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Properties and Overview of Nickel Alloy hastelloy B

Overview:

Turbine Blades Nickel Alloy are celebrated for their exceptional strength, corrosion resistance, and thermal stability, making them indispensable in demanding environments. Composed primarily of nickel with varying amounts of elements such as chromium, iron, cobalt, and molybdenum, these alloys are engineered to perform under extreme conditions, including high temperatures and corrosive environments. Their versatility and reliability have made them vital across aerospace, energy, and chemical processing industries.


Production:

The production of nickel alloys begins with the extraction and refining of nickel from ore, followed by blending it with other alloying elements to achieve the desired properties. Advanced melting processes, including vacuum induction melting and electro-slag remelting, are employed to ensure high purity and uniformity in the alloy's composition. The molten material is then cast into ingots or billets, which undergo secondary processes like forging, rolling, or extrusion to create sheets, rods, or tubes. Heat treatments such as annealing or solution treatment refine the microstructure, enhancing mechanical properties and resistance to environmental stressors.


Applications:

Nickel alloys are widely used in applications that demand durability and performance in harsh conditions. In the aerospace industry, they are critical for components like turbine blades, engine casings, and exhaust systems, where their ability to withstand extreme heat and stress ensures safety and efficiency. In the energy sector, nickel alloys are essential for gas turbines, nuclear reactors, and renewable energy systems, where they resist oxidation and maintain stability under fluctuating temperatures. The chemical processing industry relies on these alloys for equipment such as heat exchangers, reactors, and piping systems that handle corrosive substances. Additionally, nickel alloys are used in medical devices, electronics, and marine engineering, where their biocompatibility, conductivity, and resistance to seawater corrosion are highly valued.
As industries evolve, developing advanced nickel alloys continues to address emerging challenges. Innovations in alloy formulation enhance properties like fatigue resistance, machinability, and performance in extreme environments, broadening their application scope. Moreover, nickel alloys are pivotal in sustainability initiatives, particularly in energy-efficient systems and renewable technologies. Their recyclability further contributes to their environmental appeal, as reclaimed nickel alloys can be reused without significantly losing quality.


Summary:

Nickel alloys are a cornerstone of modern engineering, offering unmatched performance in some of the world's most challenging environments. Their unique combination of strength, corrosion resistance, and thermal stability has established them as essential materials across various industries. As advancements in material science and sustainable practices continue, nickel alloys will remain a critical driver of innovation, enabling progress in traditional and cutting-edge applications.



See a comprehensive list of electrical, mechanical, physical and thermal properties for Nickel Alloy hastelloy B below:



Electrical Properties of Nickel Alloy hastelloy B

Electrical Property (Units) Value
Nickel Alloy hastelloy B Dielectric Constant at 'Standard Temperature and Pressure' N/A
Nickel Alloy hastelloy B Electrical Breakdown Voltage at Atmospheric Pressure (kV/mm) N/A
Nickel Alloy hastelloy B Electrical Conductivity (S/m) 6.00E+06
Nickel Alloy hastelloy B Electrical Resistivity at Room Temperature (25°C) (Ω·m) 1.67E-07
Nickel Alloy hastelloy B Magnetic Property Magnetic
Nickel Alloy hastelloy B Superconducting Transition Temperature (K) Unknown
Nickel Alloy hastelloy B Temperature Coefficient of Resistance (°C⁻¹) ~0.001

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Mechanical Properties of Nickel Alloy hastelloy B

Mechanical Property (Units) Value
Nickel Alloy hastelloy B Compressive Strength (MPa) ~800
Nickel Alloy hastelloy B Ductile to Brittle Transition Temperature (°C) ~0 to -40
Nickel Alloy hastelloy B Fatigue Limit (MPa) 180 to 230
Nickel Alloy hastelloy B Fracture Toughness (MPa·√m) ~60 to 100
Nickel Alloy hastelloy B Hardness Brinell 150 to 180
Nickel Alloy hastelloy B Hardness Rockwell 80 to 90 HRB
Nickel Alloy hastelloy B Hardness Vickers 160 to 190
Nickel Alloy hastelloy B Heat Deflection Temperature (°C) N/A - Not a Polymer
Nickel Alloy hastelloy B Modulus of Elasticity / Young's Modulus (GPa) 210
Nickel Alloy hastelloy B Percent Elongation (%) 20 to 25
Nickel Alloy hastelloy B Poissons Ratio 0.30
Nickel Alloy hastelloy B Shear Modulus (GPa) 80
Nickel Alloy hastelloy B Shear Strength (MPa) 250 to 290
Nickel Alloy hastelloy B Ultimate Tensile Strength (MPa) 470 to 630
Nickel Alloy hastelloy B Yield Strength (MPa) 355

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Physical Properties of Nickel Alloy hastelloy B

Physical Property (Units) Value
Nickel Alloy hastelloy B Boiling Point at Atmospheric Pressure (°C) Unknown
Nickel Alloy hastelloy B Chemical Composition (Element %) C ≤ 0.23%, Mn ≤ 1.60%, Si ≤ 0.60%, P ≤ 0.050%, S ≤ 0.050%, Fe balance
Nickel Alloy hastelloy B Cost ($/kg) 0.7 to 1.2
Nickel Alloy hastelloy B Density at 'Standard Temperature and Pressure' (kg/m3) 7850
Nickel Alloy hastelloy B Glass Transition Temperature at Atmospheric Pressure (°C) N/A - Not a Polymer
Nickel Alloy hastelloy B Melting Point at Atmospheric Pressure (°C) 1400 to 1450
Nickel Alloy hastelloy B Polymer Family N/A - Not a Polymer
Nickel Alloy hastelloy B Refractive Index Unknown
Nickel Alloy hastelloy B Specific Gravity 7.85
Nickel Alloy hastelloy B Viscosity at Melting Point (mPa·s) 4 to 7

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Thermal Properties of Nickel Alloy hastelloy B

Thermal Property (Units) Value
Nickel Alloy hastelloy B Coefficient of Thermal Expansion (µm/m·K) 11.7
Nickel Alloy hastelloy B Emissivity Coefficient 0.35 to 0.40
Nickel Alloy hastelloy B Specific Heat Capacity (J/kg·K) 475
Nickel Alloy hastelloy B Thermal Conductivity (W/m.K) 51
Nickel Alloy hastelloy B Thermal Conductivity (BTU/h·ft·°F) 29.49

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