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DP2784 Inconel 625 Powder (Alloy 625, UNS N06625)

Catalog No.DP2784
AppearanceGray metallic powder
GradeAlloy Grade: Inconel 625 Related Grades: Nickel Alloy IN625

TFM offers high-quality Inconel 625 Powder (Alloy 625, UNS N06625), specifically designed for 3D printing applications. As the field of additive manufacturing continues to evolve, we are committed to expanding and enhancing our range of additive manufacturing powders to meet the industry’s growing demands.

Introduction

Inconel 625 Powder (Alloy 625, UNS N06625) is a high-performance nickel-based superalloy powder engineered for exceptional corrosion resistance, high strength, and outstanding performance at elevated temperatures. Strengthened primarily by solid-solution hardening from niobium and molybdenum additions, Alloy 625 maintains mechanical integrity in aggressive chemical and high-temperature environments.

In powder form, Inconel 625 is widely used in additive manufacturing (AM), hot isostatic pressing (HIP), metal injection molding (MIM), and thermal spray processes. Its combination of strength, weldability, and corrosion resistance makes it a preferred material in aerospace, marine, oil & gas, and power generation industries.

Detailed Description

Alloy 625 (UNS N06625) is composed primarily of nickel with significant additions of chromium, molybdenum, and niobium. These alloying elements provide a balance of oxidation resistance, pitting resistance, and mechanical strength without requiring precipitation hardening heat treatments.

Typical nominal composition (wt%):

  • Ni: Balance

  • Cr: ~20–23%

  • Mo: ~8–10%

  • Nb + Ta: ~3–4%

  • Fe: ≤5%

  • Minor elements: Mn, Si, C (controlled levels)

Spherical Inconel 625 Powder is typically produced through gas atomization, resulting in:

  • High sphericity for excellent flowability

  • Controlled particle size distribution (PSD)

  • Low oxygen and impurity levels

  • Uniform microstructure

These characteristics are critical for laser powder bed fusion (LPBF), directed energy deposition (DED), and cold or plasma spray systems. The alloy’s resistance to chloride-induced stress corrosion cracking and crevice corrosion makes it especially valuable in offshore and marine applications.

Inconel 625 also demonstrates excellent fatigue strength and creep resistance at temperatures up to approximately 800–900°C, depending on service conditions.

Applications

Inconel 625 Powder is widely used in:

  • Aerospace engine components

  • Exhaust systems and high-temperature ducting

  • Oil & gas downhole tools and valves

  • Marine hardware exposed to seawater

  • Additive manufacturing of complex structural parts

  • Chemical processing equipment

  • Thermal spray corrosion-resistant coatings

Its weldability and structural stability under cyclic loading make it particularly suitable for critical structural components.

Technical Parameters

ParameterTypical Value / RangeImportance
StandardUNS N06625Identifies alloy specification
Purity / ChemistryControlled per ASTM/AMS specsEnsures corrosion & mechanical performance
Particle Size15–45 µm / 45–106 µm (custom)Matches AM or spray applications
MorphologySpherical (gas atomized)Improves flowability and packing density
Apparent Density~4.0–5.0 g/cm³ (varies by PSD)Influences build consistency
Melting Range~1290–1350°CDefines processing parameters

Custom PSD ranges and material test reports (MTR) are available upon request.

Comparison with Related Nickel-Based Alloys

MaterialKey AdvantageTypical Application
Inconel 625Excellent corrosion resistance & weldabilityOil & gas, marine, aerospace
Inconel 718Precipitation-hardened high strengthTurbine disks & structural parts
Hastelloy C276Superior chemical resistanceChemical processing
Alloy 600Good oxidation resistanceFurnace components

Compared to Inconel 718, Alloy 625 offers better corrosion resistance and does not require complex heat treatment for strengthening, making it attractive for additive manufacturing workflows.

FAQ

QuestionAnswer
Is Inconel 625 Powder suitable for LPBF?Yes, spherical gas-atomized powder is compatible with LPBF systems.
Does it require heat treatment after printing?It can be used in the as-built condition, though stress relief may be applied depending on application.
Is it resistant to seawater corrosion?Yes, it offers strong resistance to pitting and crevice corrosion in marine environments.
Can PSD be customized?Yes, particle size distribution can be tailored to your process requirements.
Are certifications available?Yes, chemical composition reports and batch traceability documentation are provided.

Packaging

Our Inconel 625 Powder (Alloy 625, UNS N06625) are meticulously tagged and labeled externally to ensure efficient identification and maintain high standards of quality control. We take great care to prevent any potential damage during storage and transportation, ensuring the powder arrives in perfect condition.

Conclusion

Inconel 625 Powder (Alloy 625, UNS N06625) delivers exceptional corrosion resistance, structural stability, and high-temperature strength for demanding industrial applications. With spherical morphology, controlled chemistry, and customizable particle size distribution, it supports advanced additive manufacturing and coating technologies across aerospace, marine, and energy sectors.

For detailed specifications and a quotation, please contact us at sales@thinfilmmaterials.com.

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FAQ

  • Metal powders are fine particles of metals produced through various processes such as atomization, reduction, or electrolysis. They are used in applications like additive manufacturing, powder metallurgy, and coatings.

  • Alloy powders consist of two or more metallic elements combined to enhance properties like strength, corrosion resistance, and ductility, whereas pure metal powders contain only a single element.

  • The shape affects flowability, packing density, and spreadability. Spherical particles are preferred in additive manufacturing due to their superior flow characteristics.

  • Spherical powders are typically produced using gas atomization, where molten metal is atomized into fine droplets that solidify into spherical shapes.

  • Spherical powders offer better flowability and packing density, leading to improved layer uniformity and mechanical properties in 3D-printed components.

  • Factors include particle size distribution, shape, chemical composition, purity, and production method.

  • Yes, metal powders can pose hazards such as toxicity, reactivity, combustibility, and instability. Proper handling, storage, and safety protocols are essential.

  • In powder metallurgy, metal powders are compacted and sintered to produce components with complex shapes and tailored properties, often with minimal waste.

  • Yes, unused or excess metal powders from manufacturing processes can often be collected, sieved, and reused, provided they meet quality standards.

  • The combination of different metals in alloy powders can enhance properties such as strength, hardness, corrosion resistance, and thermal stability, depending on the application requirements.

  • Spherical alloy powders are used in aerospace, automotive, medical implants, and tooling industries for manufacturing high-performance components via additive manufacturing and powder metallurgy.

Production methods like gas atomization, water atomization, and mechanical milling influence particle size, shape, and purity, which in turn affect the performance of the powders in various applications.

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