Engine mounts, chassis parts, and machined components for assembly lines.
High-strength fasteners, landing gear parts, and structural assemblies.
Forged housings, armor brackets, and mission-critical structural parts.
Precision housings, actuator frames, and armature linkages for automation systems.
Metal frames, brackets, and assemblies for appliances and home equipment.
Busbar holders, battery pack parts, and lightweight structural enclosures.
Solar mounting parts, wind turbine brackets, and battery enclosures.
Valve bodies, flange blocks, and downhole drilling components.
Large welded frames, PEB structures, and assemblies for industrial equipment.
Electrical devices built to deliver stable voltage and current for power distribution and equipment operation.
Manufactured to provide safe and consistent power delivery for electrical equipment and appliances.
Magnetic components designed to store energy, filter signals, and control current in electrical circuits.
Conductive products manufactured to transmit power or signals with consistent electrical performance.
Electrical bars designed for efficient current distribution in electrical panels and power systems.
Protective housings built to safeguard electrical and mechanical assemblies against operational stresses.
Continuous profiles produced with uniform cross-sections for structural, decorative, and functional applications.
Connection interfaces manufactured for secure pipe joining and leak-free performance in critical systems.
Fluid-handling units built to deliver consistent flow and pressure across industrial applications.
Flow control components engineered to regulate, isolate, or direct fluids in industrial systems.
High-accuracy metal parts produced for industries where performance depends on flawless detailing.
Custom-formed sheets with tight dimensional for sectors ranging from enclosures to structural components.
High-volume molded parts with consistent finish, suited for functional and consumer-grade products.
Metal components shaped to complex profiles for strength, detail, and material efficiency.
End-to-end part production from samples to bulk supply.
Ready-to-use assemblies built to exact fit and function.
Heavy-duty fabrication with high-strength materials for demanding applications. Robust welding for maximum structural durability.
Alloys like 6061-T6, 6063-T5, and 6082-T6 offer a balance of strength, elongation, and corrosion resistance. 6061-T6 is ideal for high-strength applications like aerospace, while 6063-T5 suits architectural needs with its excellent finish and formability. Each alloy is optimized through artificial aging to meet specific performance demands.
The square profile ensures uniform torsional stiffness, making it ideal for structural frames, gantries, and load-bearing applications. The design allows for even stress distribution, simplifying structural analysis and minimizing deflection under load.
With controlled surface roughness, these tubes offer consistent anodizing and coating adhesion. This is critical for both visual applications and functional needs like corrosion protection or electrical conductivity in aerospace, automotive, and electronics sectors.
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Used in aircraft and satellite structures for high-strength-to-weight ratio, offering rigidity and corrosion resistance in critical load-bearing components.
Employed in vehicle chassis and frame components, providing strength and reduced weight while withstanding impact and vibration forces.
Utilized for heavy-duty storage systems, offering high torsional stiffness and ease of assembly with minimal material fatigue over time.
Provides robust, lightweight protection for sensitive electronic components, supporting cooling efficiency and shielding from external electromagnetic interference.
Commonly used in cooling systems, leveragingaluminum’s high thermal conductivity for effective heat dissipation in mechanical and electronic systems.
Used for frames and supports in marine environments, providing resistance to corrosion and fatigue under dynamic loading conditions.
Aluminum’s high thermal conductivity (167–235 W/m·K) aids in passive heat dissipation, ideal for cooling systems, battery packs, and power electronics. The flat surfaces of square tubes enhance heat dissipation efficiency, reducing localized thermal stress.
With high weldability using TIG, MIG, and laser welding, 6xxx-series alloys maintain mechanical strength in the heat-affected zone. The geometry ensures strong, low-distortion weld joints, crucial for structural integrity in critical applications.
Check all our Frequently Asked Question
The extrusion process controls the grain structure of the aluminum, enhancing its strength and resistance to fatigue. This results in improved yield strength, especially when using alloys like 6061-T6, which are further strengthened through artificial aging. The extrusion process also influences the material’s ductility and elongation, which are critical for structural integrity in dynamic load applications.
The square profile ensures uniform stress distribution across both axes, providing higher torsional stiffness compared to circular or rectangular tubes. This makes it ideal for applications requiring even load-bearing capacity and minimal deflection, such as in automotive frames or industrial racking systems.
Wall thickness variation can lead to uneven stress distribution, potentially causing weak spots under load. Extrusions with tight tolerance control reduce this effect, ensuring consistent strength throughout the tube. In structural applications, even wall thickness is critical to prevent deformation and ensure dimensional stability under dynamic loads.
The choice of alloy significantly impacts corrosion resistance. For example, 6061-T6 offers good resistance to atmospheric corrosion and is often used in outdoor structures, while 6063-T5 provides better resistance in environments prone to acidic or alkaline exposure. Proper alloy selection ensures the tube’s longevity and performance in harsh environmental conditions.
Heat treatment, specifically artificial aging (T6 condition), increases the hardness and strength of the aluminum alloy by precipitating solute atoms that impede dislocation motion. This process improves the material’s resistance to mechanical stress and ensures consistent performance in load-bearing applications, such as in aerospace or automotive structural components.
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