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Home / Chemicals & Minerals / Minerals & Metallurgy / AlSi10Mg

AlSi10Mg

US: AlSi10Mg
UK: AK9
EUR: EN AC-AlSi10Mg(A)
GER: G-AlSi10Mg
JPN: ADC3

Category: Minerals & Metallurgy
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Description

Overview Of AlSi10Mg

AlSi10Mg powder is a high-performance alloy for 3D printing, combining aluminum, silicon, and magnesium. Its fine particles ensure smooth flow and compatibility with SLM/EBM systems, enabling precise parts with high strength, durability, and corrosion resistance. Ideal for aerospace, automotive, and medical applications.

Powder Chemical Composition(wt,-%)

Grade

Mg

Si

Fe

Mn

Ti

AISi10Mg

0.2-0.45

9.0-11.0

≤0.55

≤0.45

≤0.15

Zn

Cu

Ni

Pb

O

Al

≤0.10

≤0.05

≤0.05

≤0.05

≤0.06

Bal

Physical Properties

 Grade

 Size

Particle size distribution

 Bulk density

Tap density

D10(μm)

D50(μm)

D90(μm)

AISi10Mg

15-53μm

≥15

32-40

≤62

≥1.2g/cm³

≥1.55g/cm³

Mechanical Properties 

Grade

Tensile strength

(Ob/Mpa)

Yield strength

(Opo.2/Mpa)

Elongation at break(δ5/%)

AISi10Mg

≥360

≥240

≥8

Heat Treatment Recommendation 

Grade

Recommended HT solution

AISi10Mg

SR HT:260-300C/2-4H

Note: Properties depend on precise composition, manufacturing method, build orientation, heat treatment etc. Values shown are typical or standard.

AlSi10Mg powder is an aluminum-based alloy optimized for powder bed fusion (PBF) processes, containing silicon and magnesium to enhance material performance. With fine particle size and superior flowability, it ensures consistent layer deposition in SLM/EBM systems. The composition enables balanced mechanical properties (yield strength, ductility) and age-hardening via precipitation strengthening, while silicon-rich surface oxides boost corrosion resistance. Ideal for lightweight, high-integrity parts in aerospace, automotive, and biomedical applications, this powder leverages tailored properties for efficient additive manufacturing.

Primary Applications

AlSi10Mg powder, renowned for its lightweight composition, exceptional mechanical strength, and compatibility with additive manufacturing technologies, has emerged as a cornerstone material across diverse industries. Its versatile properties position it as a preferred choice for fabricating high-performance components. Key application domains include:

● Aerospace Engineering

Enabling the production of lightweight yet robust turbine blades, combustion chamber liners, rocket engine components, satellite structural elements, and unmanned aerial vehicle (UAV) frames through directed energy deposition (DED) and powder bed fusion (PBF) techniques.

● Automotive Innovation

Facilitating the development of optimized powertrain assemblies, high-temperature-resistant pistons, turbocharger housings, heat exchange modules, and integrated exhaust systems, leveraging AlSi10Mg's thermal stability and fatigue resistance.

● Industrial Tooling & Robotics

Empowering the fabrication of precision molds, custom jigs/fixtures, dynamic drive shafts, and end-effectors for robotic arms, harnessing the alloy's dimensional stability and wear-resistant attributes.

Biomedical Advancements: Supporting patient-specific orthopedic implants, prosthetic devices, minimally invasive surgical tools, and cranial implants, exploiting its biocompatibility, corrosion resistance, and radiopacity for medical imaging integration.

● Advanced Thermal Management

Driving the design of efficient heat dissipation systems, hydraulic control manifolds, electronic enclosures, and conformal cooling channels, exploiting the material's balanced thermal conductivity and manufacturability.

This alloy's synergistic blend of properties, combined with its adaptability across selective laser melting (SLM), electron beam melting (EBM), and binder jetting processes, underscores its pivotal role in shaping next-generation, functionally optimized components

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