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A516

We have a modern 3,800-square-meter warehousing center with a standing inventory of over 100,000 tons per month in various steel products, ensuring rapid availability of the steel you need and meeting the demands of urgent orders. We offer professional futures resource customization services, allowing us to flexibly tailor solutions according to your specific specifications, quantities, and delivery timelines. This creates a robust supply assurance system featuring “instant spot availability + precise futures customization,” providing customers with a comprehensive steel supply solution—from order placement all the way through to transportation.
  • Commodity name: A516
  • Product Description
  • ASTM A515 Grade 60 is a carbon-silicon steel plate made for boilers and pressure vessels working at high temperatures. It meets ASTM A515/A515M standards and is widely used in power, petrochemical and chemical industries.
    Key Features
    ✅ Good high-temperature performance
    ✅ Stable strength and toughness
    ✅ Excellent weldability
    ✅ Certified for pressure vessel use
    Main Applications
    Boilers and steam systems
    Pressure vessels
    Heat exchangers
    High-temperature storage tanks
    Why Choose Us
    We supply ASTM A515 Grade 60 plates in various sizes, with full test reports and certifications. Strict quality control ensures every order meets your project requirements.

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Honors and Qualifications

2024 Annual Strategic Partner for Steel Varieties

2023 Annual Strategic Partner for Variety Steel

Zhonggang Network Supermarket Outstanding Supplier

"Diamond Cup" Lange Steel Network "Top 100 List"

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Frequently Asked Questions


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Structural steel focuses on strength (especially yield strength), plasticity, toughness, and weldability. For example, reinforcing bars need good ductility to accommodate concrete deformation, facilitate welding connections, and also require certain seismic resistance (good toughness). Steel used in mechanical manufacturing emphasizes strength, hardness, wear resistance, and fatigue strength. For instance, gear steel requires high hardness and wear resistance to withstand friction, while shaft steel needs good comprehensive mechanical properties (matching strength and toughness) to resist alternating loads.

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Yield strength is the stress at which steel begins to undergo plastic deformation, marking the critical point where the material transitions from the elastic stage to the plastic stage; tensile strength is the maximum stress that steel can withstand before fracture, reflecting the material's ultimate resistance to failure. In engineering applications, yield strength is usually more important because when the material stress reaches the yield strength, irreversible plastic deformation occurs, which may affect the normal use of the structure. Design generally uses yield strength as the basis for strength design to ensure that the structure does not undergo excessive deformation during use.

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Steel can be mainly divided into carbon steel and alloy steel based on its chemical composition. In carbon steel, carbon is the main alloying element. According to the carbon content, it is further divided into low carbon steel (carbon content ≤ 0.25%), medium carbon steel (0.25% < carbon content ≤ 0.6%), and high carbon steel (carbon content > 0.6%). Its characteristics include lower cost, simpler smelting process, and performance that improves in strength and hardness but decreases in plasticity and toughness as the carbon content increases. Alloy steel is based on carbon steel with added alloying elements such as chromium, nickel, and manganese, offering higher strength, toughness, wear resistance, or corrosion resistance, making it suitable for more demanding working conditions.
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