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China Steel CNC Machining Service | Reliable Factory Suppliers for Precision Steel Parts

Steel stands as the foundation of contemporary industry, recognized globally for its unmatched strength, durability, and versatility. As one of the most widely utilized metallic materials, steel serves various applications, from precision micro-components to robust mechanical structures. Our advanced CNC machining technology enables us to expertly transform a range of steels into essential components that fulfill stringent performance criteria. As a leading China supplier and factory, we provide comprehensive services that encompass material selection and precision manufacturing. Trust us to convert your innovative designs into reliable, long-lasting steel products that meet your exact specifications

    Major Steel Categories and Typical Grades

    Steel is an alloy primarily composed of iron and carbon. Its properties are precisely controlled by adjusting the carbon content, adding other alloying elements (such as chromium, nickel, molybdenum, vanadium), and through heat treatment processes.

    The steel family is vast, mainly categorized into carbon steel, alloy steel, stainless steel, and tool steel. This covers a full spectrum of choices ranging from high ductility to ultra-high strength, and from general weather resistance to extreme corrosion resistance. Modern CNC technology can efficiently machine various steels, achieving a perfect combination of complex geometries and high dimensional accuracy.

    1. Carbon Steel

    ● Low Carbon Steel (e.g., AISI/SAE 1018, 1045)

    Characteristics: Carbon content is typically below 0.25%. It has lower strength but excellent toughness, ductility, and weldability. It is easy to perform cold forming and machining.

    Typical Applications: Mechanical structural parts, shafts, bolts, gears, frames, welded structures.

    ● Medium Carbon Steel (e.g., AISI/SAE 1045, 4140)

    Characteristics: Carbon content is approximately 0.25%-0.60%. After heat treatment (quenching and tempering), it achieves a good balance of strength, hardness, and wear resistance. It is the most commonly used quenched and tempered structural steel.

    Typical Applications: Crankshafts, connecting rods, high-strength bolts, mold bases, gears, hydraulic cylinder tubes.

    ● High Carbon Steel (e.g., AISI/SAE 1095, C45)

    Characteristics: Carbon content is higher than 0.60%. It can achieve very high hardness and wear resistance, but brittleness increases and weldability is poor. It is typically used for making tools and parts requiring extremely high surface hardness.

    Typical Applications: Cutlery, springs, saw blades, bearing parts, high-strength wire.

    AISI 1045 (Medium Carbon Steel) Typical Properties (Normalized Condition)

    Property Value Notes
    Tensile Strength (MPa) 570 - 700 -
    Yield Strength (MPa) ≥ 310 -
    Elongation at Break (%) ≥ 16 Good overall mechanical properties
    Hardness (Brinell) ~ 170 -
    Density (g/cm³) 7.85 -
    Note: Properties can be significantly improved after heat treatment.

    2. Alloy Steel

    Alloy steel contains elements such as molybdenum, chromium, and nickel added to carbon steel to enhance strength, toughness, hardenability, or heat resistance.

    ● AISI/SAE 4140 (Chromium-Molybdenum Steel)

    Characteristics: A versatile medium-carbon alloy steel. The addition of molybdenum and chromium gives it excellent hardenability, strength, and toughness, allowing uniform properties to be obtained across larger cross-sections.

    Typical Applications: High-strength shafts, gears, connecting rods, oil drilling equipment, molds.

    ● AISI/SAE 4340 (Nickel-Chromium-Molybdenum Steel)

    Characteristics: The representative of ultra-high-strength alloy steel. The addition of nickel allows it to maintain excellent toughness and fatigue resistance even at very high strength levels, making it suitable for parts subjected to extreme loads.

    Typical Applications: Aircraft landing gear, heavy vehicle drive shafts, high-strength fasteners, critical military equipment parts.

    3. Stainless Steel

    Stainless steel uses chromium (≥10.5%) as the main alloying element to form a passive film, thereby providing superior corrosion resistance.

    ● Austenitic Stainless Steel (e.g., 304, 316)

    Characteristics: Non-magnetic, excellent corrosion resistance, and superb formability and weldability. Due to the addition of molybdenum, 316 has better pitting corrosion resistance and chemical resistance (especially to chlorides) than 304.

    Typical Applications: Food and medical equipment, chemical containers, marine fittings, architectural decoration, consumer goods.

    ● Martensitic Stainless Steel (e.g., 410, 440C)

    Characteristics: Can be heat-treated to achieve high hardness and strength. It has certain corrosion resistance and wear resistance, but its toughness and weldability are relatively poor.

    Typical Applications: Cutlery, surgical instruments, bearings, valve parts, pump shafts.

    ● Precipitation Hardening Stainless Steel (e.g., 17-4 PH)

    Characteristics: Through special heat treatment (precipitation hardening), it achieves mechanical properties close to high-strength alloy steel while maintaining good corrosion resistance. It has a low tendency for work hardening.

    Typical Applications: Aerospace structural parts, high-speed centrifuge components, nuclear industry parts, high-end molds.

    AISI 304 Stainless Steel Typical Properties (Solution Annealed Condition)

    Property Value Notes
    Tensile Strength (MPa) ≥ 515 -
    Yield Strength (0.2% Offset, MPa) ≥ 205 -
    Elongation at Break (%) ≥ 40 Excellent plasticity and toughness
    Hardness (Brinell) ≤ 201 -
    Density (g/cm³) 8 -

    4. Tool Steel

    Tool steel is specifically developed for manufacturing tools (such as molds and cutlery), pursuing extreme hardness, wear resistance, red hardness, and dimensional stability.

    ● D2 (High Carbon, High Chromium Cold Work Steel)

    High wear resistance with moderate toughness, used for high-life cold stamping dies and fine blanking dies.

    ● H13 (Hot Work Die Steel)

    Maintains high strength and wear resistance at high temperatures with good resistance to thermal fatigue. Used for die-casting molds and hot forging dies.

    ● S7 (Impact Resisting Tool Steel)

    Renowned for its excellent toughness. Used for chisels, punches, and shear blades subjected to high impact loads.

    Frequently Asked Questions (FAQ)

    What are the main differences between Carbon Steel and Alloy Steel?
    Carbon steel properties are primarily determined by its carbon content, offering options from high ductility (low carbon) to high hardness (high carbon). Alloy steel contains added elements like chromium, nickel, and molybdenum to enhance specific performance criteria such as toughness, hardenability, and corrosion resistance.
    Why is AISI 316 stainless steel preferred over AISI 304 inmarine or chemical environments?
    AISI 316 contains added molybdenum, which provides significantly better resistance to pitting and chemical corrosion (especially against chlorides) compared to AISI 304.
    What are the primary characteristics of Tool Steel?
    Tool steel is specifically developed to achieve extreme hardness, wear resistance, red hardness (retaining hardness at high temperatures), and dimensional stability, making it ideal for molds, dies, and cutlery.
    Can the mechanical properties of AISI 1045 carbon steel be improved?
    Yes, the mechanical properties of AISI 1045 (such as tensile strength and hardness) can be significantly improved through heat treatment processes like quenching and tempering.
    What makes 17-4 PH stainless steel unique?
    Through precipitation hardening, 17-4 PH stainless steel achieves high mechanical strength and hardness close to high-strength alloy steels while maintaining excellent corrosion resistance.
    Which tool steel grade is best for high-impact applications?
    S7 tool steel is renowned for its excellent toughness and is specifically designed for tools subjected to high impact loads, such as chisels, punches, and shear blades.

    Finishes and Post-Processing Options

    The zinc alloy substrate is highly suitable for various surface treatments to enhance decoration, protection, or functionality:

    Electroplating: Such as chrome, nickel, gold, or silver plating, providing a highly decorative appearance, excellent wear and corrosion resistance. This is the most common choice.

    • Passivation or Chromate Conversion Coating:

    • Powder Coating:

    • Painting:

    • Physical Vapor Deposition (PVD):

    Design and Machining Considerations

    • Process Selection:

    • Design Considerations:

    • Material Selection:

      Zamak 3 and 5 are suitable for the vast majority of general-purpose parts requiring good appearance and strength; ZA-8 is better for wear and bearing applications; for making rapid tooling, choose specialized alloys like Kirksite.

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