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Injection Molded Plastic Parts and Engineering Components

Browse product families, compare geometry and material routes, then open the relevant product page for a drawing-led RFQ.

Choose a product family, then define the controlling inputs

The catalogue below is organized around component geometry and application rather than around generic resin names. Each product page explains the dimensions, material decisions and production information needed for a useful quotation.

For an existing part, include a drawing or sample reference. For a new design, add mating-part information and identify which dimensions or motion characteristics are critical.

Plastic gear, rack, sprocket and molded component families

Common selection routes

Custom molded parts

Drawing-specific housings, guides, covers, structural features and functional mechanisms.

Plastic gears and racks

Spur, helical, bevel, worm, internal, planetary and linear-motion geometries.

Plastic sprockets

Chain-drive components selected around chain series, tooth count, bore, hub and operating environment.

How the catalogue is structured

Use geometry as the first filter. A rack, bevel gear, internal gear, worm wheel and chain sprocket can all be made from engineering plastics, but they require different mating information and different assembly datums. The product-family pages therefore start from the mechanical interface instead of presenting a long resin list.

Starting point Open this route when… Bring to the review
Standard geometry family The component is recognizably a gear, rack or sprocket. Tooth or chain system, mate, shaft interface and duty.
Custom molded component The shape is defined by your assembly and cannot be selected from a standard family. CAD, datums, wall map, inserts, loads, environment and volume.
Material-led replacement A legacy metal or plastic part has a known field problem. Existing sample, failure mode, mating surfaces and the requirement the new material must solve.

Do not choose the manufacturing route too early

Injection molding is usually evaluated against annual demand, geometry, tool access, wall design and repeatability needs. Machining can be more practical for lower quantities, larger stock shapes, cast nylon components or projects where geometry is still changing. Some projects combine molding with a controlled secondary bore, datum or insert operation.

The correct route is the one that meets the functional drawing with acceptable process risk and total project cost. Send both quantity and revision status so tooling is not proposed for a design that is still moving.

How to compare product pages without guessing

Start with the interface that cannot move: shaft spacing, chain standard, rack pitch line, housing datums or assembly envelope. Then define the motion geometry and only after that compare materials and manufacturing routes. A familiar product name is not a complete specification. Two parts that look alike can require different tooth forms, bore fits, resin conditions or inspection methods.

Gear pages

Confirm module or DP, pressure angle, tooth count, face width, helix or bevel data where applicable, mating member, center distance or shaft angle, bore/hub details and the required backlash condition.

Rack and sprocket pages

For racks, define pitch geometry, mounting datum, length/joints and pinion mesh. For sprockets, begin with chain standard and pitch, then define tooth count, strand, bore, hub and shaft retention.

Custom molded parts

Identify wall sections, ribs, bosses, inserts, undercuts, cosmetic zones, sealing or bearing interfaces, gate/ejector restrictions and the dimensions that determine assembly function.

RFQ data that shortens the first engineering loop

A useful RFQ links the drawing revision to annual or batch quantity, material requirement or service conditions, mating components, critical dimensions, inspection expectations and any approved sample. Where a specification is still open, state the functional target rather than inserting a tight tolerance by default. That gives engineering room to choose a process and control plan that match the real risk.

For replacement components, send photographs only as context. Tooth geometry, shaft interfaces and datums still need dimensions or a sample that can be measured. For new molded parts, identify which surfaces may carry a gate, parting line or ejector witness and which surfaces are functionally or cosmetically restricted.

What makes a product record useful for sourcing

A product title is only a route into the engineering conversation. The quotation still needs the geometry that controls motion or fit, the mating interface, service environment, quantity and an acceptance method. For gears that means the tooth system and the bore-to-tooth relationship; for racks it means pitch line, length, joints and mounting datum; for sprockets it means the chain standard, tooth count, bore, hub and strand; for custom molded parts it means the CAD model, wall strategy, inserts and assembly datums.

Photographs are deliberately treated as visual references rather than dimensional evidence. A photograph can confirm the component family and show typical construction, but it cannot establish module, backlash, shaft fit or a critical molded dimension. The controlled drawing remains the production definition.

First: freeze the interface

Identify the surfaces, tooth geometry, shaft or mounting features that cannot move without changing the machine.

Second: define the duty

Add load, speed, reversing duty, temperature, moisture, chemicals, lubrication and the expected service cycle.

Third: agree acceptance

Mark CTQs, datums and functional checks so the sample review measures the features that actually control assembly performance.

Product Categories

所有产品

Product records remain linked to their assigned families and product pages.

Representative technical redraw of an engineering-plastic involute helical gear with a twisted tooth trace; final module or DP, pressure angle, helix angle, hand, bore and material follow the released drawing.
塑料螺旋齿轮

Plastic Helical Gears

Plastic helical gears for parallel or crossed-axis arrangements where helix angle and hand, normal tooth geometry, axial thrust,…

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Photograph of a thermoplastic split sprocket with shaft-ready bore hardware; final chain series, pitch, tooth count, bore, keyway, hub and material follow the released drawing.
塑料链轮

Plastic Sprockets

Plastic roller-chain sprockets for conveyor and light transmission duty, selected from chain standard and pitch first, then tooth…

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Photograph of a white engineering-plastic spur gear on a clean white background.
塑料正齿轮

Plastic Spur Gears

Straight-tooth plastic spur gears for parallel-shaft drives, with module or DP, pressure angle, tooth count, face width, bore/hub…

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Representative technical redraw of a worm and worm-wheel arrangement with perpendicular shaft axes; final worm starts, lead, wheel tooth count, center distance, pressure system, bore and material follow the released drawing.
Plastic Worm Gears

Plastic Worm Gears

Plastic worm-wheel sets for right-angle reduction and adjustment mechanisms, specified by center distance, worm starts and lead, ratio,…

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Representative photograph of a white engineering-plastic spur gear on a clean background; exact POM/acetal grade, tooth geometry and shaft interface follow the released drawing.
POM / Acetal Gears

POM / Acetal Gears

POM/acetal gears for compact mechanisms where low moisture uptake, repeatable dimensions, smooth running and low friction are useful,…

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