Materials / Compare

FDM PAHT-CF vs. Plastic POM/Acetal

Compare FDM PAHT-CF vs. Plastic POM/Acetal strength, stiffness, weight and thermal properties.

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FDM PAHT-CF3D printed (FDM)
Plastic POM/AcetalBulk polymer (molded or machined)
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Mechanical
Yield strengthnot given (tensile used)69MPasourcetypical (single ASTM D638 tensile strength)
Ultimate tensile strength92MPasourcetypical33% stronger69MPasourcetypical
Compressive strengthnot sourced124MPasourcecompressive stress at 10% deformation
Flexural strength125MPasourcetypical99MPasourceflexural yield strength, typical
Elongation at break8.4%sourcetypical75%sourcetypical8.93x more ductile
Young's modulus (stiffness)3.86GPasourcetypical38% stiffer2.8GPasourcetypical
Density1,060kg/m³sourcetypical1,420kg/m³sourcetypical (DuPont product information for Delrin 100 NC010; 'The data listed here fall within the normal range of product properties')
Strength to weight86.8kN·m/kg1.79x higher48.6kN·m/kg
Stiffness to weight3.64MN·m/kg1.85x higher1.97MN·m/kg
Poisson's rationot sourced0.35sourcetypical
Shear modulusnot sourced1.04GPa
Bulk modulusnot sourced3.11GPa
Speed of sound1,908m/s1,404m/s
Thermal
Thermal conductivitynot sourced0.4W/m·Ksourcetypical
Thermal expansionnot sourced122µm/m·Ksourcemean, 29 to 60 °C
100 mm part over a 50 °C swingnot sourced610µm growth
Specific heatnot sourced1,465J/kg·Ksourceaverage -18 to 100 °C, Delrin acetal resins (not grade-specific)
Heats up and cools (diffusivity)not sourced0.192mm²/s
Thermal shock resistancenot sourced52.5W/m
Melting point225°Csourcetypical175°Csourcecrystalline melting point
Glass transition70°Csourcetypicalnot sourced
Max service temperature170°CsourceHDT 1.8 MPa125°CsourceHDT 1.8 MPa (annealed)
Values forBambu Lab PAHT-CF, TDS V3.0, printed specimens X-Y, dry state; nozzle 290 °C, bed 100 °C, 100 mm/s, 100% infill; annealed and dried 80 °C for 12 h before testing.DuPont Delrin 100 acetal homopolymer, Table 2 'Typical Properties of Delrin Acetal Resins' (ASTM methods), Delrin Design Guide Module III hosted on delrin.com

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.

FDM PAHT-CF is 3D printed: its properties depend on build direction and print settings; these are typical values.

Questions

Is FDM PAHT-CF stronger than Plastic POM/Acetal?

FDM PAHT-CF is stronger: its tensile strength is 92 MPa against yield strength 69 MPa for Plastic POM/Acetal (33%).

Which is lighter, FDM PAHT-CF or Plastic POM/Acetal?

FDM PAHT-CF is lighter: 1,060 kg/m³ against 1,420 kg/m³ for Plastic POM/Acetal.

Which is stiffer, FDM PAHT-CF or Plastic POM/Acetal?

FDM PAHT-CF is stiffer: Young's modulus 3.86 GPa against 2.8 GPa for Plastic POM/Acetal, so the same part in FDM PAHT-CF deflects less under the same load.

Which is lighter for the same job, FDM PAHT-CF or Plastic POM/Acetal?

For the same stiffness or strength: FDM PAHT-CF is lighter for a stiff rod or tie (tension), stiff beam (bending), stiff panel or plate, strong rod or tie, strong beam, strong panel or plate.

Part that must beFDM PAHT-CFPlastic POM/Acetal
Stiff rod or tie (tension)lighter1.85x heavier
Stiff beam (bending)lighter1.57x heavier
Stiff panel or platelighter49% heavier
Strong rod or tielighter1.79x heavier
Strong beamlighter1.62x heavier
Strong panel or platelighter1.55x heavier

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 is more ductile, FDM PAHT-CF or Plastic POM/Acetal?

Plastic POM/Acetal stretches further before it breaks: 75% elongation at break against 8.4% for FDM PAHT-CF.

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 5052-H32Aluminum 7050-T7451Titanium Ti-6Al-4VBrass C260Nickel Inconel 718Magnesium AZ31B-H24Zinc Zamak 3Plastic ABS (bulk/injection)Plastic PolycarbonatePlastic Nylon PA6Plastic Nylon PA66Plastic PEEKPlastic UHMWPEPlastic HDPEPlastic PolypropylenePlastic PMMAFDM ASAFDM PolycarbonateFDM HIPSSLA Resin Tough 2000SLS PA12 NylonDMLS AlSi10Mg AluminumDMLS Ti-6Al-4V ELI TitaniumDMLS 316L Stainless SteelDMLS 17-4PH Stainless SteelFDM PAHT-CFPlastic POM/Acetal
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 5052-H32Aluminum 7050-T7451Titanium Ti-6Al-4VBrass C260Nickel Inconel 718Magnesium AZ31B-H24Zinc Zamak 3Plastic ABS (bulk/injection)Plastic PolycarbonatePlastic Nylon PA6Plastic Nylon PA66Plastic PEEKPlastic PTFEPlastic UHMWPEPlastic HDPEPlastic PolypropylenePlastic PMMAFDM ASAFDM PolycarbonateFDM HIPSSLA Resin Tough 2000SLA Resin Elastic 50ASLS PA12 NylonDMLS AlSi10Mg AluminumDMLS Ti-6Al-4V ELI TitaniumDMLS 316L Stainless SteelDMLS 17-4PH Stainless SteelBrickFDM PAHT-CFPlastic POM/Acetal
Strength against density

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