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Home - News - Preventive Maintenance of Picanol Loom Spare Parts: Why It Beats Emergency Repairs + Real Fault Case Studies

Preventive Maintenance of Picanol Loom Spare Parts: Why It Beats Emergency Repairs + Real Fault Case Studies

August 6, 2026

Part 1 — The Preventive Maintenance Framework

1.1 The Real Cost of Running-to-Failure

Walk into any weaving shed running Picanol OmniPlus or OptiMax looms at 700+ RPM, and you will hear it — the rhythmic, relentless beat of production. When all 40 or 60 looms are humming, the shift supervisor can breathe. But when one loom stops and the red light flashes, the math starts immediately.

Take a mid-size denim mill in Shaoxing: 48 Picanol OmniPlus-800 looms running 24/7, producing roughly 240,000 meters of fabric per month. One unplanned stoppage on a single loom for 6 hours costs approximately 300 meters of lost output. If the root cause is a failed auxiliary nozzle that was never inspected, and the replacement part is not in stock, that 6-hour stoppage easily stretches to 24–48 hours while procurement scrambles.

Now consider the knock-on effects. A weft insertion fault traced back to a worn relay solenoid valve often goes undiagnosed for the first two hours. The technician swaps the nozzle first — wrong call. Then checks the weft detector — still faulting. By the time the solenoid is identified, three hours of troubleshooting have been burned. Meanwhile, the downstream finishing line is waiting on greige fabric.

This is the difference between preventive maintenance and emergency repair. One is a planned investment of 15–30 minutes per part on a fixed schedule. The other is a cascade of lost production, overtime labor, and rushed freight on spare parts. Our maintenance logs over three years show that looms on a preventive schedule average 2.1 unplanned stoppages per quarter; those run-to-failure average 7.4.


1.2 Critical Spare Parts — Wear Patterns, Symptoms, and Maintenance Windows

1.2.1 Auxiliary Nozzle

Function: The auxiliary nozzle provides relay air pulses that carry the weft yarn across the shed. On an OmniPlus running 190 cm reed width, a single loom carries 20–30 auxiliary nozzles, each firing in sequence synchronized to within 0.5 milliseconds of the main nozzle pulse.

Typical Wear Pattern: After 18–24 months of continuous operation, the precision-drilled orifice (typically 1.2–1.5 mm) slowly widens and loses circularity. You will first notice it above 650 RPM: the weft arrival time drifts by 3–5 degrees on the encoder readout. The yarn doesn't break cleanly; instead you get intermittent "weft late" stops that clear after a restart. That's the nozzle losing directional precision. In mills without proper air filtration, oil mist and dust from the compressor line accumulate inside the nozzle body, creating uneven air velocity — sometimes visible under strobe as a "wobbling" weft flight path.

Maintenance Interval: Clean every 4–6 weeks via ultrasonic bath. Inspect orifice with 10x magnifier every 6 months. Replace at 24-month intervals, or immediately if orifice erosion exceeds 0.1 mm from nominal.

️ Common Misdiagnosis: Auxiliary nozzle wear is often mistaken for main nozzle or air pressure issues. Before adjusting machine parameters, check the nozzle orifice first. We have seen mills increase air pressure by 0.5 bar to "compensate" for worn nozzles — this only accelerates downstream component wear and increases energy cost.

1.2.2 Relay Solenoid Valve

Function: Each auxiliary nozzle group is controlled by a relay solenoid valve that opens and closes at millisecond-level response times. A standard OmniPlus carries 8–12 solenoid valves per loom, each rated for several million actuation cycles.

Typical Wear Pattern: The first sign is response lag. A healthy Picanol solenoid opens within 2–3 ms. As the coil degrades or plunger seat wears, this stretches to 5–7 ms. At 700 RPM, that 4 ms delay equals roughly 17 degrees of crankshaft rotation — enough to miss the weft insertion window. Two failure modes dominate: (1) coil burnout — the solenoid becomes hot to the touch, resistance reading drifts from 18–22 Ω spec; (2) mechanical seat wear — the plunger develops a step on the sealing face, causing a slow internal air leak audible as a faint hiss when the machine is idle but pressurized.

Maintenance Interval: Measure coil resistance with a multimeter every 3 months. Listen for air leaks during weekly walk-around. Replace at 36 months or at any sign of resistance drift beyond ±15% of spec. Keep minimum 2 spare solenoids per loom group.

1.2.3 Weft Storage Pin

Function: The weft storage pin sits inside the prewinder (accumulator) drum as the physical stop against which weft coils are wound before insertion. On the IRO/ROJ prewinder system, storage pins are spring-loaded and retract in sequence to release measured weft lengths.

Typical Wear Pattern: Manifests differently by yarn type. Coarse cotton (Ne 7–16) rounds off the pin tip contact surface within 12–15 months through abrasive wear. Filament yarns create microscopic grooves along the pin shaft from constant sliding friction, forming snag points. The symptom is unmistakable: inconsistent weft length per insertion cycle, selvage waste variation exceeding ±8 mm. The terminal triggers "weft length deviation" alarms. Operators often adjust prewinder settings to compensate — this masks the underlying wear.

Maintenance Interval: Inspect storage pins every 2 weeks under magnification for filament/spun yarn; every 4 weeks for standard cotton. Replace at 15 months for coarse yarn, 24 months for standard cotton, or immediately if visible grooving/rounding appears.

1.2.4 Feeler Head

Function: The feeler head is the piezoelectric sensor mounted at the receiving side of the reed that detects weft yarn arrival. It converts mechanical impulse into an electrical signal for the loom controller to verify weft insertion timing.

Typical Wear Pattern: Degradation is gradual — and therefore dangerous. The ceramic contact surface develops micro-pitting over millions of cycles, changing signal amplitude. The controller compensates by widening the detection window. You see it as a gradual increase in "weft arrival angle" standard deviation over weeks. A telltale factory-floor sign: false weft stops on specific channels, but only at certain speeds — say, everything fine at 650 RPM, but at 720 RPM channel 4 faults every 20–30 cycles. That speed-dependency points directly to feeler head degradation. High-humidity mills (80%+ RH) see faster ceramic surface degradation from moisture absorption into micro-cracks.

Maintenance Interval: Clean with isopropyl alcohol every 2 weeks. Run diagnostic signal amplitude test monthly — replace if amplitude drops below 70% of baseline. Scheduled replacement at 30 months.

1.2.5 Photoelectric Weft Detector

Function: The photoelectric weft detector uses an infrared LED emitter and photodiode receiver pair to detect weft presence at specific positions across the shed, typically mounted in 2–3 positions along the reed path for staged confirmation.

Typical Wear Pattern: The primary failure mode is optical, not mechanical. Over 12–18 months, a thin film of fiber dust, sizing residue, and oil mist deposits on the photodiode lens — invisible under normal lighting but reducing infrared transmission by 20–40%. The result: increasing "weft not detected" false stops, particularly on darker yarns with inherently weaker optical signals. The second mode is LED degradation — infrared LEDs have a luminosity half-life of 30,000–50,000 hours. A weak LED combined with a dirty lens creates an intermittent fault that notoriously clears when the technician opens the housing, because ambient light temporarily boosts the signal above threshold.

Maintenance Interval: Clean lenses every 2 weeks with optical-grade swabs and isopropyl alcohol — not compressed air. Test LED output every 6 months with an optical power meter. Replace detector units at 42 months or when LED output falls below 65% of rated intensity.

1.2.6 Motor Cutter

Function: The motor cutter assembly performs the mechanical cut of the weft yarn at the insertion-side selvage after each pick — a servo-driven rotary blade and stationary anvil timed to cut within 10–15 ms.

Typical Wear Pattern: Blade dulling is most visible: frayed yarn ends with a 2–3 mm "tail" where the blade crushed rather than cut. But the less obvious killer is anvil surface wear. As the anvil develops a groove from repeated blade impact, blade-to-anvil clearance increases beyond the optimum 0.02–0.05 mm. When clearance exceeds 0.1 mm, the cutter misses cuts on finer counts (Ne 40+). First sign: weft transfer failure at the right-hand side because the uncut weft gets dragged into the next shed. Bearing wear in the cutter motor is the third pathway — at 700 RPM that's over 1 million cycles per day. Miniature bearings develop axial play after 300–400 million cycles (14–18 months), causing blade wobble that accelerates both blade and anvil wear.

Maintenance Interval: Inspect blade sharpness and anvil surface every 4 weeks with 20x magnifier. Measure blade-to-anvil clearance with feeler gauge every 8 weeks. Replace blades at first sign of frayed cuts. Replace cutter assembly or motor bearings at 18-month intervals. Never replace only the blade on a grooved anvil — always a paired set.


1.3 Preventive Maintenance Inspection Checklist

Below is the practical checklist our maintenance team follows. Print, laminate, post at each loom group's tool station.

ComponentCheckMethodFrequencyReplace When
Auxiliary NozzleOrifice erosion10x magnifierEvery 6 monthsHole +0.1mm from spec
Auxiliary NozzleInternal contaminationUltrasonic cleanEvery 4-6 weeksVisible residue after clean
Relay Solenoid ValveCoil resistanceMultimeter (18-22 Ω)Every 3 months±15% deviation
Relay Solenoid ValveAir leak (idle pressurized)Auditory checkWeekly walk-aroundAudible hiss at idle
Weft Storage PinSurface grooving10x magnifierEvery 2-4 weeksVisible grooves/rounding
Weft Storage PinWeft length consistencyMeasure selvage wasteDaily spot checkWaste variation > ±8mm
Feeler HeadSignal amplitudeDiagnostic mode testMonthlyAmplitude < 70% baseline
Feeler HeadCeramic face cleanlinessIPA wipeEvery 2 weeksResidue after cleaning
Photoelectric DetectorLens cleanlinessOptical swab + IPAEvery 2 weeksVisible film after clean
Photoelectric DetectorLED output intensityOptical power meterEvery 6 monthsOutput < 65% rated
Motor CutterBlade sharpness20x magnifier + cut testEvery 4 weeksFrayed yarn ends
Motor CutterBlade-anvil clearanceFeeler gaugeEvery 8 weeksClearance > 0.1mm
Motor CutterBearing axial playDial indicatorEvery 6 monthsPlay > 0.05mm

1.4 Why OEM Dimensions Matter

Every component above relies on dimensional precision measured in microns. An auxiliary nozzle orifice 0.1 mm oversized produces a different air velocity profile that shifts the entire weft insertion timing. A storage pin 0.05 mm undersized alters winding tension enough to cause measurable weft length variation.

We have direct experience: in 2023, our mill trialed aftermarket auxiliary nozzles priced 40% below OEM. The supplier claimed "identical specifications." Within three weeks, weft arrival timing variance increased 35%, and weft stops per 100,000 picks nearly doubled from 2.1 to 3.9. We pulled the non-OEM nozzles, reinstalled OEM parts, and numbers returned to baseline within two shifts.

The lesson: dimensional tolerance is non-negotiable on high-speed air-jet insertion systems. This applies especially to the relay solenoid valve spool and motor cutter blade-anvil pair, where clearances are specified in hundredths of a millimeter. Even 0.02 mm deviation in the solenoid spool fit changes valve response by 2–3 milliseconds — enough to cause intermittent failures no parameter adjustment can fix. When sourcing, always request the manufacturer's inspection certificate showing measured dimensions against drawing tolerances.


1.5 Smart Procurement: Building Your Spare Parts Inventory

1.5.1 Criticality Classification

  • Class A (Stock Deep): Auxiliary nozzles, relay solenoid valves — affect every pick, failure stops the machine immediately. Keep ≥10% of installed quantity as spares.
  • Class B (Stock Shallow): Weft storage pins, feeler heads, photoelectric detectors — cause intermittent faults, loom may continue at reduced efficiency. Keep 1–2 spares per loom group of 12.
  • Class C (Order on Schedule): Motor cutter assemblies — predictable wear curve. Order 30 days before planned replacement.

1.5.2 Reorder Triggers

Set reorder points at 50% of safety stock for Class A, 1 unit remaining for Class B. Example: 240 nozzles across 12 looms → maintain 24 spares, reorder when shelf drops to 12.

1.5.3 Supplier Qualification

Work with suppliers providing: (1) OEM or OEM-equivalent certification with dimensional inspection reports; (2) consistent batch-to-batch quality — request reference sample per lot; (3) reliable lead times. A supplier 20% cheaper but taking 3 weeks instead of 3 days costs far more in lost production than the price difference.

1.5.4 Consignment Stock

For Class A items, negotiate consignment: supplier holds 2–3 months' consumption at your site, you pay only for what you use. Several established Picanol parts distributors in the Zhejiang-Jiangsu textile corridor offer this arrangement.


Part 2 — Fault Case Studies from the Weaving Floor

The following cases are drawn from actual maintenance logs across three weaving mills in Zhejiang and Jiangsu provinces, running Picanol OmniPlus and OptiMax looms on cotton, polyester-cotton blends, and filament fabrics. Machine numbers and dates have been noted for reference.

Case 1: Intermittent Weft Late Stops — 11 Hours Lost to a Worn Auxiliary Nozzle Bank

Machine: Picanol OmniPlus-800, Serial #OP-2019-0472
Fabric: 100% Cotton Denim, Ne 10 warp × Ne 7 weft, 190 cm width
Date: March 14–15, 2024

Symptoms: Loom #14 began logging intermittent weft-late stops at shift change, averaging 4–6 stops per hour. Stops cleared on restart. By midnight shift, frequency had risen to 12–15 stops per hour. Operator reported no obvious mechanical noise, no yarn quality issues on the creel.

Troubleshooting Timeline:

  • 14:30 — Operator checks weft tension, creel feed. No abnormality. Restarts loom.
  • 16:00 — Shift technician arrives. Suspects main nozzle pressure. Increases air supply from 4.2 to 4.5 bar. Stops continue.
  • 18:00 — Technician replaces weft feeler head on the affected channel. No improvement. Stops now at 18/hour.
  • 21:00 — Maintenance supervisor called in. Runs full diagnostic sequence. Weft arrival angle scatter on channels 4–8 shows standard deviation of 8.3 degrees — normal range is 2.0–3.5 degrees.
  • 22:00 — Strobe inspection reveals irregular air pulse pattern from auxiliary nozzles 4 through 8. Nozzle bank removed for examination.
  • 23:30 — Under 10x magnification, five of six nozzles in the group show orifice erosion of 0.12–0.18 mm above nominal. All six nozzles show internal oil residue from compressor carryover.
  • 01:30 — Replacement nozzle bank installed. Weft arrival scatter returns to 2.4 degrees. Loom runs clean for remainder of shift.

Root Cause: Gradual auxiliary nozzle orifice erosion combined with compressor oil contamination. The nozzles had 26 months of runtime with no scheduled cleaning or inspection — 2 months beyond the recommended 24-month replacement window. The oil contamination accelerated the uneven air velocity issue.

Total Downtime: 11 Hours Production Loss: ~550 Meters Prevention Cost: 15 Min/Nozzle

Case 2: Solenoid Valve Response Lag — 3 Days of Phantom Weft Faults

Machine: Picanol OptiMax, Serial #OX-2020-0183
Fabric: Polyester-Cotton (T/C 65/35) Shirting, Ne 45 × Ne 45, 170 cm
Date: July 8–10, 2024

Symptoms: Loom #08 developed an erratic fault pattern: weft stops occurring predominantly on channels 3 and 4, but only when machine speed exceeded 680 RPM. Below 650 RPM, the loom ran flawlessly for entire shifts. The maintenance team initially recorded this as "intermittent — monitor" and reduced the loom speed to 640 RPM as a temporary workaround. Production continued at 6% reduced output for two full days while the team investigated.

Diagnostic Process:

  • Day 1: Swapped weft detector positions (channels 3↔6). Fault stayed on channels 3–4. Ruled out detector issue.
  • Day 2: Inspected and cleaned auxiliary nozzles on channels 3–4. Orifices within specification. Fault persisted.
  • Day 3, 09:00: Electrical team measured coil resistance on all 10 solenoid valves. Valves 3 and 4 read 15.2 Ω and 14.8 Ω respectively — specification range 18–22 Ω. Both showed ~18% drift below minimum. Remaining 8 valves measured 19.1–20.3 Ω.
  • Day 3, 10:30: Oscilloscope test on valve actuation signal confirmed: valves 3 and 4 took 6.1 ms and 6.4 ms to fully open, versus 2.4–2.7 ms for healthy valves on the same loom.

Root Cause: Coil degradation in relay solenoid valves #3 and #4 after approximately 41 months of continuous service — 5 months beyond the 36-month recommended replacement. The reduced magnetic force slowed valve opening, causing the auxiliary nozzle pulse to arrive late in the weft insertion window. At lower speeds (≤650 RPM), the wider timing window absorbed the lag; at higher speeds, the window was too narrow.

Resolution: Replaced all 10 solenoid valves as a set. Post-replacement, loom ran at 720 RPM with zero weft stops on channels 3–4 for the subsequent 72-hour monitoring period.

Total Downtime: 3 Days (reduced speed) Production Loss: ~1,200 Meters Prevention: 5-Minute Resistance Check

Case 3: Motor Cutter Anvil Groove — Missed Cuts on Fine-Count Shirting

Machine: Picanol OmniPlus-800, Serial #OP-2021-0098
Fabric: 100% Cotton Poplin, Ne 50 × Ne 50, 160 cm
Date: November 22, 2024

Symptoms: Loom #22 running a high-value poplin order for a European buyer. Quality inspector at the inspection table flagged an intermittent defect: every 80–120 meters, a double-pick appeared in the right-hand selvage, causing a visible bar across 3–4 cm of fabric width. The defect pattern was irregular but persistent — roughly 8–10 occurrences per roll of 120 meters.

Investigation:

  • The weaving technician first suspected a let-off or take-up synchronization issue. Timing checked — within spec.
  • Weft cutter examined visually. Blade appeared sharp to the naked eye. The blade had been replaced 3 months prior and was within its expected service life.
  • Under 20x magnification, a groove approximately 0.15 mm deep was discovered on the anvil surface, directly under the blade impact point. The blade was not dull — it was striking a worn anvil and failing to achieve a complete cut on every cycle.
  • Measurement with feeler gauge: blade-to-anvil clearance was 0.14 mm — nearly triple the maximum allowable 0.05 mm.

Root Cause: The previous blade replacement (August 2024) had been done as a blade-only change. The anvil, which had accumulated 22 months of service, was not inspected or replaced. The grooved anvil then prematurely wore the new blade and simultaneously prevented a clean cut. The 0.15 mm groove was invisible to the naked eye but functionally devastating on Ne 50 yarn.

Resolution: Replaced the complete cutter assembly (blade + anvil set). Post-replacement, the double-pick defect disappeared entirely. The mill adjusted its cutter PM protocol: blade and anvil now inspected as a pair every 4 weeks, and always replaced as a matched set.

Quality Loss: ~12% of roll downgraded Root Cause: Blade-Only Replacement Prevention: Inspect Anvil Every Blade Change

Case 4: Photoelectric Detector Lens Contamination — 6-Hour Mystery Fault on Black Yarn

Machine: Picanol OmniPlus-800, Serial #OP-2020-0261
Fabric: Polyester Filament Taffeta, 75D × 75D, Black, 190 cm
Date: January 5, 2025

Symptoms: Loom #17 was assigned a black polyester taffeta order — a straightforward fabric on paper. Within 30 minutes of startup, the loom began logging "weft not detected" alarms on channel 2 (mid-shed detector). Alarms were irregular: sometimes 20–30 clean picks between faults, sometimes 3–4 faults in a row. The operator stopped and restarted multiple times. Each restart cleared the fault temporarily.

Diagnostic Confusion: The fault only appeared on black yarn. When the technician ran a short test with white polyester of the same denier, the loom ran perfectly. This initially led the team to suspect a yarn quality issue — perhaps the black dye affecting yarn conductivity or surface friction. The creel was checked, tension verified, prewinder settings reviewed. Nothing abnormal.

Breakthrough: After 4 hours of circling around yarn quality theories, the electrical technician removed the channel 2 photoelectric detector housing. The photodiode lens, when wiped with a white optical swab, left a distinct brown-gray residue — a film of oil mist and fiber dust that had built up over approximately 14 months since the last cleaning. Under normal lighting it was invisible. Under UV inspection light, it was clearly occluding roughly 30–35% of the lens surface.

Physics of the Fault: Black yarn absorbs infrared light rather than reflecting it. A clean detector can still register the absorption shadow reliably. But with a 30% dirty lens, the signal-to-noise ratio dropped below the detection threshold — the weakened IR beam could not reliably distinguish between "black yarn present" and "no yarn present." White yarn, with its higher reflectivity, still produced enough signal to trip the detector even through the dirty lens. This is why the fault only appeared on black yarn.

Resolution: All three photoelectric detector lenses on the loom cleaned with optical-grade isopropyl alcohol. Detector signal strength measured post-cleaning: restored to 92% of factory baseline (from ~58% pre-clean). Black taffeta production resumed with zero weft detection faults for the remainder of the order.

Total Downtime: 6 Hours Production Loss: ~420 Meters Prevention: Bi-Weekly Lens Cleaning

Cross-Case Insight: Across all four cases, two patterns repeat: (1) the initial troubleshooting response was to adjust parameters or replace the wrong component, extending downtime by 2–6 hours, and (2) in every case, a simple scheduled inspection (15–30 minutes per component) would have caught the wear or contamination before it caused a stop. The technology is predictable — the maintenance schedule must be too.

2.1 Lessons from the Floor: What These Failures Teach Us

  1. Speed-dependent faults are almost always hardware wear, not parameter issues. When a loom runs fine at 650 RPM but faults at 720 RPM, your first question should be "which component's response time has degraded?" — not "what parameter can I widen?"
  2. "Intermittent" is not a diagnosis — it's a description of ignorance. Every intermittent fault has a physical root cause. The real cost of labeling something "intermittent — monitor" is the accumulated production loss while waiting for it to become a hard failure.
  3. Replace in sets where components are interdependent. Case 3 is the textbook example: a new blade on a worn anvil is not a repair, it's a delayed failure. Solenoid valves (Case 2), nozzle banks (Case 1), and cutter assemblies all benefit from grouped replacement when any unit in the group shows wear.
  4. Check the simple things first — but check them properly. Case 4 took 6 hours to identify a dirty lens. A 30-second lens wipe, done every two weeks, would have prevented the entire event. The simplest maintenance tasks are the easiest to skip and the most expensive to neglect.
  5. Document everything. The reason we can cite exact resistance values, timing drift measurements, and orifice dimensions in these cases is because the mills kept records. Without data, every fault looks like a new mystery. With data, patterns emerge.

FAQ

Q1: How do I know if my auxiliary nozzle is worn or just dirty?
Clean it first — ultrasonic bath, 15 minutes. Then inspect under 10x magnification. A dirty nozzle looks clean after the bath. A worn nozzle still shows an elliptical or enlarged orifice. If in doubt, measure with a pin gauge set against the original specification.

Q2: Can I use the same maintenance schedule for cotton and filament yarn?
No. Filament yarns are more abrasive on contact surfaces. Reduce inspection intervals by ~30% for filament vs. spun cotton. Coarse cotton (Ne 7–20) also accelerates storage pin and cutter wear — inspect more frequently than fine counts.

Q3: What is the single most common maintenance mistake in Picanol air-jet mills?
Adjusting machine parameters to mask mechanical wear. When a weft arrival angle drifts, find the worn component — don't widen the arrival window. Parameter masking buys hours but costs days when the part eventually fails during a critical run.

Q4: How many spare relay solenoid valves should a 48-loom mill keep?
For 48 OmniPlus looms (~10 solenoids each = 480 total), maintain minimum 24 spares (5%). If looms are beyond 5 years, increase to 36 spares (7.5%). Rotate stock: use oldest spares first during scheduled replacements.

Q5: Is it worth upgrading to ceramic-coated cutter blades?
For abrasive yarns (coarse cotton, recycled fibers, aramid), ceramic-coated blades extend replacement intervals by 40–60%. Upfront cost ~2.5× standard. Run the math on your downtime cost per hour — if one avoided stoppage covers the premium, it's a clear yes. For standard cotton (Ne 20–40), standard blades with disciplined inspection deliver adequate life.


Bottom Line

Preventive maintenance on Picanol loom spare parts is not an academic exercise. It is the difference between a mill that delivers on time and one that explains delays to its buyers. The six components covered here — auxiliary nozzles, relay solenoid valves, weft storage pins, feeler heads, photoelectric weft detectors, and motor cutters — account for the majority of unscheduled weft-insertion-related stoppages we have documented over three years of maintenance logging across three mills.

The four fault case studies are not hypothetical. They happened. Each one was preventable with a scheduled inspection that costs less than 30 minutes of technician time. Each one cost between 6 hours and 3 days of production when that inspection was skipped.

Start with one loom group. Apply the checklist from Section 1.3 for 90 days. Compare stoppage data against the previous 90 days. Then decide if 15 minutes of scheduled inspection per part is worth avoiding 6 hours of emergency repair. The mills in these case studies have already made that decision.