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Properties and Overview of Stainless Steel 420

Overview:

Pressure Vessel Stainless Steel is a versatile and highly durable material known for its corrosion resistance, strength, and aesthetic appeal. It is an alloy primarily composed of iron, chromium, and varying amounts of nickel, carbon, and other elements. The defining feature of stainless steel is its ability to form a passive layer of chromium oxide on its surface, which protects it from rust and staining, even in harsh environments. This unique combination of properties makes it an indispensable material across numerous industries, from construction to healthcare.


Production:

The production of stainless steel begins with the selection of raw materials, including iron ore, chromium, and other alloying elements. These materials are melted together in an electric arc furnace, where the composition is carefully controlled to achieve the desired grade of stainless steel. The molten alloy is refined to remove impurities and enhance purity, often using argon oxygen decarburization. Once refined, the stainless steel is cast into slabs or billets, which are then hot-rolled or cold-rolled into sheets, plates, bars, or wires. Additional processes such as annealing, pickling, and polishing may be applied to improve mechanical properties, surface finish, or corrosion resistance.


Applications:

Stainless steel finds applications across many industries due to its strength, corrosion resistance, and versatility. It is used for structural components, cladding, and architectural details, where its durability and aesthetic qualities are prized. Due to its biocompatibility and resistance to sterilization processes, the medical field relies on stainless steel for surgical instruments, implants, and hospital equipment. In the food and beverage industry, it is the material of choice for processing equipment, storage tanks, and utensils because of its hygiene and non-reactivity. The automotive and aerospace sectors utilize stainless steel for exhaust systems, engine components, and structural parts, benefiting from its high-temperature resistance and mechanical strength. Additionally, it plays a critical role in energy production, including nuclear power plants and renewable energy systems, where it endures extreme conditions and maintains long-term reliability.
The significance of stainless steel extends beyond its functional attributes to its role in sustainability. It is fully recyclable without losing quality, making it an environmentally friendly material that aligns with circular economy principles. Furthermore, ongoing innovations in alloy design and manufacturing processes enhance the performance and cost-efficiency of stainless steel, broaden its range of applications, and address challenges such as improving its resistance to specific chemical environments.


Summary:

Stainless steel is a cornerstone of modern industry and infrastructure, offering unmatched durability, corrosion resistance, and versatility. Its ability to meet the demands of diverse applications while contributing to sustainability underscores its importance in a rapidly evolving world. As technology advances and industries prioritize efficiency and environmental responsibility, stainless steel will continue to play a vital role in shaping the future of materials and engineering.



See a comprehensive list of electrical, mechanical, physical and thermal properties for Stainless Steel 420 below:



Electrical Properties of Stainless Steel 420

Electrical Property (Units) Value
Stainless Steel 420 Dielectric Constant at 'Standard Temperature and Pressure' N/A
Stainless Steel 420 Electrical Breakdown Voltage at Atmospheric Pressure (kV/mm) N/A
Stainless Steel 420 Electrical Conductivity (S/m) 1.25E+06
Stainless Steel 420 Electrical Resistivity at Room Temperature (25°C) (Ω·m) 8.00E-07
Stainless Steel 420 Magnetic Property Magnetic
Stainless Steel 420 Superconducting Transition Temperature (K) Unknown
Stainless Steel 420 Temperature Coefficient of Resistance (°C⁻¹) ~0.00094

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Mechanical Properties of Stainless Steel 420

Mechanical Property (Units) Value
Stainless Steel 420 Compressive Strength (MPa) 1700 - 1900
Stainless Steel 420 Ductile to Brittle Transition Temperature (°C) -50 to 0
Stainless Steel 420 Fatigue Limit (MPa) 240
Stainless Steel 420 Fracture Toughness (MPa·√m) 35
Stainless Steel 420 Hardness Brinell 190 to 500
Stainless Steel 420 Hardness Rockwell 50 to 55 HRC
Stainless Steel 420 Hardness Vickers 200 to 520
Stainless Steel 420 Heat Deflection Temperature (°C) N/A - Not a Polymer
Stainless Steel 420 Modulus of Elasticity / Young's Modulus (GPa) 200
Stainless Steel 420 Percent Elongation (%) 15 to 20
Stainless Steel 420 Poissons Ratio 0.28
Stainless Steel 420 Shear Modulus (GPa) 77
Stainless Steel 420 Shear Strength (MPa) 240
Stainless Steel 420 Ultimate Tensile Strength (MPa) 700 to 800
Stainless Steel 420 Yield Strength (MPa) 520 to 620

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Physical Properties of Stainless Steel 420

Physical Property (Units) Value
Stainless Steel 420 Boiling Point at Atmospheric Pressure (°C) Unknown
Stainless Steel 420 Chemical Composition (Element %) C ≥ 0.15%, Mn ≤ 1.00%, P ≤ 0.040%, S ≤ 0.030%, Si ≤ 1.00%, Cr 12.0-14.0%
Stainless Steel 420 Cost ($/kg) 4 to 8
Stainless Steel 420 Density at 'Standard Temperature and Pressure' (kg/m3) 7750
Stainless Steel 420 Glass Transition Temperature at Atmospheric Pressure (°C) N/A - Not a Polymer
Stainless Steel 420 Melting Point at Atmospheric Pressure (°C) 1450 to 1510
Stainless Steel 420 Polymer Family N/A - Not a Polymer
Stainless Steel 420 Refractive Index Unknown
Stainless Steel 420 Specific Gravity 7.75
Stainless Steel 420 Viscosity at Melting Point (mPa·s) 5 to 8

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Thermal Properties of Stainless Steel 420

Thermal Property (Units) Value
Stainless Steel 420 Coefficient of Thermal Expansion (µm/m·K) 10.3 to 10.6
Stainless Steel 420 Emissivity Coefficient 0.40 to 0.45
Stainless Steel 420 Specific Heat Capacity (J/kg·K) 460
Stainless Steel 420 Thermal Conductivity (W/m.K) 24
Stainless Steel 420 Thermal Conductivity (BTU/h·ft·°F) 13.88

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