Plastic Flat Top Chain Bevel Sideflexing Replacement Of System Plast 880

Direct replacement for System Plast 880 bevel sideflexing flat top chain. Bevel edge geometry maintains a gap-free top surface through horizontal curves (min. inner radius ~600 mm). Widths K118–K1200. Working load ≤2,250 N. Max. speed 60 m/min dry. Anti-static and magnetic (880M) variants available. For food, beverage, and can conveyor curves.

Description

Product Overview

The LF880 bevel sideflexing flat top chain is the standard specification for curved conveyor sections in food and beverage manufacturing — the System Plast 880 equivalent that enables horizontal curve handling without mechanical curve units. The bevel edge design cuts a chamfered profile onto the outer corner of each link plate. As the chain enters a horizontal curve, adjacent link plate bevel faces close against each other, controlling the maximum lateral flex angle per link and maintaining a smooth, gap-free top surface through the curve. EverPower plastic chain Australia supplies the LF880 bevel sideflexing series across widths K118 to K1200 as a direct replacement for System Plast 880.

The LF880 operates within a maximum chain tension of 2,250 N and a maximum recommended straight-section run of 9 m — the shorter maximum run compared to the LF820 reflecting the additional link plate mass of the bevel geometry and the inherently higher chain tension that sideflexing chains experience at the outer radius of each curve. Maximum dry-run speed is 60 m/min; maximum lubricated speed is 90 m/min. Standard packing is 10 ft (3.048 m) per box at 26 links per metre.

LF880 bevel sideflexing plastic flat top chain System Plast 880 replacement curved conveyor

Operating Parameters

Parameter Value
Chain pitch 25.4 mm
Curve capability Bevel edge sideflexing, min. inner radius ~600 mm (width-dependent)
Top plate material POM-C
Pin material SUS304 stainless steel
Working load ≤2,250 N
Max. straight run ≤9 m
Max. speed (dry) 60 m/min
Max. speed (lubricated) 90 m/min
Operating temperature −40 °C to +90 °C
Width range K118 to K1200
Packing 10 ft / box; 26 links/m

Bevel Edge Sideflexing: How the Geometry Creates the Curve

The bevel edge on the LF880 link plate is a chamfered cut on the outside face of the plate — the face that faces outward on a horizontal curve. When the chain enters a curve to the left, each link’s left-side bevel face closes toward the left-side bevel face of the next link behind it. The angle of the bevel face determines how far the chain can flex before the bevel faces make contact and stop further flexing — this contact point defines the minimum inner bend radius of the chain.

The key property of the bevel geometry is that the chain top surface remains continuous through the curve. Adjacent link plates overlap in the horizontal plane as the chain curves, and the bevel face geometry is designed so that the top plate edge of each link passes over the top plate surface of the adjacent link without creating a step or gap. A smooth, flat surface is maintained from outer radius to inner radius throughout the curve — a critical requirement for stable product transport through a curve without tip events at the plate transition points.

Minimum Bend Radius and Width Relationship

The minimum achievable inner bend radius of the LF880 increases with chain width. At K118, a minimum inner radius of approximately 400–500 mm is achievable. At K600, the minimum inner radius increases to approximately 750–900 mm. At K1200, the minimum inner radius may be 1,200–1,500 mm. This relationship is inherent to the bevel geometry: wider chains have longer link plates, and the bevel contact occurs at a larger radius for the same bevel angle. Engineers specifying LF880 for wide-chain applications should verify the minimum bend radius at their target width before committing to a conveyor layout that assumes a tighter curve.

For curve radii tighter than the LF880 bevel minimum, the LF880TAB (tab-link sideflexing variant) achieves approximately 30–40% tighter curves at equivalent widths by using a different link geometry. The TAB variant is covered in the LF880TAB product page. If your required curve radius is above the LF880 bevel minimum, the standard LF880 is the more economical and structurally simpler choice.

LF880TAB sideflexing flat top chain tab link curved section comparison

Outer Radius Guide Rail Forces: A Critical Design Variable

When a sideflexing chain runs through a horizontal curve, the chain’s tendency to run straight creates a centrifugal-like side force directed toward the outer radius of the curve. This force is proportional to chain speed squared and to the mass of the chain-and-product system per unit length. At K450, 40 m/min, and 10 kg/m product load, the side force on the outer guide rail is approximately 8–12 N/m of curve. At K750, 60 m/min, and 15 kg/m, the same calculation yields approximately 35–45 N/m.

The outer guide rail must be designed to absorb this force without deflecting — under-dimensioned aluminium rail profiles will bow outward under sustained side force, allowing the chain to climb the rail and eventually derail. EverPower recommends guide rail selection based on the calculated outer radius side force for each curve section. For forces above 25 N/m, steel-backed aluminium composite rails or heavy-section aluminium extrusions are specified rather than standard light-extrusion profiles.

LF880 Variants: Anti-Static and Magnetic

Two functional variants of the LF880 bevel sideflexing chain are available beyond the standard POM construction. The LF880 anti-static (ESD) variant uses carbon-black loaded POM with surface resistivity 10⁴–10⁶ Ω/sq — specified for electronics assembly lines, explosive atmosphere zones, or film packaging lines where static charge accumulation on the chain surface causes product cling or discharge risk through the conveyor curve section.

The LF880M magnetic variant integrates rare-earth magnets into the bevel link body, providing magnetic holding force on ferrous products through both straight runs and horizontal curves. The magnetic holding force of approximately 10–14 N per magnet-equipped link at a 2 mm working gap is sufficient to retain steel cans and tinplate lids through curves at speeds up to 40 m/min without side guide rails. This is the standard specification for steel can conveying through curves on filling and decorating lines where format-specific guide rail adjustment would otherwise be required.

LF880 anti-static ESD sideflexing flat top chain curved conveyor electronics

Matched Components EverPower Supplies

Component Description Availability
LF880 Curve Sprockets (inner/outer) All K-widths, matched to 880 bevel pitch ✓ On request
Aluminium Curve Guide Rails Inner and outer radius, heavy and standard section ✓ On request
LF880TAB (Tab-Link Sideflexing) For tighter curve radii on the same line ✓ On request
LF820 Straight Flat Top For straight sections adjacent to LF880 curves ✓ In stock

EverPower automatic chain production line Hangzhou

What Our Customers Say

“LF880 K325 on a 90° curve with 650 mm inner radius on our PET bottle transport line. The bevel geometry maintains a completely gap-free surface through the curve — no bottle tips at the plate transition since installation. At 45 m/min, the curve runs smoothly with no audible chain-to-rail contact. Well-engineered product.”

— Conveyor Engineer, PET Bottle Production, Sydney NSW

“LF880M magnetic bevel chain on our steel can decorator curve. We eliminated the format-specific guide rail spacers at this section entirely. The magnetic hold keeps the cans in position through the 180° curve at 35 m/min regardless of can diameter within our standard format range. Format changeover at this section is now zero-time.”

— Production Manager, Can Decorating, Melbourne VIC

“LF880 anti-static K252 on our PCB transport curve section. No ESDs since installation — previously we were seeing one event per week in this section with standard POM chain. The anti-static variant is mechanically identical to standard LF880, so no changes to the conveyor frame or sprockets were required.”

— Electronics Manufacturing Engineer, Brisbane QLD

Frequently Asked Questions

What is the minimum inner bend radius for LF880? +
Approximately 600 mm for widths K118–K325. For wider chains, the minimum radius increases proportionally — approximately 750 mm at K450, 900 mm at K600, 1,200 mm at K1000. These are approximate figures — confirm with our technical team for your specific width and speed combination.
When should I specify LF880TAB instead of LF880? +
Specify LF880TAB when your required inner curve radius is below the minimum achievable with the bevel LF880 at your chain width. LF880TAB achieves approximately 30–40% tighter minimum radii than the equivalent bevel configuration. For curves above the LF880 bevel minimum, the standard LF880 is the more economical choice.
Can LF880 chain run on straight sections as well as curves? +
Yes — LF880 runs on straight sections using standard straight sprockets, and transitions into curve sections using dedicated curve sprockets at the curve entry/exit points. Most conveyor systems using LF880 have predominantly straight transport sections with one or more curve sections, and the same chain runs through both.
What causes the lower maximum straight run of 9 m vs 24 m for LF820? +
The bevel geometry adds material to each link plate, increasing chain mass per metre. This higher mass per metre raises the catenary tension at the tail drive more quickly with increasing run length. At 9 m of straight run, the tension for the heavier LF880 chain approaches the level that a 24 m LF820 run achieves — hence the shorter maximum straight run recommendation.
Is LF880 compatible with System Plast 880 guide rail profiles? +
Yes — EverPower LF880 is dimensionally matched to System Plast 880 guide rail profiles. In most installations, the chain can be installed into an existing System Plast 880 conveyor frame without modification. If your frame has been customised from the System Plast standard profile, contact us with the guide rail cross-section dimensions before ordering.