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Braided Copper Wire Mesh

Updated: 2026-08-06

Overview

Oxygen-free copper wire mesh is manufactured from electrolytically refined copper with minimal oxygen content (<0.001%). This purity enhances electrical and thermal conductivity while reducing brittleness. The mesh is woven into uniform patterns, typically plain weave or twill, to balance strength and flexibility. Industries favor OFC mesh for critical applications where standard copper’s oxide formation would impair performance. Its manufacturing involves continuous casting and cold drawing to achieve precise wire dimensions, followed by annealing for optimal ductility.

Structure and Working Principle

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The mesh consists of interwoven oxygen-free copper wires forming a grid with consistent aperture sizes. Its conductivity (≥101% IACS) enables efficient electron flow, while the woven structure provides mechanical stability and surface area for shielding/filtration. For EMI shielding, the mesh acts as a Faraday cage, reflecting and absorbing electromagnetic waves. In filtration, the uniform gaps trap particles while allowing fluid passage. The absence of oxygen inclusions prevents internal corrosion, ensuring long-term reliability in humid environments.

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Key Features

Superior electrical conductivity (58.0–59.6 MS/m) outperforms standard copper alloys. The material’s high ductility allows for bending without fracture, making it suitable for conformal shielding applications. OFC mesh exhibits excellent thermal conductivity (≥390 W/m·K), ideal for heat dissipation in electronics. Its natural antimicrobial properties (99.9% bacterial reduction in 2 hours) are valued in medical and food-processing equipment. The mesh is also solderable and compatible with plating processes for enhanced surface properties.

Application Areas

Electronics: Used in RF shielding for aerospace avionics, 5G base stations, and PCB grounding. The telecom industry employs it in waveguide filters due to low signal attenuation. Industrial: Serves as spark-resistant mesh in explosive environments and as anode baskets in electroplating. Chemical plants utilize it for acid mist filtration owing to copper’s corrosion resistance. Architectural: Decorative facades and EMI-shielded rooms in hospitals/laboratories. Renewable energy systems integrate it into solar panel interconnects and battery current collectors.

Maintenance and Precautions

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Routine cleaning with mild solvents (e.g., isopropyl alcohol) prevents conductive residue buildup. Avoid abrasive tools that may scratch surfaces and increase oxidation risk. Storage should be in sealed, moisture-proof packaging with desiccants. For outdoor use, consider tin or nickel plating to delay patina formation. Periodic conductivity testing (e.g., 4-point probe method) is recommended for critical EMI applications. Installation requires non-ferrous fasteners to prevent galvanic corrosion. Cutting should use ceramic-bladed tools to minimize edge deformation.

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B2B Procurement Guide

Specify wire diameter tolerance (typically ±0.005mm) and mesh count (openings per inch). For EMI applications, request shielding effectiveness data (usually 60–100 dB at 1GHz). Bulk buyers should verify mill certifications for oxygen content (ASTM B170 standard) and request samples for conductivity validation. MOQs commonly start at 50m², with lead times of 2–4 weeks for custom weaves. Compare suppliers’ annealing processes – bright annealing under hydrogen atmosphere yields the best surface finish. For cost-sensitive projects, consider C11000 copper (99.9% pure) as an alternative with slightly lower performance.

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