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Reading a Sheet-Metal Fault
Emma

Tạo bởi

Emma

27. tháng Chín 2026SE
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Reading a Sheet-Metal Fault

Eight rungs of this batch have each ended with a part that came out right. This one is about the ones that do not, because a fault is the only thing in a workshop that tells you what was actually happening. Sheet metal is unusually good at this. A wrinkle, a split, a scalloped rim, a bright score down a wall — each of those names a specific cause, and the name is usually enough to fix it. Almost every one reduces to one of three things: the metal was asked to stretch too far, the metal was not held tightly enough, or the edge it started from was bad. The graph on this page is the same information before the part is even finished: punch force against punch travel, which draws the fault while it is happening. This rung builds a board of deliberate faults, learns to read them, and ends with the process window that all of them live inside. It is a **sibling** to the deep-drawing rung, not a repeat of it: that one makes a cup, this one diagnoses across blanking, bending, drawing and seaming.
Trung cấp
About 3 hours

Hướng dẫn

1

Make the faults on purpose and label them

A fault board is the most useful thing you will make in this batch, and it takes an afternoon. Make each of these deliberately, on scrap, and label every one in permanent marker with what you did to cause it. Keep them. 1. **Wrinkled flange** — draw a cup with the blank holder barely finger tight. 2. **Split wall** — draw an identical cup with the blank holder bolted down hard. 3. **Cracked bend** — bend a coupon with the sheared burr on the *outside* of the bend, along the grain, at a radius below one thickness. 4. **Good bend, same radius** — the same coupon deburred and bent across the grain. This is the control and it is the one that makes the board convincing. 5. **Orange peel** — stretch a coarse-grained coupon hard over a dome. 6. **Eared rim** — draw a cup right through and leave the rim untrimmed. 7. **Galled wall** — draw a cup dry, with no lubricant at all, on a die you do not mind marking. 8. **Oil-canning panel** — a flat 150 mm square of thin sheet with no bead in it. Press the middle and listen. 9. **Unrolled seam** — the plain lock seam from rung 5, peeled. Nine samples, nine labels. Then put them somewhere you will see them, because the value of the board is recognition speed: the point is to look at a bad part six months from now and know within a second which of these it is.

Vật liệu cho bước này:

Tấm nhômTấm nhôm2 cái
Tấm thép mạ kẽm 0,9 mmTấm thép mạ kẽm 0,9 mm2 cái
Tấm đồng thauTấm đồng thau1 cái

Công cụ cần thiết:

Máy ép thủy lực xưởng (12 tấn)Máy ép thủy lực xưởng (12 tấn)
Máy chấn thủy lực (12 tấn)Máy chấn thủy lực (12 tấn)
Ê tô bàn nguộiÊ tô bàn nguội
Kéo cắt tônKéo cắt tôn
Bút dạ không xoáBút dạ không xoá
Thước cặp điện tử 6 inchThước cặp điện tử 6 inch
Dụng cụ gọt ba viaDụng cụ gọt ba via
Kính bảo hộ trong suốtKính bảo hộ trong suốt
Găng tay da bảo hộGăng tay da bảo hộ
2

Learn the difference between a split and a tear

Two failures look similar at arm's length and mean opposite things. Under the microscope they are unmistakable, and telling them apart is the single most valuable skill in this rung. **A split** is a *ductile* failure in metal that was stretched too far. Look for: - **local thinning** right at the failure — measure it with the micrometer against the metal 10 mm away, and it will be markedly thinner; - a **neck**, a visible narrowing that preceded the opening; - a rough, fibrous fracture face; - often an **orange-peel** surface nearby, because that metal was heavily strained. **A tear from an edge** is a crack that started at the blank's edge and ran. Look for: - **no thinning** — the metal at the failure is the same thickness as its neighbours; - the crack starting exactly at the boundary, usually at a burr or in rung 1's fracture zone; - a flat, straighter fracture face. The distinction matters because the fixes are opposite. A split says *the metal was asked for too much* — reduce the demand: less blank holder force, more lubricant, a softer temper, a bigger radius. A tear says *the metal was fine, the edge was not* — fix the edge, and changing the press settings will do nothing at all. Go through your fault board with the micrometer and sort every failure into one of the two before you read step 4's table. Getting this wrong is why people spend a day adjusting a press that was never the problem.

Công cụ cần thiết:

Kính hiển vi sốKính hiển vi số
PanmePanme
Thước cặp điện tử 6 inchThước cặp điện tử 6 inch
Bộ căn láBộ căn lá
Sổ ghi chép phòng thí nghiệm (có bản sao)Sổ ghi chép phòng thí nghiệm (có bản sao)
3

Put a load cell on the press and watch the fault happen

The graph on this page is punch force against punch travel for a draw. If you can log force, you can see a fault before the part exists. The simplest rig that works: a load cell or a bathroom-scale strain gauge between the ram and the punch, read by the Arduino or a meter, with travel read off a dial indicator or just marked every 2 mm on the ram and read by eye. Two people, one calling travel and one calling force, is a perfectly good instrument for this. Draw four cups and record force every 2 mm: - **normal**, properly held and lubricated; - **blank holder loose**; - **blank holder tight**; - **dry, no lubricant**. Plot all four on one sheet of graph paper. The shapes in step 4 are what you are looking for, and they are distinguishable by eye long before they are distinguishable in numbers: - a **rounded peak that falls away** is a healthy draw; - a **cliff** is a split; - a **saw-tooth** on the rise is wrinkles being dragged into the die gap one at a time; - a **peak much higher than the others** is friction — too tight, or no lubricant. The most useful thing on the plot is *where* the peak is. The force peaks when the flange is small and still being pulled, and a draw that is going to split splits just before the peak. If you are watching a gauge, that is your warning.

Vật liệu cho bước này:

Tấm nhômTấm nhôm2 cái
LanolinLanolin1 cái

Công cụ cần thiết:

Máy ép thủy lực xưởng (12 tấn)Máy ép thủy lực xưởng (12 tấn)
Máy ép trục (1 tấn)Máy ép trục (1 tấn)
Cảm biến lựcCảm biến lực
Arduino Uno R3Arduino Uno R3
Thước cặp điện tử 6 inchThước cặp điện tử 6 inch
Thước kẻThước kẻ
Giấy kẻ ô lyGiấy kẻ ô ly
Kính bảo hộ trong suốtKính bảo hộ trong suốt
Găng tay da bảo hộGăng tay da bảo hộ
Sổ ghi chép phòng thí nghiệm (có bản sao)Sổ ghi chép phòng thí nghiệm (có bản sao)
4

The sketch that logs force against travel

This is the whole instrument for step 3. It reads a load cell through an HX711 amplifier and prints one comma-separated line every time you press ENTER, stamping the current force against the next 2 mm of travel. Two columns, straight into the graph paper or a spreadsheet. Three things in it are worth reading rather than skipping: - **It tares on command, not at power-up.** A press has weight on the cell before you start; taring blind records that as force. - **It averages five reads.** A single HX711 conversion is quiet, but a hand press pumping is not, and one reading taken at the wrong instant of a stroke is noise pretending to be a measurement. - **The calibration figure is found, not assumed.** The comment block at the bottom is the procedure: tare empty, load a known mass, divide. A load cell that has never been checked against a known weight is producing numbers, not measurements, and this whole rung is about not confusing those two. Upload it, calibrate it against something you have weighed, and then run step 3's four draws through it.
draw_force_log.inoarduino
/*
  draw_force_log.ino -- log punch force against punch travel on a hand press.

  Hardware: a load cell between the ram and the punch, read through an HX711
  amplifier board. Travel is entered by the operator: press ENTER in the serial
  monitor every time the ram passes a mark, and the sketch stamps the current
  force against the next 2 mm step.

  Library: "HX711 Arduino Library" by bogde (Library Manager).
  Wiring:   HX711 DT -> D3, SCK -> D2, VCC -> 5V, GND -> GND.
*/

#include "HX711.h"

const int PIN_DT  = 3;
const int PIN_SCK = 2;
const float STEP_MM = 2.0;      // how far apart your marks on the ram are

// Found by the calibration routine below. Counts per newton.
float calibration = 21.7;

HX711 cell;
float travel = 0.0;

void setup() {
  Serial.begin(9600);
  cell.begin(PIN_DT, PIN_SCK);
  cell.set_scale(calibration);

  Serial.println(F("Remove all load, then send any character to tare."));
  while (!Serial.available()) { }
  while (Serial.available()) Serial.read();
  cell.tare(20);
  Serial.println(F("Tared."));

  Serial.println(F("travel_mm,force_N"));
}

void loop() {
  // A rolling average of 5 reads: the HX711 is quiet but a press is not.
  float force = cell.get_units(5);

  if (Serial.available()) {
    while (Serial.available()) Serial.read();
    Serial.print(travel, 1);
    Serial.print(',');
    Serial.println(force, 1);
    travel += STEP_MM;
  }
  delay(50);
}

/*
  CALIBRATION, once per rig:
   1. Comment out set_scale(calibration) above and upload.
   2. Tare with nothing on the cell.
   3. Put a KNOWN mass on it -- a 10 kg weight is 98.1 N.
   4. Read the raw value with cell.get_units(10) and divide it by 98.1.
   5. That quotient is your calibration figure. Put it back above.

  Do not trust a load cell you have not calibrated against a known mass. A
  number on a screen is not a measurement until something has checked it.
*/

Vật liệu cho bước này:

Arduino Uno R3Arduino Uno R31 cái
Cảm biến lựcCảm biến lực1 cái

Công cụ cần thiết:

Máy tính cài Arduino IDEMáy tính cài Arduino IDE
Đồng hồ vạn năngĐồng hồ vạn năng
Dây thử có kẹp cá sấuDây thử có kẹp cá sấu
5

The process window, and the fault table

Đang tải sổ tay Jupyter…

Công cụ cần thiết:

Giấy kẻ ô lyGiấy kẻ ô ly
6

History and context

**Attribution, stated honestly.** No patent is claimed for this rung and none exists to claim: reading a fault is a craft skill that every press shop develops and writes down in its own words. What *was* invented, and is worth naming, is the framework that makes those words comparable — the **forming limit diagram**, developed by Stuart Keeler and Walter Backofen and by Gorton Goodwin in the mid-1960s, which puts the major and minor strains from rung 6's circle grid on one chart and draws a line between what survives and what splits. Every modern press shop's diagnosis sits on that chart. **Why the faults are so few.** Eleven named faults in step 4's table, and almost all of them reduce to three causes: asked to stretch too far, not held enough, or a bad starting edge. That is not a coincidence — sheet metal has only a few degrees of freedom. It can thin, it can buckle, or it can crack from a flaw, and every named fault is one of those three wearing a location. **Why this rung closes the batch.** The nine rungs here are one argument: a flat sheet has no shape and no stiffness, and every operation in the discipline is a way of giving it one or the other. Cut it (rung 1), fold it (2), corrugate it (3), roll it into a joint (4, 5), measure what it will take (6), press it against rubber (7), draw a fastener out of it (8). This rung is what happens when one of those is asked for slightly more than it can give, and it is where a maker actually spends their time. **Honest limits.** A fault board is a recognition aid, not a diagnosis. Two different causes can produce faults that look identical — a wall split from an over-tight blank holder and one from a die radius that is too sharp look the same on the part, and the only way to separate them is the micrometer test in step 2 plus a look at the tooling. The process window in step 4 assumes a round cup and a uniform blank holder; a real part is neither, and its window is different at every point round the die. And none of this substitutes for keeping the tooling clean: a large fraction of the faults blamed on material are metal picked up on a die radius.

Vật liệu

6

Công cụ yêu cầu

21

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