Two Counter-Rotating Shafts
The cutter shafts work against each other to pull bulky feed into the engagement zone.
A double-shaft shredder uses two counter-rotating shafts fitted with cutter discs or claw-style knives to grab, tear and reduce bulky feedstock. The right configuration depends on the material, largest feed piece, target reduction and downstream process.

The two-shaft arrangement is selected for a different reduction duty from a screened, fine-size process. Start with the material and the next process step.
The cutter shafts work against each other to pull bulky feed into the engagement zone.
Torque-oriented cutting helps handle large, mixed or resistant feedstock under the right configuration.
The goal is often to reduce volume or break down material before conveying, sorting or secondary processing.
Cutter profile, thickness, spacing, clearance and drive choice should be reviewed together.
The two cutter shafts work in opposite directions to pull bulky material into the cutting chamber and reduce it through repeated engagement between the cutters.

Material enters through a hopper sized around the feed form and largest piece.
Two shafts rotate against each other to draw material toward the cutter engagement zone.
Cutter discs or claw-style knives grip, tear and compress bulky feedstock for primary reduction.
Reduced material leaves the chamber for collection, conveying or the next processing step.
One double-shaft design may serve more than one material stream. The application description is a starting point for configuration review, not a blanket material guarantee.
For bulky plastic items, containers, pipes and production waste that benefit from grab-and-tear primary reduction.
For pallets, timber waste, branches and selected biomass where feed size and moisture must be reviewed together.
For selected rubber, tire, cable and wire streams where torque demand, wrapping risk and wear parts are important.
For mixed industrial materials and bulky waste when the feed composition, contaminants and downstream target are known.
A double-shaft shredder is not selected by shaft count alone. These are the main areas to review before a machine or replacement part is matched.
Two independent cutter shafts and their rotation relationship create the primary grab-and-tear action.
Cutter profile, thickness, spacing and engagement should match the material and reduction duty.
Single-motor synchronized drive or independent dual-motor drive should be selected around feed resistance, capacity and duty cycle.
Chamber width, hopper opening and internal clearance should accommodate the largest feed piece and material form.
Cutters, spacers, shafts and chamber components work together and should be matched to the original machine layout.
Collection, conveying, sorting or secondary processing affects the required discharge arrangement.
Representative machine references from the double-shaft series. Share your material and reduction requirements so the working configuration can be reviewed.

Selected from the original local SKU folder. Confirm the shaft arrangement, main-drive layout, cutter system, chamber and working duty for the final machine configuration before quotation.

Selected from the original local SKU folder. Confirm the shaft arrangement, main-drive layout, cutter system, chamber and working duty for the final machine configuration before quotation.

Selected from the original local SKU folder. Confirm the shaft arrangement, main-drive layout, cutter system, chamber and working duty for the final machine configuration before quotation.

Selected from the original local SKU folder. Confirm the shaft arrangement, main-drive layout, cutter system, chamber and working duty for the final machine configuration before quotation.

Selected from the original local SKU folder. Confirm the shaft arrangement, main-drive layout, cutter system, chamber and working duty for the final machine configuration before quotation.
The fields below describe the configuration points that should be confirmed for a double-shaft machine. Exact figures depend on the selected model and material.
| Technical area | Double-shaft reference | Confirmation point |
|---|---|---|
| Shaft arrangement | Two counter-rotating cutter shafts | Confirm shaft layout and drive arrangement |
| Cutter system | Cutter discs, claw-style knives and spacers | Confirm cutter dimensions, spacing and material |
| Main drive motors | One or two main motors, model-dependent | Confirm motor count and total main drive power |
| Drive configuration | Single synchronized drive or independent dual drive | Confirm gearbox coupling, overload protection and control logic |
| Feed and chamber | Hopper and cutting chamber sized to the feed | Confirm largest feed piece and chamber dimensions |
| Discharge | Collection or downstream line connection | Confirm target reduction and discharge layout |
| Model | Cutter specification | Power | Cutter count | Gearbox reference | Speed (r/min) | Overall dimensions (m) |
|---|---|---|---|---|---|---|
| 600-Type | Φ200 × 10 | 15 kW | 48 | 400 | 18–25 | 1.45 × 0.87 × 2.2 |
| 600-Type | Φ200 × 20 | 15 kW | 24 | 400 | 18–25 | 1.45 × 0.87 × 2.2 |
| 800-Type | Φ200 × 20 | 15 kW × 2 | 32 | 400 × 2 | 18–25 | 2.15 × 0.87 × 2.2 |
| 800-Type | Φ300 × 30 | 30 kW × 2 | 18 | 650 × 2 | 18–25 | 3.4 × 1.2 × 2.2 |
| 1000-Type | Φ300 × 25 | 30 kW × 2 | 32 | 650 × 2 | 18–25 | 3.4 × 1.25 × 2.2 |
| 1000-Type | Φ300 × 30 | 30 kW × 2 | 27 | 650 × 2 | 18–25 | 3.4 × 1.25 × 2.2 |
| 1000-Type | Φ400 × 40 | 45 kW × 2 | 20 | 750 × 2 | 18–25 | 3.4 × 1.25 × 2.2 |
| 1200-Type | Φ400 × 30 | 55 kW × 2 | 38 | 650 × 2 | 18–25 | 4.15 × 1.25 × 2.2 |
| 1200-Type | Φ400 × 40 | 55 kW × 2 | 28 | 750 × 2 | 18–25 | 4.15 × 1.25 × 2.2 |
| 1500-Type | Φ400 × 30 | 75 kW × 2 | 48 | 750 × 2 | 18–25 | 4.15 × 1.25 × 2.2 |
| 1500-Type | Φ400 × 40 | 75 kW × 2 | 26 | 750 × 2 | 18–25 | 4.15 × 1.25 × 2.2 |
| 1500-Type | Φ400 × 50 | 75 kW × 2 | 28 | 850 × 2 | 18–25 | 4.15 × 1.25 × 2.2 |
| 2000-Type | Φ530 × 50 | 90 kW × 2 | 38 | 850 × 2 | 18–30 | 5.25 × 1.78 × 2.2 |
| 2000-Type | Φ600 × 60 | 90 kW × 2 | 31 | 850 × 2 | 18–30 | 5.25 × 1.78 × 2.2 |
Power, speed, cutter size, chamber dimensions and throughput should be matched to the material, feed size, target reduction and operating duty. Values shown with ×2 in the reference chart indicate two drive sets in that supplied chart; verify exact motor count and drive arrangement before quotation.
Double-shaft performance depends on the relationship between cutter discs, claw knives, spacers, shafts and the cutting chamber.
Cutting profiles and spacing determine how bulky material is gripped and engaged.
Dimensions to confirm
Shaft geometry, bore, keyway and spacer arrangement must match the cutter stack.
Drawing or sample match
Chamber plates, counter elements and clearances support the working cutter set.
Machine-layout dependent
Gearboxes, couplings and drive-side parts should be matched to the two-shaft arrangement.
Drive details to confirm
A double-shaft shredder is often one stage in a wider material-handling line. The downstream target helps define the required reduction and discharge arrangement.
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Discharge height, hopper layout and material flow should match the collection bin or conveyor.
When a more controlled fraction is required, screening or separation may follow the primary reduction stage.
Downstream granulation, sorting, packing or another shredder can determine the practical target from the first stage.
The same double-shaft structure can be configured for different duties. Start with the feed and reduction target rather than a model number alone.
Identify the material, form, hardness, moisture, contamination and wrapping risk.
Provide dimensions, bulk density and whether pre-cutting or controlled feeding is needed.
Describe the desired primary reduction and what the next process needs to receive.
Share hourly volume, operating hours, duty cycle and peak-load conditions.
Tell us about conveyors, sorting, secondary shredding, packing or other line equipment.
Practical answers for buyers comparing double-shaft equipment, cutter systems and replacement components.
Double-shaft machines are commonly considered for selected bulky plastic, wood, rubber, tires, cable and mixed industrial materials. The actual material, feed form and contamination must be reviewed before selection.
Two shafts rotate in opposite directions and use cutter discs or claw-style knives to grab, tear and compress material in the cutting chamber. Reduced material then leaves through the discharge arrangement.
A single-shaft machine is often selected when controlled rotor cutting and a more defined screened output are needed. A double-shaft machine is often considered for bulky or difficult feedstock requiring high-torque primary reduction. The material and downstream goal decide the better fit.
Not necessarily. Output form depends on cutter geometry, shaft speed, clearances, feed conditions and whether a screen or secondary process is used. Uniform sizing should be confirmed from the complete process requirement.
Screen use depends on the machine design and target reduction. Some primary-shredding duties focus on throughput and bulk reduction rather than a tightly controlled screened fraction.
Material properties, largest feed piece, cutter set, shaft speed, drive torque, chamber size, operating duty and discharge conditions all affect throughput. A power number alone is not enough to predict capacity.
These parts can be reviewed from a machine drawing, model, sample or clear photos. Cutter dimensions, shaft layout, spacer stack and drive-side details should be confirmed before production.
Send material photos, the largest feed piece, target reduction, estimated throughput, operating hours, available power and any existing machine model, drawing or old-part photo.
Yes. Some compact or medium-duty designs use one motor and synchronized transmission to drive both shafts. Heavy-duty models may use two independent motor-and-gearbox drives. Confirm the main drive arrangement for the selected model.
Please prepare the information you already have. The inquiry form is on our Connect Us page.