| 1. Material Preparation | Dryer, Hopper, and Loader | Pellets enter the feed system | Storage hopper, vacuum loader, drying hopper, level sensor, and material filter | Moisture-sensitive engineering polymers may require drying temperatures of approximately 80–120 °C, depending on the resin specification. | Keep the hopper clean, prevent material bridging, and verify the resin moisture level before processing. |
| 2. Metered Feeding | Feed Throat and Feeding Zone | Pellets move from the hopper to the screw | Feed throat, cooling jacket, feed opening, and screw-flight entry section | Water cooling is commonly used at the feed throat to reduce premature softening and improve solids transport. | Check for blockages, inconsistent feeding, excessive throat temperature, and pellet buildup. |
| 3. Solids Conveying | Screw Feed Section | Solid pellets are conveyed forward | Screw flights, core shaft, barrel liner, and feed-section channel | The screw rotation rate is commonly adjusted in revolutions per minute to balance output, residence time, and shear. | Inspect screw flights and the barrel for wear, especially when processing glass-filled or mineral-filled compounds. |
| 4. Melting and Plasticization | Compression Zone of the Screw | Compacted pellets become a molten polymer | Increasing screw-channel compression, heated barrel sections, thermocouples, and electric heaters | Polymer melt temperatures vary by resin; many common thermoplastics are processed roughly between 160 and 300 °C. | Use a stable temperature profile and avoid overheating, degradation, or incomplete melting. |
| 5. Melt Homogenization | Metering Section | The melt becomes more uniform in temperature and composition | Constant-depth screw flights, pressure measurement point, and final metering channel | A steady melt pressure and stable motor load generally indicate consistent conveying and melting conditions. | Monitor melt pressure fluctuations, color variation, unmelted particles, and residence-time-related degradation. |
| 6. Filtration and Pressure Stabilization | Breaker Plate and Screen Pack | The melt is filtered and redirected | Screen pack, breaker plate, screen changer, pressure sensors, and support ring | The breaker plate creates back pressure and changes the flow from rotating movement to a more uniform axial flow. | Replace or change screens when pressure rises excessively or output becomes unstable. |
| 7. Melt Distribution | Adapter and Feedblock | The melt travels from the barrel to the die | Heated adapter, flow channel, pressure transducer, and optional multilayer feedblock | The adapter is normally heated to maintain the polymer above its solidification or processing range. | Eliminate dead spots, check heater performance, and ensure seals are suitable for the melt temperature and pressure. |
| 8. Profile Formation | Extrusion Die | The molten polymer takes the required cross-sectional shape | Die body, manifold, die lips, land length, bolts, and adjustment hardware | Die geometry controls dimensions, flow balance, wall thickness, and the amount of die swell after exit. | Keep die lips clean and properly aligned; uneven temperature or contamination can cause thickness variation. |
| 9. Product Calibration | Sizing Die or Vacuum Calibration Tank | The hot extrudate is stabilized to its final dimensions | Calibration sleeve, vacuum chamber, water spray, cooling tank, guides, and vacuum pump | Cooling water is commonly maintained near ambient temperature, although the exact setting depends on product size and polymer type. | Maintain uniform vacuum, water flow, and alignment to control diameter, wall thickness, and surface quality. |
| 10. Cooling and Take-Off | Cooling Tank and Haul-Off Unit | The product solidifies and is pulled at a controlled speed | Cooling tank, rollers, caterpillar belts or nip rolls, drive motor, and speed controller | Haul-off speed directly affects product dimensions, line output, and longitudinal stretching. | Synchronize screw speed, cooling capacity, and haul-off speed to prevent ovality, sagging, or unstable dimensions. |
| 11. Final Sizing or Cutting | Cutter, Saw, or Winder | The finished product is cut or collected | Flying saw, knife cutter, measuring wheel, puller, winder, tension controller, and length sensor | Cutting length, winding tension, and line speed are selected according to the product form and required tolerances. | Inspect blade condition, cutting accuracy, winding tension, and synchronization with the haul-off system. |
| 12. Process Monitoring | Control System and Sensors | Operating conditions are measured and adjusted | Temperature controllers, pressure sensors, torque monitoring, motor drives, alarms, and human-machine interface | Common monitored variables include barrel temperature, melt pressure, screw speed, motor load, output rate, and haul-off speed. | Calibrate sensors regularly and record process trends to identify wear, blockage, overheating, or feed inconsistency. |