Materials / Compare

Aluminum 5052-H32 vs. DMLS Ti-6Al-4V ELI Titanium

Compare Aluminum 5052-H32 vs. DMLS Ti-6Al-4V ELI Titanium strength, stiffness, weight and thermal properties.

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Aluminum 5052-H32Wrought
DMLS Ti-6Al-4V ELI Titanium3D printed metal (DMLS)
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Mechanical
Yield strength195MPasourcetypical, 0.2% offset1,100MPasourcetypical, as built, average of horizontal + vertical (M400)
Ultimate tensile strength230MPasourcetypical1,270MPasourcetypical, as built, average of horizontal + vertical (M400)
Elongation at break12%sourcetypical8.7%sourcetypical at break, as built (M400)
Young's modulus (stiffness)70GPasourcetypical110GPasourcesame maker and process, sibling grade: EOS Titanium Ti64 (Grade 5) on EOS M 290, as built, XY and Z, typical
Density2,685kg/m³sourcenominal4,400kg/m³sourcetypical part density (ISO 3369), M400
Strength to weight72.6kN·m/kg250kN·m/kg3.44x higher
Stiffness to weight26.1MN·m/kg4% higher25MN·m/kg
Poisson's ratio0.33sourcetypical (handbook physical constant)0.342sourcewrought TIMETAL 6-4 (TIMET measurement, mean of 10); composition-level, not DMLS-measured
Shear modulus26.3GPa41GPa1.56x stiffer in shear
Bulk modulus68.6GPa116GPa
Speed of sound5,106m/s5,000m/s
Thermal
Thermal conductivity138W/m·Ksourcebase material: 5052 in O temper (same alloy, annealed); Kaiser typical6.6W/m·Ksourcebase material: wrought Ti-6Al-4V / 6-4 ELI (TIMET datasheet), 20 °C
Thermal expansion23.8µm/m·Ksourcetypical, mean 20-100 °C9µm/m·Ksourcemean 25-100 °C, ASTM E228; EOS Ti64 Grade 23 (=ELI) on EOS M 290 40 µm; condition not stated (sheet's mechanical data are heat treated)
100 mm part over a 50 °C swing119µm growth45µm growth2.64x less
Specific heat963J/kg·Ksourceat 100 °C (212 °F); table covers O, H32, H34, H36, H38580J/kg·Ksourcebase material: wrought Ti-6Al-4V / 6-4 ELI (TIMET datasheet), 20 °C
Heats up and cools (diffusivity)53.4mm²/s20.6x faster2.59mm²/s
Thermal shock resistance10,822W/m2.24x more resistant4,825W/m
Melting point605–650°Csourcemelting range1,630–1,650°Csourcemelting range, wrought TIMETAL 6-4 (composition-level)
Values for5052-H32, Kaiser Aluminum tube & pipe typical datasheet (mechanical, CTE, melting); MIL-HDBK-5J (Poisson, density, specific heat)EOS Titanium Ti64ELI (powder 9011-0040; ASTM F136/F3001, i.e. Grade 23) on EOS M400 SF, parameter set Ti64ELI_030_FlexM400_100, 30 µm, as built; ISO 6892-1 A14

Every value links to the document that states it. "Not sourced" means no citable source states it (or only a specification minimum); figures computed from it are left out too.

DMLS Ti-6Al-4V ELI Titanium is 3D printed: its properties depend on build direction and print settings; these are typical values.

Questions

Is Aluminum 5052-H32 stronger than DMLS Ti-6Al-4V ELI Titanium?

DMLS Ti-6Al-4V ELI Titanium is stronger: its yield strength is 1,100 MPa against 195 MPa for Aluminum 5052-H32 (5.64x).

Which is lighter, Aluminum 5052-H32 or DMLS Ti-6Al-4V ELI Titanium?

Aluminum 5052-H32 is lighter: 2,685 kg/m³ against 4,400 kg/m³ for DMLS Ti-6Al-4V ELI Titanium.

Which is stiffer, Aluminum 5052-H32 or DMLS Ti-6Al-4V ELI Titanium?

DMLS Ti-6Al-4V ELI Titanium is stiffer: Young's modulus 110 GPa against 70 GPa for Aluminum 5052-H32, so the same part in DMLS Ti-6Al-4V ELI Titanium deflects less under the same load.

Which is lighter for the same job, Aluminum 5052-H32 or DMLS Ti-6Al-4V ELI Titanium?

For the same stiffness or strength: Aluminum 5052-H32 is lighter for a stiff rod or tie (tension), stiff beam (bending), stiff panel or plate; DMLS Ti-6Al-4V ELI Titanium is lighter for a strong rod or tie, strong beam, strong panel or plate.

Part that must beAluminum 5052-H32DMLS Ti-6Al-4V ELI Titanium
Stiff rod or tie (tension)lighter4% heavier
Stiff beam (bending)lighter31% heavier
Stiff panel or platelighter41% heavier
Strong rod or tie3.44x heavierlighter
Strong beam1.93x heavierlighter
Strong panel or plate45% heavierlighter

For the same stiffness or strength, mass scales with density over stiffness (or strength) raised to a power set by how the part is loaded: 1 for a rod in tension, 1/2 for a beam in bending, 1/3 for a panel (the standard material-selection indices).

Which conducts heat better, Aluminum 5052-H32 or DMLS Ti-6Al-4V ELI Titanium?

Aluminum 5052-H32 conducts heat better: 138 W/m·K against 6.6 W/m·K for DMLS Ti-6Al-4V ELI Titanium.

Which expands less with temperature?

DMLS Ti-6Al-4V ELI Titanium expands less: 9 µm/m·K against 23.8 µm/m·K for Aluminum 5052-H32.

Among 59 materials

1k10k0.1110100Density (kg/m³)Young's modulus (GPa)Plastic PLAPlastic PETGPlastic ABSPlastic TPUPlastic NylonAluminumSteelIronTitaniumSteel AISI 1018Stainless 304Stainless 316Aluminum 6061-T6Aluminum 7075-T6Brass C360Copper C110GlassSteel AISI 1045Steel AISI 4340Steel A992Stainless 303Stainless 17-4PHAluminum 2024-T351Aluminum 7050-T7451Titanium Ti-6Al-4VBrass C260Nickel Inconel 718Magnesium AZ31B-H24Zinc Zamak 3Plastic ABS (bulk/injection)Plastic PolycarbonatePlastic POM/AcetalPlastic Nylon PA6Plastic Nylon PA66Plastic PEEKPlastic UHMWPEPlastic HDPEPlastic PolypropylenePlastic PMMAFDM ASAFDM PolycarbonateFDM PAHT-CFFDM HIPSSLA Resin Tough 2000SLS PA12 NylonDMLS AlSi10Mg AluminumDMLS 316L Stainless SteelDMLS 17-4PH Stainless SteelAluminum 5052-H32DMLS Ti-6Al-4V ELI Titanium
Stiffness against density
1k10k101001kDensity (kg/m³)Yield strength (MPa)Plastic PLAPlastic PETGPlastic ABSPlastic TPUPlastic NylonRubberAluminumSteelIronTitaniumSteel AISI 1018Stainless 304Stainless 316Aluminum 6061-T6Aluminum 7075-T6Brass C360Copper C110GlassSteel AISI 1045Steel AISI 4340Steel A992Stainless 303Stainless 17-4PHAluminum 2024-T351Aluminum 7050-T7451Titanium Ti-6Al-4VBrass C260Nickel Inconel 718Magnesium AZ31B-H24Zinc Zamak 3Plastic ABS (bulk/injection)Plastic PolycarbonatePlastic POM/AcetalPlastic Nylon PA6Plastic Nylon PA66Plastic PEEKPlastic PTFEPlastic UHMWPEPlastic HDPEPlastic PolypropylenePlastic PMMAFDM ASAFDM PolycarbonateFDM PAHT-CFFDM HIPSSLA Resin Tough 2000SLA Resin Elastic 50ASLS PA12 NylonDMLS AlSi10Mg AluminumDMLS 316L Stainless SteelDMLS 17-4PH Stainless SteelBrickAluminum 5052-H32DMLS Ti-6Al-4V ELI Titanium
Strength against density

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