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Titanium Clad Copper Composite

Updated: 2026-07-15

Overview

Titanium clad copper composite is an engineered material that synergizes the advantages of both metals. The copper core provides excellent electrical and thermal conductivity, while the titanium outer layer offers exceptional corrosion resistance, particularly against saltwater, acids, and industrial chemicals. This composite is manufactured through explosive bonding or roll bonding processes, ensuring metallurgical bonding between the layers. Developed initially for aerospace applications, the material has gained prominence in industries where both conductivity and durability are critical. Unlike plating methods, the cladding process creates a permanent bond that won't delaminate under thermal cycling or mechanical stress. The typical thickness ratio ranges from 1:4 to 1:9 (titanium to copper).

Physical and Chemical Properties

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The composite exhibits a unique combination of properties: copper's conductivity (≈58 MS/m at 20°C) with titanium's corrosion resistance (withstands 5% HCl at 35°C indefinitely). Its thermal expansion coefficient is intermediate between the two metals (≈17 × 10⁻⁶/°C), reducing thermal stress issues in applications. Mechanically, it shows higher tensile strength (300-500 MPa) than pure copper due to titanium reinforcement, while maintaining good ductility (15-25% elongation). The bond strength typically exceeds 140 MPa, tested per ASTM B898. Electrical resistivity remains within 1.7 × 10⁻⁸ Ω·m for standard compositions, making it suitable for precision electrical applications.

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Main Applications

In aerospace, the composite is used for fuel system components and avionics grounding, where it prevents galvanic corrosion while maintaining conductivity. The chemical industry employs it in heat exchangers and reactor linings, especially for processes involving corrosive media like chlor-alkali production. The electronics sector utilizes thin-clad versions (0.1-0.5mm Ti layer) for high-reliability connectors in marine and downhole equipment. Recently, it has found applications in renewable energy systems, particularly in offshore wind turbine grounding networks. Medical device manufacturers value its MRI compatibility combined with conductivity for specialized imaging equipment.

Safety and Storage

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As a solid metal composite, it poses minimal hazard when handled intact. However, machining operations generate mixed metal dust requiring Class D (titanium-compatible) fire suppression systems. Storage should avoid humid environments to prevent potential galvanic corrosion at exposed edges. Packaging typically uses VCI (vapor corrosion inhibitor) paper for long-term storage. Unlike pure titanium, the composite doesn't present pyrophoric risks, but cutting operations should use water-based coolants to prevent overheating. Waste disposal follows standard metal recycling protocols, with titanium and copper separable via standard smelting processes.

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B2B Procurement Guide

Technical specifications should clearly define: 1) Cladding ratio (e.g., 15% titanium by thickness), 2) Bonding method (explosive vs. roll bonded), 3) Surface finish (mill finish or polished), and 4) Dimensional tolerances (typically ±0.05mm for thickness). Quality certifications should include bond strength test reports (per ASTM or ISO standards) and eddy current testing for interface defects. Lead times vary from 4-12 weeks depending on custom dimensions. For prototype development, consider suppliers offering waterjet cutting services to avoid heat-affected zones. Major producers are concentrated in the U.S., Germany, and Japan, with emerging capacity in China for standard grades.

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