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Equipment

Twin Screw Pelletizer

High-torque modular co-rotating parallel twin screw compounding extruder for masterbatch, mineral filling, polymer alloying, and reactive extrusion.

  • Pelletizing Equipment and Auxiliaries
  • Compounding
  • Extrusion and Melt Processing
  • Pelletizing
  • ABS
  • Anti-UV Masterbatch
  • Antistatic Masterbatch
  • Color Masterbatch
  • Conductive Masterbatch
  • Filler Masterbatch
  • Flame Retardant Masterbatch
  • GCC( Calcium Carbonate Powder)
  • Modified Plastics
  • Multifunctional Masterbatch
  • PET
  • Recycled plastics
  • Resin
  • Rubber
  • Thermoplastic Elastomer
  • TPE
  • TPU
  • Pellets
  • Regrind
  • Uneven additive distribution
Placeholder image: equipment photo, 1200 × 900 px (4:3). It shows the space reserved for approved material and is not a photograph of our equipment.
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Overview

What this machine does

Continuously plasticizes, blends, shears, devolatilizes, and compounds polymer matrices with fillers, masterbatches, and functional additives into a homogeneous melt.

The Co-Rotating Parallel Twin Screw Pelletizer (twin screw compounding extruder) represents the industry standard for continuous plastic compounding, reactive extrusion, masterbatch manufacturing, and polymer alloy blending. Utilizing modular segmented screws and intermeshing bi-metallic barrels assembled on high-torque splined shafts, the extruder provides precise, independently controllable thermo-mechanical energy input across separate process zones: conveying, melting, distributive mixing, dispersive shearing, devolatilization, and pressure pressurization.

Unlike single screw extruders with static geometry, the co-rotating twin screw configuration delivers self-wiping, positive-displacement conveying that prevents resin stagnant hang-up and thermal degradation. Combined with customizable high-speed, high-torque distribution gearboxes, side-feeders for delicate or abrasive fillers (such as talc, CaCO3, glass fibers, and flame retardants), and multi-stage vacuum degassing ports, the twin screw pelletizing system ensures molecular-level additive dispersion, narrow residence time distribution, and consistent melt homogeneity across high-output production runs.

Key features

The parts that do the work

Each picture names one part of the machine and what it does for the material and the batch.

Placeholder image: equipment feature photo, 960 × 720 px (4:3). It shows the space reserved for approved material and is not a photograph of our equipment.

Modular Building-Block Screw & Barrel Architecture

Segmented screw elements assembled on high-torque involute splined shafts, paired with modular 4D or 8D barrel sections. Allows complete flexibility to reconfigure conveying, kneading, reverse-kneading, shearing, and degassing zones for diverse compounding recipes.

Placeholder image: equipment feature photo, 960 × 720 px (4:3). It shows the space reserved for approved material and is not a photograph of our equipment.

High-Torque Distribution Gearbox with Thrust Bearings

Bilateral symmetric drive gearbox featuring high-precision carburized and ground alloy helical gears, integrated thrust bearing assembly, and forced lubrication cooling to withstand continuous extreme axial melt backpressure and high-torque loads.

Placeholder image: equipment feature photo, 960 × 720 px (4:3). It shows the space reserved for approved material and is not a photograph of our equipment.

Precision Independent Barrel Heating & Soft-Water Cooling

Precision cast aluminum or ceramic band heaters paired with internal closed-loop demineralized soft-water cooling channels and dedicated solenoid valves on each barrel zone. Microprocessor PID control maintains barrel temperature accuracy within ±1.0°C.

Placeholder image: equipment feature photo, 960 × 720 px (4:3). It shows the space reserved for approved material and is not a photograph of our equipment.

Multi-Stage Vacuum Degassing System

Equipped with high-vacuum liquid-ring or dry vacuum pump stations with cyclonic condensation knock-out pots. Deep vacuum down to -0.098 MPa efficiently extracts entrained air, moisture, and monomer volatiles, preventing voids, bubbles, and degradation in pellets.

Placeholder image: equipment feature photo, 960 × 720 px (4:3). It shows the space reserved for approved material and is not a photograph of our equipment.

Intelligent PLC Control System with Closed-Loop Interlocks

Centralized industrial PLC control architecture with large touchscreen HMI. Coordinates feeder speeds, screw RPM, melt pressure, melt temperature, zone thermal PID loops, and automatic safety interlocks into a unified, recipe-storing supervisory system.

Material and process

Where it fits — and where it does not

Read the conditions together: a machine is selected for the material and the output, not from its name alone.

Materiales y condiciones adecuados

Specially engineered for continuous masterbatch manufacturing, engineering plastics compounding, mineral filler reinforcement, polymer blending/alloying, and reactive extrusion applications.

Processes a wide array of thermoplastic matrices, including polyolefins (PP, PE, HDPE, LDPE), engineering resins (PA6, PA66, ABS, PC, PBT, POM, PET), and thermoplastic elastomers (TPE, TPU, TPV, EVA). Expertly handles challenging compounding tasks requiring intensive distributive and dispersive mixing, such as high-loading calcium carbonate (CaCO3) masterbatch, talc masterbatch, color concentrates, carbon black masterbatch, flame retardants, and chopped glass fiber reinforcement.

Limitaciones y cuándo no aplica

High-shear continuous compounding extruder; application boundaries include:

  • Low-bulk-density film/foam scrap: Fluffy films or un-densified EPS foam bridge in feed throats; require dedicated crammer force-feeders or cutter-compactors.
  • High backpressures without gear pumps: Excels at mixing over pressure-building; high viscous melt through fine filter meshes requires melt gear pumps to avoid shear heat.
  • Thermal shear-sensitive polymers: Rigid PVC or fluoropolymers require conical counter-rotating twin screws or low-shear single screws to prevent degradation.
  • Tramp metal protection: Ferrous debris entering intermeshing screws causes catastrophic barrel gouging; upstream magnets and metal detectors are mandatory.

Condición y requisitos de alimentación

Accepts thermoplastic virgin polymer pellets, recycled regrind flakes, micro-powders, color masterbatch, mineral fillers (CaCO3, talc, barium sulfate, TiO2, wollastonite), flame retardants, and reinforcing fibers (chopped glass fibers, carbon fibers).

Feedstocks are introduced into the extruder main feed throat via single/twin-screw volumetric feeders or continuous loss-in-weight gravimetric dosing units. Delicate or light mineral fillers and fibers are force-fed into downstream melt zones via modular side-feeders.

Condición y límites de salida

Delivers a fully plasticized, thoroughly homogenized, devolatilized polymer melt stream at uniform temperature and controlled pressure.

Melt discharges through an automated hydraulic screen changer directly into downstream pelletizing systems (the turnkey Strand Pelletizer System, water ring die, or underwater pelletizer die plate) for conversion into uniform, bubble-free plastic granules.

Throughput

Rango de capacidad

Read a figure together with the basis below it: the same machine reaches different numbers on different materials.

Base de las cifras de capacidad

Extruder throughput ratings are determined by screw diameter (typically 35 mm to 135 mm), L/D aspect ratio (36:1 to 52:1), drive motor kW, specific torque density (Nm/cm³), and screw RPM (up to 600–900 rpm).

Usable production output depends heavily on polymer melt flow index (MFI), filler loading percentage, bulk density of feedstocks, and feed rate limitation of side-feeders. High-loading mineral compounds (e.g. 70%–80% CaCO3 masterbatch) run at higher mass throughputs due to high melt density, whereas engineering polymers (such as PA66 with 30% glass fiber) are limited by screw motor torque and shear temperature control.

Scope of supply

What is included, and what is not

The quotation states the scope for the confirmed configuration; the groups below describe how a supply is normally split.

Incluido de serie

  • Modular segmented screws & bi-metallic barrel assembly High-torque involute splined shafts with segmented screw elements and replaceable bi-metallic wear-resistant barrel sections.
  • High-torque distribution gearbox with integrated thrust bearing block Carburized and ground alloy helical gears, multi-stage thrust bearing assembly, and independent forced-oil lubrication system with plate heat exchanger and oil filter.
  • AC drive motor with closed-loop vector variable frequency drive (VFD) High-efficiency TEFC motor paired with ABB or Schneider variable speed frequency inverter for smooth high-torque speed regulation.
  • Independent barrel heating and soft-water cooling circulation skid Cast aluminum/ceramic barrel heaters, closed-loop demineralized water tank, cooling pump, plate heat exchanger, and individual zone solenoid valves.
  • Vacuum degassing dome assembly with liquid-ring vacuum pump Stainless steel vacuum pot with transparent sight glass, vacuum relief valve, vacuum gauge, and liquid-ring vacuum pump station.
  • Floor-standing electrical control cabinet with industrial PLC and touchscreen Siemens or Allen-Bradley PLC, color HMI touchscreen, Schneider circuit breakers, safety relays, and emergency stop interlocks.

Elementos opcionales

  • Wear-resistant and corrosion-resistant barrel metallurgical liners Choice of nitrided steel, bi-metallic centrifugally cast alloy liners (Fe-Cr-Ni or tungsten carbide matrix), or HIP solid composite barrels for high-abrasion glass fiber compounding or corrosive fluoropolymer/flame retardant processing.
  • Screw element metallurgy Nitrided 38CrMoAlA standard; tool steel (W6Mo5Cr4V2), powder metallurgy (CPM 10V / SAM26), or nickel-chromium alloy screw segments for extreme wear and corrosion resistance.
  • Modular high-torque side-feeders Single or twin-screw co-rotating side-feeders equipped with vacuum de-aeration barrels, allowing force-feeding of low-bulk-density mineral powders, talc, or delicate roving chopped glass fibers downstream into the polymer melt.
  • Multi-stage vacuum degassing ports Single, double, or triple vacuum degassing domes with condenser knock-out pots and liquid-ring vacuum pumps to extract trapped moisture, entrained air, and monomer volatiles.
  • Loss-in-weight gravimetric feeding system Multi-component continuous loss-in-weight feeders for high-precision, recipe-controlled dosing of resin pellets, powders, liquid additives, and masterbatches directly into the main feed throat.
  • Melt gear pump (melt pump) integration Positive displacement melt gear pump installed between extruder barrel and screen changer to eliminate pressure pulsations and ensure constant die head pressure.

No incluido

  • Civil foundations, grouting, and floor drainage trenches Factory foundation construction, concrete anchor embedment, and wastewater drainage trenches.
  • Primary high-voltage transformer and shop electrical distribution Cables and switchgear upstream of the extruder main disconnect breaker in the electrical control cabinet.
  • Central cooling water chiller and cooling tower system Water chillers, cooling towers, circulating water pumps, and supply piping outside the extruder utility headers.
  • Central plant dust extraction and exhaust ducting External exhaust blowers, ductwork, and roof stacks beyond the extruder vent connections.

Installation planning

Utilities, interfaces and site readiness

These are the connections the machine and the line around it have to agree on before the layout is fixed.

Requisitos de servicios auxiliares

Suministro eléctrico
380 V / 415 V / 460 V / 220 V (customizable), 50/60 Hz, 3-phase AC.
Agua
Industrial clean cooling water (supply temp ≤ 25°C, pressure 0.25–0.40 MPa) for gearbox oil cooler and barrel soft-water heat exchanger. Flow rate: 3–15 m³/h depending on machine rating.
Aire comprimido
0.6–0.7 MPa (6–7 bar), clean, dry, oil-free compressed air for pneumatic diverter valves, screen changers, and pneumatic hoppers. Consumption: approx. 0.2–0.5 m³/min.
Extracción y ventilación
Exhaust ducting connected to barrel vacuum degassing exhaust and barrel heater shrouds to vent away polymer odors and volatile gases outdoors.
Otras notas
Connected electrical load and cooling water demands scale with extruder screw size (e.g., 30 kW motor for laboratory scale up to 250–450+ kW for high-output production extruders). Dedicated soft water supply required for internal barrel cooling loop.

Requisitos de interfaz

Mechanical: Rigid steel base skid leveled and anchored to plant floor; downstream discharge end terminates in standard circular hydraulic clamp flange for screen changers, melt gear pumps, or die heads.

Electrical & Automation: Three-phase industrial power supply to the floor-standing electrical drive and control cabinet (380V/415V/460V, 50/60 Hz). Control system provides Ethernet/IP, Profinet, or Modbus-TCP communications to upstream loss-in-weight feeders, downstream pelletizers, and factory MES/SCADA networks, along with hardwired emergency stop interlock loops.

Lo que el cliente prepara en obra

The buyer provides a reinforced level concrete foundation slab capable of carrying the dynamic and static loads of the extruder, motor, gearbox, and downstream lines. Buyer is responsible for bringing main primary electrical cables to the line control cabinet, supplying continuous chilled/cooling water with filtration, piping dry compressed air, providing floor drainage trenches, and connecting outdoor exhaust ducting from the vacuum pump and barrel shroud vents.

Spare parts

Wear parts and recommended spares

The parts that wear in normal service, and the spares worth keeping on site. How often a part is replaced depends on the material and the duty the machine runs, so the basis is confirmed for each machine.

Wear parts

Placeholder image: spare part photo, 960 × 720 px (4:3). It shows the space reserved for approved material and is not a photograph of our equipment.

Modular Kneading Blocks & Shearing Screw Elements

Inspect every 3,000–6,000 operating hours; replace when radial clearance between screw outer diameter and barrel wall exceeds engineering tolerance (typically > 0.5–0.8 mm).

High-wear kneading elements (KB45/5, KB90/5) located in the melting and mixing zones. Critical for melt shearing and pigment dispersion. Keep one complete spare set of high-wear screw segments in reserve; specify shaft spline type and element metallurgy when ordering.

Placeholder image: spare part photo, 960 × 720 px (4:3). It shows the space reserved for approved material and is not a photograph of our equipment.

Bi-Metallic Barrel Liners / Segmented Barrel Sections

Inspect annually using precision internal bore gauges; replace or reline when internal wear ovality causes melt bypass and loss of throughput.

Modular barrel segments, particularly at the side-feeder injection zone and initial melting zones subjected to high abrasive wear.

Placeholder image: spare part photo, 960 × 720 px (4:3). It shows the space reserved for approved material and is not a photograph of our equipment.

Heater Bands & Thermocouple Temperature Sensors

Inspect electrical resistance during quarterly PM; replace immediately upon open-circuit failure or temperature drifting > ±3°C.

Cast aluminum or ceramic heating bands and dual J/K-type thermocouples installed across all barrel heating zones.

Recommended spares

Placeholder image: spare part photo, 960 × 720 px (4:3). It shows the space reserved for approved material and is not a photograph of our equipment.

High-Temperature Melt Pressure & Temperature Transducers

Calibrate semi-annually; replace if transducer diaphragm is dented, damaged by solidified resin, or exhibits non-linear signal drift.

Installed at the extruder discharge barrel zone to monitor melt pressure and melt temperature before the screen changer. Critical for machine safety interlocks.

Placeholder image: spare part photo, 960 × 720 px (4:3). It shows the space reserved for approved material and is not a photograph of our equipment.

Solenoid Valves for Barrel Soft-Water Cooling Manifold

Inspect semi-annually; descale cooling manifold channels and replace valve coils or internal diaphragms if valves fail to close tight or stick.

Direct-acting high-temperature solenoid valves controlling cooling water injection into individual barrel cooling jackets.

Blades, screens and other normal consumables are outside the standard warranty. How a spare part is identified and ordered is set out under Warranty & Spare Parts.

Selection

How to choose a model

Work through what you already know. The rest is settled in the conversation, not before the first message.

Select the optimal twin screw compounding extruder based on material formulation, required shearing intensity, and hourly throughput:

  • Screw Diameter & Torque Density: Select screw diameter (e.g., 50 mm, 65 mm, 75 mm, 95 mm) and torque rating according to hourly target output. Highly filled engineering plastics require high-torque gearboxes (torque density ≥ 10–13 Nm/cm³) to prevent drive stalls.
  • L/D Ratio Configuration: Use standard L/D 36:1 or 40:1 for simple color masterbatch and basic compounding; specify extended L/D 44:1 to 52:1 for high mineral loading (70%+ filler), multi-stage side-feeding, severe vacuum devolatilization, or reactive extrusion.
  • Metallurgy Specification: Specify standard nitrided components for non-abrasive polyolefins; upgrade to bi-metallic barrels with tungsten carbide liners and CPM 10V / tool-steel screw elements when running abrasive mineral fillers, glass fibers, or flame retardants.
  • Side-Feeding Strategy: Add mineral fillers downstream after polymer melting to reduce screw wear and preserve polymer matrix properties; feed glass fibers into late barrel zones to prevent fiber breakage and maintain structural aspect ratio.

Información que necesitamos de usted

  1. 01 Polymer matrix and target formulation recipe Base polymer grades (MFI, density, virgin vs. recycled) and all fillers/additives (percentage loading, bulk density, particle size, liquid plasticizers, glass fiber type).
  2. 02 Target throughput and annual production capacity Required continuous output (kg/h) and operating schedule to determine screw diameter, L/D ratio, and side-feeder configuration.
  3. 03 Pelletizing method preference Desired pellet format and cutting method (Strand Pelletizer System, water-ring hot face, underwater pelletizing, or air-cooled die face) matching polymer rheology.
  4. 04 Volatiles, moisture, and vacuum degassing requirements Percentage of moisture, monomers, or solvents in raw materials to engineer the required number of atmospheric vents and vacuum degassing zones.
  5. 05 Plant utility specifications and footprint constraints Available electrical power (voltage, frequency, total kVA transformer headroom), industrial cooling water supply (flow rate, temperature, pressure), compressed air, and bay dimensions.

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