
Chain Driven Conveyor Belt
Chain driven wire conveyor belt configurations including stay pins, constant-thickness pins, large or triangular spirals, product stoppers and side guards.
Chain Driven Conveyor Belt: geometry first, application second
A chain driven belt combines an open wire-mesh conveying surface with positive drive at the belt edges. The catalogue shows several construction options: K2 stay pin, stay pin, constant-thickness pin, large spiral, triangular spiral, angle product stopper and a version combining side guards with an angle stopper. These are functional construction choices rather than cosmetic variations. They affect how the belt is connected to the side chains, how products are supported and how product position is controlled on inclines or through process zones.
For buyers comparing alternatives, start with the verified dimensions below and then review the wider Food Conveyor Belts family. Verified dimensions are shown separately from verified catalogue dimensions from application questions that need confirmation on the RFQ.

For final release, keep the approved configuration, measured interface, quantity and application conditions together on the purchase record so receiving inspection and future repeat orders reference the same controlled basis.
Verified dimensions
Dimension key: The catalogue presents configuration families rather than a single dimensional table. Do not infer pitch, width, load or temperature from the images; provide application geometry for quotation.

| Catalogue Configuration | What to confirm on RFQ |
|---|---|
| K2 stay pin type | Stay-pin geometry, chain center distance, belt width and edge connection |
| Stay pin type | Pin form, spacing and mesh connection |
| Constant thickness pin type | Pin type and cross-machine engagement |
| With large spiral | Spiral form and product-support/open-area requirement |
| With triangular spiral | Triangular spiral geometry and product support |
| With angle product stopper | Stopper spacing, height, direction and product size |
| With side guard and angle product stopper | Side-guard height plus stopper geometry and spacing |
How to specify the right configuration
Because the source does not publish one universal dimension table for these variants, a precise RFQ should supply belt width, side-chain information, center-to-center distance between chains, mesh pitch or sample measurements, edge connection, product size and required stopper/guard geometry. Also describe the drive and return sprockets, conveyor path and any incline. Where the old belt is available, photographs from both top and underside plus a short physical sample can prevent an incorrect assumption about the stay-pin arrangement.
Include conveyor speed, total loop length, product mass and spacing, start/stop pattern, curves or inclines, temperature zones, sanitation method and the existing drive or sprocket arrangement. These operating details are intentionally requested rather than converted into unsupported catalogue ratings.

Design around the machine interface
Before finalizing a replacement, compare the component with the complete conveyor path. Small differences in guides, transfer height or sprocket engagement can determine whether an otherwise similar chain or belt runs freely.
The visible conveying element is only one part of the system. Guide rails, sprockets, support tracks, transfer plates, tensioning and sanitation access all influence service life and product handling. When replacing an existing conveyor component, send the mating-interface dimensions instead of asking for a visual match alone.
For a broader project checklist, see our food conveyor chain selection guide.
Installation and commissioning checks
Install both side chains square to the shafts and verify that the wire mesh is not pulling one chain ahead of the other. Cross connections must stay aligned across the belt width. Run several empty revolutions and inspect the mesh where it enters the drive; positive drive should not force the mesh sideways or bunch the spirals. Product stoppers and guards require additional clearance checks at transfers and return paths.
Keep geometry stable through sanitation and wear
Cleaning should address both the mesh and the side-chain joints. Remove residue from spirals, cross connections, stoppers and guards, then inspect for bent wire that can catch product. If the belt operates through heating or cooling equipment, state the actual temperature cycle and sanitation method in the RFQ because the catalogue image alone does not establish a universal temperature or material rating for every configuration.
Inspection should compare a repeatable reference length rather than judging one joint by eye. Record the location of abnormal wear so it can be related to a specific guide, transfer or sprocket.

What to send for an accurate quotation
- Model or complete designation, if known.
- Required quantity and whether the request is sample, replacement or production supply.
- Measured pitch, key widths/diameters, attachment or mesh geometry and overall belt/chain width.
- Clear top, side, end and drive-interface photographs; include a scale reference.
- Operating speed, product/load description, temperature zones, cleaning method and environmental exposure.
- Sprocket or mating-component details and any drawing revision used by the machine builder.
Use the RFQ contact page to organize the information before submitting it through the global enquiry form in the footer.
Common engineering questions
Does the catalogue give one standard size for chain driven belts?
No. It presents construction types and application variants rather than a single universal dimensional table.
What is the main advantage of side chains?
They provide positive, synchronized edge drive when the belt and conveyor are designed as a matched system.
When are product stoppers useful?
They can help control product position on inclines or indexed transfer sections, but height and spacing must match the actual product.
What should be measured on an old belt?
Record belt width, side-chain pitch and center distance, mesh geometry, cross connection, edge details, stopper/guard dimensions and sprocket data.
Can a plastic modular belt be substituted?
That is a system-level redesign rather than a direct replacement. Compare drive, support, temperature, sanitation, airflow and transfer requirements before changing belt architecture.
A practical way to avoid a visually similar but mechanically wrong replacement
A replacement can match pitch and still fail because the roller, inner width, attachment height, top-plate envelope or cross-machine interface is different. Build a compact measurement sheet before contacting suppliers. If the old component is worn, take measurements from several less-damaged areas and note which values are estimated. Never silently round a measured value to a familiar nominal size; keep the measured value and the proposed nominal value as separate fields until the match is confirmed.
The specification table above is catalogue evidence for the listed model or configuration. Conveyor speed, support spacing, curve radius, product temperature and cleaning chemistry belong to the machine application and must be confirmed for the project. Keeping these two data sets separate prevents a common procurement error: treating a catalogue geometry value as a performance guarantee for a different conveyor layout.
Before production quantity is released, compare the proposed chain or belt with the sprocket, guide and transfer geometry. A marked-up drawing or a first-article sample is more useful than a product photo when the machine has special guards, side rails or attachments. The goal is an interface that can be inspected objectively during incoming inspection and commissioning.
Keep Chain Driven Conveyor Belt traceable from RFQ to incoming inspection
Before placing a production order, convert the agreed configuration into a short acceptance sheet. Put the exact model or designation at the top, followed by the dimensions that control fit on the machine. Attach the approved drawing or marked reference image and identify any dimension that was taken from a worn sample rather than a controlled source. This distinction is important because a supplier should not be asked to reproduce wear simply because the old part was the only sample available.
For repeat orders, keep the same stable item reference and note any deliberate revision. If a later machine modification changes a guide, sprocket, support rail or transfer, update the interface record rather than silently changing the chain or belt. This creates a useful history for procurement and maintenance teams and reduces the chance that two visually similar but mechanically different versions are mixed in stores.
Check the machine before blaming the replacement component
A conveyor component can show accelerated wear even when its manufacturing dimensions are correct. Inspect the mating sprocket, guide and transfer surfaces for burrs, hooks, steps, side pressure and localized contamination. Compare left and right sides of the machine and mark any position where the chain or belt changes direction. If the old component has a polished band or bent attachment that repeats at the same location, document that point before the old loop is removed.
After installation, create a controlled low-speed baseline. Listen for repeating noise, watch the same marked joint through the drive and return, and confirm that product transfer is stable before increasing speed. If the machine uses take-up adjustment, record its final position. A short baseline record makes later maintenance more objective because the team can compare current condition with the state immediately after commissioning.
These checks also help quotation quality. When the supplier receives clear evidence about fit, wear location and operating duty, the response can focus on the relevant geometry or process question instead of asking the buyer to choose from a long list of generic options.