out wrong. Fold both bends **in the same direction and in the right order**: the second bend has to clear the first, and on a U the middle is the last thing you can reach. Think it through before the first bend, not after. Measure the finished channel across the outside of the two legs. Within about 0.2 mm is a good result for a hand-set brake. If it is consistently over, your K is too low; consistently under, too high. Adjust it, write the new figure down, and do it again — two iterations usually lands it. Keep your hands out of the brake. A press brake closes slowly and with more force than anything else in a small shop, and the part **kicks up** as it folds: hold it from the sides, never from above the bend line.

Mga materyales para sa hakbang na ito:

Plantsang asero na may sinkeng patong, 0,9 mmPlantsang asero na may sinkeng patong, 0,9 mm1 piraso

Mga kailangang kasangkapan:

Hidrolikong pambaluktot na pisaan (12 tonelada)Hidrolikong pambaluktot na pisaan (12 tonelada)
Digital na Kalibrador 6 PulgadaDigital na Kalibrador 6 Pulgada
Panuka na PinagsamaPanuka na Pinagsama
RulerRuler
Panggurit na DiyamantePanggurit na Diyamante
Pangmarkang Hindi NabuburaPangmarkang Hindi Nabubura
Malinaw na Salaming PangkaligtasanMalinaw na Salaming Pangkaligtasan
Guwantes na Katad PangtrabahoGuwantes na Katad Pangtrabaho
Kuwaderno sa laboratoryo (may kopya)Kuwaderno sa laboratoryo (may kopya)
4

Allowance, springback and tonnage

Naglo-load ng Jupyter notebook…

Mga kailangang kasangkapan:

Papel na GrapPapel na Grap
5

Hit the angle: overbend, or bottom it

There are three ways to beat springback and they cost different amounts. **Overbend.** Bend past the target by the amount step 4 computed and let it spring back to where you want it. Free, works on any brake, and it is what almost everyone does. Its weakness is that it depends on the material being consistent — a different batch, a different temper, and the compensation is wrong. **Bottoming.** Close the punch fully into the vee so the metal takes the vee's angle. The vee is usually ground a degree or two sharp for exactly this reason. Far more repeatable, needs perhaps three to five times the air-bending force, and the radius is now the punch's, not the vee's. **Coining.** Drive the punch hard enough to plastically squash the metal in the bend zone so there is almost no elastic strain left to recover. Springback nearly vanishes, repeatability is excellent, and the force is of the order of ten times air bending — enough that a small brake simply cannot do it in steel. Try the first two. Air bend a coupon and measure the angle; overbend by your computed amount and measure again; then bottom one in the same vee and measure a third time. Record all three, with the pressure setting if your brake has a gauge. Do **not** attempt to coin on a machine whose capacity you have not checked against step 4's table. Overloading a brake does not bend the part more, it bends the machine, and the damage is to the ram and the bed rather than to anything you can see.

Mga materyales para sa hakbang na ito:

Plantsang asero na may sinkeng patong, 0,9 mmPlantsang asero na may sinkeng patong, 0,9 mm1 piraso
Plantsang aluminyo (6061-T6)Plantsang aluminyo (6061-T6)1 piraso

Mga kailangang kasangkapan:

Hidrolikong pambaluktot na pisaan (12 tonelada)Hidrolikong pambaluktot na pisaan (12 tonelada)
Hidrolikong pisaan sa talyer (12 tonelada)Hidrolikong pisaan sa talyer (12 tonelada)
Panuka na PinagsamaPanuka na Pinagsama
Digital na Kalibrador 6 PulgadaDigital na Kalibrador 6 Pulgada
Set ng panukat ng siwangSet ng panukat ng siwang
Malinaw na Salaming PangkaligtasanMalinaw na Salaming Pangkaligtasan
Guwantes na Katad PangtrabahoGuwantes na Katad Pangtrabaho
Kuwaderno sa laboratoryo (may kopya)Kuwaderno sa laboratoryo (may kopya)
6

History and context

**Attribution, stated honestly.** No patent is claimed for this rung and none should be. Folding sheet between a punch and a vee is as old as sheet metal, and the bend allowance is geometry that anyone who bends metal for a living rediscovers. What is worth naming is the **K-factor** itself: the recognition that the neutral axis moves, that it moves by an amount which depends on how tight the bend is, and that a single empirical fraction captures it well enough to cut blanks by. That is a good example of a pattern this catalogue keeps meeting. The exact elastic-plastic solution for a bend is genuinely hard and was not available to the trade for most of the period this batch covers. One measured fraction, tabulated by material and radius, does the job. Shop arithmetic that is right to a tenth of a millimetre beats theory you cannot run. **Where it goes next.** Every rung after this one is a bend that has been made to do something else. Rung 3 bends the same sheet repeatedly to make it stiff. Rungs 4 and 5 bend it back on itself to make a joint. Rung 7 bends it against rubber instead of steel. The arithmetic here is underneath all of them. **Honest limits.** The K-factor is an empirical fit, not a physical constant: it drifts with material, temper, lubricant, vee width and how sharp the punch is. A published table will get you within a few tenths of a millimetre, and that is usually not good enough for a part that has to fit — which is why step 1 measures it rather than looking it up. The springback formula is likewise an estimate, and it says nothing at all about a bend near a hole or an edge, where the metal is free to move sideways and does.

Mga Materyales

4

Mga Kinakailangang Kasangkapan

18

CC0 Pampublikong Domain

Ang blueprint na ito ay inilabas sa ilalim ng CC0. Malaya kang kumopya, magbago, mamahagi, at gumamit nang walang pahintulot.

Suportahan ang Maker sa pamamagitan ng pagbili ng mga produkto sa kanilang Blueprint Komisyon ng Maker itinakda ng mga Vendor, o lumikha ng bagong bersyon ng Blueprint na ito at isama bilang koneksyon sa iyong Blueprint upang ibahagi ang kita.

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