Key takeaways
Die maintenance tracking is the record of what every stamping die has done, what was done to it, and what it needs next.
It covers progressive, transfer and line dies, and it answers one practical question: can this die run the next order without a surprise?
A die wears with every stroke, gets sharpened, shimmed and repaired, and moves between presses and storage. So it needs its own record, not a note on the press.
The master record describes the die itself and rarely changes. Values come from your die drawings and tryout sheets.
| Field | What it holds |
|---|---|
| Die ID | Unique number, stamped on the die and on its QR label |
| Part numbers | Every part the die produces (left and right hand, variants) |
| Die type | Progressive, transfer, line (tandem) or single station |
| Number of stations | Count of stations, each with its own ID for repairs |
| Parts per hit | How many parts one stroke makes (1-out, 2-out) |
| Press assignments | Presses the die is approved to run in |
| Shut height | Nominal closed height, plus current height after shims |
| Tonnage requirement | Force needed, checked against press capacity |
| Material | Strip material grade and thickness the die is built for |
| Storage location | Rack or floor position when not in a press |
| Documents | Drawings, strip layout, tryout report, spare parts list |
Two of these fields cause most planning errors when they are wrong: parts per hit and current shut height.
Parts per hit turns hits into parts, so a 2-out die with the field set to 1 doubles every forecast of the hits an order needs. Current shut height changes after every sharpening and shim, and the setter needs it at the next die change.
One press stroke with a die in it is one hit on that die. Each hit wears the cutting edges, the forming surfaces and the guiding parts a little.
Track three counters on every die.
| Counter | Resets when | Used for |
|---|---|---|
| Lifetime hits | Never | Die life, total cost per hit |
| Hits since last sharpen | Sharpening work order closed after tryout approval | Sharpening trigger |
| Hits since last PM | PM work order closed | PM trigger (springs, guides, sensors) |
Keep the counters on the die record. A counter that lives only on the press display is gone the moment the die comes out.
There are two common sources, and most press shops use both.
The PLC count is accurate, but it counts press strokes. It only becomes die hits when you know which die was in the press between two die changes.
So the die change itself is the key event. Log the die ID, the press, the time and the counter reading at every change, whether you scan a label or type it in.
A press counter tells you how hard the press worked. It says nothing about which die took those strokes.
Imagine a die that ran 40,000 hits on press 3 last week and 25,000 on press 5 this week. Each press shows a normal number, but the die has taken 65,000 hits and is past a 60,000 hit sharpening interval.
Use all four triggers, and record which one opened each work order.
| Trigger | Fires when | Typical work |
|---|---|---|
| Hit-based sharpening | Hits since last sharpen reach the interval | Grind punches and dies, shim, check heights |
| Hit-based PM | Hits since last PM reach the interval | Springs, strippers, guide pins, bushings, sensors |
| Condition-based | A quality or process signal goes out of limit | Inspect the station named in the defect |
| Calendar-based | A die has sat idle for a set period | Clean, oil, check for rust and damage |
Typical condition signals are burr height out of spec, a dimension drifting on the part check, slug pulling, a misfeed sensor stopping the press, or a crack on a formed flange.
The calendar trigger exists for dies that run rarely. A die that made 5,000 hits in a year never reaches its hit interval, but its springs, guides and surfaces still age in storage.
Set a warning level before each hit interval, for example at 80%, so the planner can schedule the pull. See also condition-based maintenance.
At any moment, every die should be in exactly one status. The press shop and the toolroom should see the same one.
| Status | Meaning |
|---|---|
| In press | Mounted and counting hits on a named press |
| In storage, ready | Released for production, next run allowed |
| Awaiting repair | Pulled with a defect or due for service, work order open |
| In repair | On the bench in the toolroom, work in progress |
| Awaiting tryout | Repair done, needs a tryout and first-off approval |
| Quarantined | Blocked, may not run until engineering or quality releases it |
| Retired | Scrapped, or its part is out of production; record kept for history |
The rule that matters most: a die leaves "Awaiting tryout" only with an approved first-off part. A die that goes straight from the bench to production turns the first shift into the tryout.
Use "Quarantined" for anything unresolved, such as a suspected crack or a crash.
Every visit to the toolroom gets a work order with structured fields. Free text alone ("sharpened die, fixed station") cannot be counted or compared.
| Field | Example entry |
|---|---|
| Trigger | Hit-based, condition-based, calendar, crash |
| Defect code | Burr, dimension, slug pull, crack, galling, misfeed |
| Station | Station ID where the work was done |
| Component replaced | Part number of punch, button, spring, insert |
| Sharpening amount removed | Millimetres ground from each section |
| Shim added | Shim thickness and location, new shut height |
| Hits at repair | Lifetime counter reading when the die was pulled |
| Labour hours | Toolmaker hours, plus tryout hours |
| Parts used | Spare parts consumed, from stock |
| Tryout result | First-off approved or rejected, with date |
The sharpening amount removed is the field most shops skip and later regret. Added up, it tells you how much grind stock is left on each section and when the section needs replacing.
Parts used should come out of the spare parts stock, so the stock level drops when a punch goes into a die. Our guide to spare parts inventory management covers min and max levels for die components.
The toolroom rarely has one die waiting. Rank the queue by two questions: when is the die needed, and how bad is the problem.
| Severity | Needed within 48 h | Not needed within 48 h |
|---|---|---|
| Cannot run (crash, broken punch, crack) | P1: start now | P2: next free toolmaker |
| Runs with risk (burr near limit, extra checks) | P2: next free toolmaker | P3: plan this week |
| Service due (sharpen or PM by hits) | P2: before the run | P3: plan this week |
| Minor (cosmetic, documentation) | P4: with next visit | P4: with next visit |
"Needed within 48 h" should come from the production schedule, not from whoever shouts loudest at the toolroom door.
If most of the queue is P1, the triggers are too late. Look at your maintenance backlog by die and by trigger to see why.
These numbers are an illustrative example, not a norm. Real sharpening intervals vary widely with the strip material, its thickness, the die steel, the clearance and the lubrication.
| Item | Value |
|---|---|
| Sharpening interval (from this die's history) | 60,000 hits |
| Warning level (80%) | 48,000 hits |
| Press speed | 30 strokes per minute |
| Stroking time per day (two shifts, after stops) | 10 hours |
| Hits since last sharpen, Monday 06:00 | 21,000 |
| Parts per hit | 2 |
30 strokes per minute × 60 minutes = 1,800 hits per hour.
1,800 × 10 hours = 18,000 hits per day, which is 36,000 parts at 2 parts per hit.
60,000 ÷ 18,000 = 3.3 production days between sharpenings.
The warning level arrives after 48,000 ÷ 18,000 = 2.7 days, which leaves only 12,000 hits (about 6.7 stroking hours, less than one shift) to plan the pull. On a die this fast, set the warning one production day early instead: 60,000 minus 18,000 = 42,000 hits.
Remaining hits on Monday morning: 60,000 minus 21,000 = 39,000.
After Monday, 21,000 remain. After Tuesday, 3,000 remain, which is only 3,000 ÷ 1,800 = 1.7 hours of running on Wednesday.
The best window is the end of Tuesday's second shift. The die comes out at a planned change instead of stopping the press mid-shift on Wednesday.
If the toolroom needs 4 hours to sharpen, shim and reset the die, plus 1 hour of tryout, it can be back in "In storage, ready" before Wednesday's first shift ends.
Suppose the open order is 90,000 parts. At 2 parts per hit that is 45,000 hits.
If this die sat in storage with 21,000 hits since its last sharpening, running the whole order would take it to 66,000, past the interval. Sharpen first, or split the run at a planned window.
Say the toolroom removes 0.10 mm per sharpening and a punch section has 2.0 mm of usable grind stock left (again, illustrative).
2.0 ÷ 0.10 = 20 more sharpenings, and 20 × 60,000 = 1.2 million hits before the section needs replacing. That only works if the amount removed is recorded every time.
Measure die performance in hits, not calendar time.
| KPI | Formula |
|---|---|
| Hits between failures (per die) | Hits in period ÷ unplanned repairs |
| Repair hours per 100k hits | Repair hours ÷ hits × 100,000 |
| Die-related downtime | Press minutes stopped for die causes |
| First-off pass rate after repair | Visits approved at the first tryout ÷ all toolroom visits × 100 |
| Planned share | Planned toolroom hours ÷ all toolroom hours × 100 |
Example for one die over a quarter: 1,200,000 hits, which at a 60,000 hit interval means 20 planned sharpenings plus 4 unplanned repairs. The toolroom booked 116 hours: 80 for sharpening at 4 hours each and 36 for the repairs.
Hits between failures = 1,200,000 ÷ 4 = 300,000. Repair hours per 100k hits = 116 ÷ 1,200,000 × 100,000 = 9.7 hours, of which 3.0 are unplanned.
If 22 of the 24 toolroom visits passed first-off on the first tryout, the first-off pass rate is 22 ÷ 24 = 91.7%.
Hits between failures is the die version of mean time between failures. Die-related downtime shows up in the press's availability, which is why OEE for stamping presses and die tracking belong together.
The press counter goes up, but no one knows which die took the hits. Log every die change.
A setter resets "hits since last sharpen" after a PM visit where nothing was ground.
Reset each counter only when the matching work order is closed, and reset both when one visit covers sharpening and PM.
Tryout hits, inching and scrap strokes all wear the die. Leave them out and the die reaches its real interval before the counter does.
"Fixed station 4" cannot be counted, sorted or compared.
Use defect codes, station IDs and numeric fields for amount ground and shim added.
A monthly PM on a die that runs 18,000 hits a day is far too late, and on a die that runs twice a year it is far too often.
Use hit-based triggers for running dies and calendar triggers only for idle ones.
Under schedule pressure, a setter mounts a repaired die before quality has seen a part. Block the change to "In storage, ready" until the first-off part is signed, and log who released it.
Tryout takes press time, so fast die changes help: see our guides to quick die change and SMED.
Start with the ten dies that cause the most downtime. For choosing a system, see tool and die maintenance software and our comparison of the best maintenance software for stamping dies.
Fabrico is an OEE platform with a full CMMS built in.
It connects to the press through PLC connectivity, so it can count strokes and calculate OEE per press in real time, including downtime and short stops.
You can register each die as its own asset with a QR code, so a toolmaker scans the die to open its history, documents and open work orders on the mobile app or the web.
Your team builds preventive plans from recurring templates and conditional tasks, and plans each sharpening from the hits it logs at every die change. The work orders record the spare parts consumed, with min and max stock levels for punches, springs and inserts.
Fabrico does not assign press strokes to a die on its own, and it does not open work orders when a counter reaches its interval. Those steps stay with your team.
The AI assistant answers questions about a press or a die's repair history in plain language.
Want to see die and press data in one place? Book a 30 minute demo with a Fabrico consultant, no commitment, or contact us with your questions.
A die record needs die ID, part numbers, die type, stations, parts per hit, press assignments, shut height, tonnage requirement and material. Each repair needs trigger, defect code, station, component replaced, amount ground, shim added, hours and parts used.
A stroke counter belongs to the press and counts every stroke it makes. A hit counter belongs to the die and counts only the strokes made while that die was mounted, across every press it ran in.
There is no universal number, because the interval depends on the strip material, thickness, die steel, clearance and lubrication. Set the interval from each die's own history, and adjust it using burr height and repair records.
Read the press stroke counter from the PLC and assign the strokes to the die that was mounted between two logged die changes. Without a logged die change, the count stays a press number, not a die number.
Hits between failures per die, repair hours per 100,000 hits, die-related press downtime and first-off pass rate after repair. Measure in hits, not calendar time, so idle dies do not look more reliable than they are.