
🔧 1. What Is Screw Barrel Wear?
Wear is the gradual loss of material on the screw flights and barrel inner wall, which increases the clearance between them.
- In a new screw/barrel set, the clearance is tight to ensure efficient plasticizing.
- As wear increases, molten plastic leaks back over the flights, reducing output, melt quality, and shot accuracy.
📏 2. Typical Wear Limits
- New clearance (radial gap):
~0.001–0.002 × screw diameter (D). - Maximum acceptable clearance:
~0.004–0.005 × D (beyond this, efficiency drops sharply). - Flight wear (height loss): 0.1–0.2 mm will affect plasticizing.
- Barrel bore wear:
Ovality ≤0.1 mm; excessive taper means replacement is needed.
👉 Example (Ø60 mm screw):
- New clearance: 0.06–0.12 mm
- Wear limit: up to ~0.30 mm
🧪 3. Causes of Wear
- Abrasive wear → glass fibers, mineral fillers, pigments.
- Corrosive wear → halogen flame retardants, PVC, fluoropolymers.
- Adhesive wear → metal-to-metal contact when lubrication/clearance is poor.
- Erosive wear → high-speed shearing of filled resins.
⚠️ 4. Symptoms of Excessive Wear
- Inconsistent shot weight
- Burn marks, unmelted resin, black specks
- Higher melt temperature required
- Lower throughput (kg/h)
- More frequent process adjustments
🛠 5. Solutions & Prevention
- Material upgrades:
- Bimetallic barrels (nickel-based, tungsten carbide)
- Hard-faced or nitrided screws
- Process optimization:
- Avoid unnecessary high back pressure
- Do not run empty at high temps
- Purge properly at shutdown
- Maintenance:
- Inspect with bore gauge or air gauge every 6–12 months
- Replace or refurbish when clearance >0.005 × D
✅ Summary:
Injection molding screw barrel wear is inevitable, especially with abrasive or corrosive plastics. The key tolerance is the screw-to-barrel clearance — once it exceeds about 0.005 × screw diameter, performance suffers, and repair or replacement is necessary.
