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Extruded Polyoxymethylene

Updated: 2026-07-31

Overview

Extruded polyoxymethylene (POM) is a semi-crystalline thermoplastic produced via extrusion molding, offering superior dimensional stability and mechanical properties compared to injection-molded variants. It is categorized into homopolymer (higher strength) and copolymer (better chemical resistance) grades. Developed in the 1950s, POM has become indispensable in precision engineering due to its balance of rigidity, fatigue resistance, and ease of machining. Common trade names include Delrin (homopolymer) and Celcon (copolymer). The extrusion process allows for continuous production of sheets, rods, and profiles, enabling cost-effective manufacturing of large or custom-shaped components. Its applications span automotive, electronics, and industrial machinery sectors.

Physical and Chemical Properties

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POM exhibits a tensile strength of 60–70 MPa and a low coefficient of friction (0.1–0.3), making it ideal for moving parts. It retains mechanical properties between −40°C and 100°C, with limited creep under load. The material is inherently flame-retardant (LOI ~15%) but burns slowly with a blue flame, releasing formaldehyde. Chemically, POM resists hydrocarbons, alcohols, and weak acids but degrades in strong acids, bases, and hot water. UV exposure causes surface chalking, requiring stabilized grades for outdoor use. Its crystalline structure (75–85%) contributes to high shrinkage rates (1.5–3.5%) during cooling, necessitating precise extrusion controls.

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Main Applications

In automotive systems, extruded POM is used for fuel pump components, window regulators, and seatbelt mechanisms due to its oil and grease resistance. Industrial applications include conveyor belts, gears, and bushings, where its self-lubricating properties reduce maintenance. The electronics industry employs POM for insulators, connector housings, and keyboard components. Medical devices utilize sterilizable copolymer grades for inhalers and surgical handles. Recent innovations include conductive POM for static-sensitive environments and glass-fiber-reinforced grades for load-bearing parts.

Safety and Storage

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POM dust requires NIOSH-approved respirators during machining to prevent respiratory irritation. Thermal processing must occur below 220°C with adequate ventilation to avoid formaldehyde release. Spills should be collected using non-sparking tools to prevent static ignition. Storage recommendations include sealed moisture-proof packaging to prevent oxidation. Bulk pellets are typically stored in polyethylene-lined bags with desiccants. Shelf life exceeds 24 months under proper conditions. Disposal follows local regulations for non-halogenated plastics, with incineration requiring scrubbers for formaldehyde abatement.

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B2B Procurement Guide

Industrial buyers should specify parameters such as melt flow index (MFI, typically 2–25 g/10min), formaldehyde emission levels (<1% for sensitive applications), and FDA compliance for food-contact uses. Custom extrusion profiles often require minimum order quantities (MOQs) of 500 kg. Leading suppliers include DuPont, Mitsubishi Engineering-Plastics, and Celanese. Price negotiations should account for volume discounts (10–15% for 20+ ton orders) and incoterms (FOB prices common for Asian suppliers). Quality certifications like ISO 9001 and UL listings are critical for high-precision applications. Sample testing for dimensional tolerance (±0.1% standard) is recommended before full-scale procurement.

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