Feeding Equipment
Belt Feeder
A belt feeder extracts bulk material from a bin or hopper and delivers it in a controlled stream to crushers, screens, or conveyors. It suits ores and industrial minerals that are free-flowing or moderately cohesive.
Technical parameters
Unlike vibrating feeders, the belt design handles longer discharge distances and allows direct interface with a receiving conveyor. The drive provides speed adjustment to match process demand, and the feeder is protected by an inlet chute with depth control.
Each row in the table represents a distinct belt feeder variant. Model codes, e.g. PG500×1500, encode belt width and centre distance; as these dimensions increase, feed capacity, motor power, and weight scale accordingly. Comparing values helps match a feeder to the required duty. The complete range covers multiple configurations to suit diverse material handling needs.
| Model | Belt Width (mm) | Center Distance of Head and Tail Pulley (mm) | Head and Tail Pulley Diameter (mm) | Feed Capacity (m3/h) | Feed Particle Size (mm) | Motor Power (kW) | Weight (kg) |
|---|---|---|---|---|---|---|---|
| PG500×1500 | 500 | 1500 | 219 | 4-40 | 0-50 | 2.2 | 483 |
| PG500×2000 | 2000 | 219 | 4-40 | 0-50 | 2.2 | 550 | |
| PG500×2200 | 2200 | 219 | 4-40 | 0-50 | 2.2 | 580 | |
| PG500×2500 | 2500 | 219 | 4-40 | 0-50 | 2.2 | 605 | |
| PG500×3000 | 3000 | 219 | 4-40 | 0-50 | 2.2 | 620 | |
| PG500×4000 | 4000 | 219 | 4-40 | 0-50 | 2.2 | 955 | |
| PG650×2000 | 650 | 2000 | 219 | 4-40 | 0-50 | 2.2 | 550 |
| PG650×2200 | 2200 | 219 | 4-40 | 0-50 | 2.2 | 570 | |
| PG650×2500 | 2500 | 219 | 4-40 | 0-50 | 2.2 | 595 | |
| PG650×3000 | 3000 | 219 | 4-40 | 0-50 | 2.2 | 645 | |
| PG650×4000 | 4000 | 219 | 4-40 | 0-50 | 2.2 | 760 | |
| PG800×2000 | 800 | 2000 | 219 | 15-150 | 0-80 | 4 | 721 |
| PG800×2200 | 2200 | 219 | 15-150 | 0-80 | 4 | 750 | |
| PG800×2500 | 2500 | 219 | 15-150 | 0-80 | 7.5 | 790 | |
| PG800×3000 | 3000 | 219 | 15-150 | 0-80 | 7.5 | 857.3 | |
| PG800×4000 | 4000 | 219 | 15-150 | 0-80 | 7.5 | 1012 | |
| PG800×4500 | 4500 | 219 | 15-150 | 0-80 | 7.5 | 1100 | |
| PG1000×2000 | 1000 | 2000 | 400 | 50-450 | 0-100 | 5.5 | 1241 |
| PG1000×3000 | 3000 | 400 | 50-450 | 0-100 | 7.5 | 1400 | |
| PG1000×3500 | 3500 | 400 | 50-450 | 0-100 | 7.5 | 1570 | |
| PG1000×4000 | 4000 | 400 | 50-450 | 0-100 | 7.5 | 1875 | |
| PG1000×4500 | 4500 | 400 | 50-450 | 0-100 | 7.5 | 2000 | |
| PG1000×5000 | 5000 | 400 | 50-450 | 0-100 | 11 | 5278 | |
| PG1000×6000 | 6000 | 400 | 50-450 | 0-100 | 11 | 5514 | |
| PG1000×7000 | 7000 | 400 | 50-450 | 0-100 | 11 | 5833 | |
| PG1000×8000 | 8000 | 400 | 50-450 | 0-100 | 11 | 6200 | |
| PG1200×3000 | 1200 | 3000 | 446 | 55-540 | 0-100 | 11 | 1650 |
| PG1200×4000 | 4000 | 446 | 55-540 | 0-100 | 11 | 2000 | |
| PG1200×5000 | 5000 | 446 | 55-540 | 0-100 | 11 | 2288 | |
| PG1200×6000 | 6000 | 446 | 55-540 | 0-100 | 11 | 3085 | |
| PG1200×7000 | 7000 | 446 | 55-540 | 0-100 | 11 | 5014 | |
| PG1200×8000 | 8000 | 446 | 55-540 | 0-100 | 11 | 5800 | |
| PG1400×5000 | 1400 | 5000 | 446 | 60-620 | 0-100 | 15 | 5550 |
| PG1400×6000 | 6000 | 446 | 60-620 | 0-100 | 15 | 5828 | |
| PG1400×7000 | 7000 | 446 | 60-620 | 0-100 | 15 | 6000 | |
| PG1400×8000 | 8000 | 446 | 60-620 | 0-100 | 15 | 6200 | |
| PG1600×5000 | 1600 | 5000 | 446 | 70-720 | 0-100 | 15 | 3200 |
| PG1600×6000 | 6000 | 446 | 70-720 | 0-100 | 15 | 3700 | |
| PG1600×7000 | 7000 | 446 | 70-720 | 0-100 | 15 | 4100 | |
| PG1600×8000 | 8000 | 446 | 70-720 | 0-100 | 15 | 4600 | |
| PG1800×6000 | 1800 | 6000 | 446 | 80-800 | 0-100 | 15 | 4812 |
| PG1800×7000 | 7000 | 446 | 80-800 | 0-100 | 15 | 5300 | |
| PG1800×8000 | 8000 | 446 | 80-800 | 0-100 | 15 | 5750 |
Standard-model catalogue figures. Actual capacity, power draw and wear life shift with ore properties, feed gradation and circuit conditions. Use them to shortlist, then confirm the duty by testwork, flowsheet calculation and a written confirmation from the manufacturer.
What decides the selection
Before selecting a specific model, define the material characteristics: bulk density, particle size distribution, moisture content, and abrasiveness. Determine the required feed rate and surge capacity. Bin opening dimensions and the geometry of the downstream chute or conveyor will constrain the feasible belt width and feeder length. Also establish the operating schedule and any special environmental conditions such as extreme temperatures or dust exposure.
- Maximum lump size
- Bulk density
- Moisture and stickiness
- Feed capacity
- Speed adjustment range
- Bin pressure
- Wear resistance
- Fluctuation tolerated by downstream equipment
Other feeding machines
- Chute Feeder5 models
- Bar Vibrating Feeder6 models
- Heavy Duty Plate Feeder26 models
- Electromagnetic Vibrating Feeder12 models
- Inertial Vibrating Feeder28 models
- Pendulum Feeder3 models
- Disc Feeder27 models
ISO 9001 / ISO 14001 / ISO 45001 / ISO 9712 / CE / CSA W47.1 / CNAS accredited laboratory
Send the duty, get a sized proposal
Tell us the ore, the throughput and the target product. Our process engineers come back with a flowsheet position, a model shortlist and the testwork we would need to confirm it.