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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)
Medium Carbon Steel (e.g., AISI/SAE 1045, 4140)
High Carbon Steel (e.g., AISI/SAE 1095, C45)
| 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 |
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)
AISI/SAE 4340 (Nickel-Chromium-Molybdenum Steel)
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)
Martensitic Stainless Steel (e.g., 410, 440C)
Precipitation Hardening Stainless Steel (e.g., 17-4 PH)
| 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)
H13 (Hot Work Die Steel)
S7 (Impact Resisting Tool Steel)
What is the primary difference between carbon steel and alloy steel?
Carbon steel relies primarily on carbon content to determine its mechanical properties (strength, hardness, and ductility). Alloy steel includes additional elements such as chromium, nickel, and molybdenum to enhance specific properties like hardenability, toughness, and corrosion resistance.
Why is 316 stainless steel more corrosion-resistant than 304 stainless steel?
316 stainless steel contains molybdenum, which significantly improves its resistance to pitting and chemical corrosion, particularly in environments containing chlorides, marine conditions, or harsh industrial chemicals.
What makes precipitation hardening stainless steel (like 17-4 PH) unique?
Precipitation hardening stainless steels undergo specialized heat treatments that allow them to achieve high strength and hardness levels close to alloy steels, while still retaining the excellent corrosion resistance of standard stainless steel.
Under what conditions should H13 tool steel be chosen?
H13 is a hot-work die steel designed to maintain high strength and wear resistance at elevated temperatures. It is highly resistant to thermal fatigue, making it the ideal choice for die-casting molds and hot forging dies.
Can the mechanical properties of AISI 1045 steel be altered?
Yes. AISI 1045 is a medium carbon steel, and its properties can be significantly enhanced through heat treatment processes, such as quenching and tempering, to improve strength, hardness, and wear resistance.
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.
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Passivation or Chromate Conversion Coating:
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Powder Coating:
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Painting:
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Physical Vapor Deposition (PVD):
Design and Machining Considerations
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Process Selection:
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Design Considerations:
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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.










