Is nylon suitable for 3D printing?
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- Issue Time
- Dec 19,2024
The short answer
Yes: nylon is the leading engineering polymer for functional 3D printed parts. PA12 on SLS or MJF gives about 48 MPa tensile and heat deflection near 170 C with near-isotropic strength; PA6 on FDM reaches 70 MPa; carbon-filled grades reach 110 MPa. Its limits are moisture, ultraviolet light, cost and the anisotropy of filament printing.
Which nylon, for which process
Nylon is not one material. PA6, PA11 and PA12 behave differently, and the process changes the behaviour again. Powder-bed printing, meaning SLS and MJF, fuses unfilled PA12 into a part that is nearly isotropic because the polymer is not laid down in layers of melt. FDM printing extrudes a filament, so the part is strong in the print plane and weaker across the layer boundaries. That single difference decides more applications than the datasheet values do.
The properties that decide the application
These are the figures we check first when a customer asks whether nylon is suitable. They are typical published values for commercial powders and filaments, and every one of them shifts with grade, build orientation and moisture state.
| Property | PA12 (SLS / MJF) | PA6 (FDM) | PA11 (SLS) |
|---|---|---|---|
| Tensile strength | about 48 MPa | about 70 MPa | 40 - 48 MPa |
| Elongation at break | 15 - 25 percent | 2 - 4 percent filled | 30 - 200 percent |
| Heat deflection at 0.45 MPa | 170 - 175 C | 180 - 220 C | 90 - 100 C |
| Flexural modulus | about 1,700 MPa | 2,100 MPa | 800 - 1,200 MPa |
| Moisture absorption | 0.25 - 1.5 percent | about 1.8 percent | 1 - 2 percent |
| Anisotropy | about 1.1, near isotropic | 1.5 - 3.9, orientation matters | about 1.1 |
| Typical tolerance | plus or minus 0.3 mm or 0.2 percent | plus or minus 0.3 mm | plus or minus 0.3 mm |
| Indicative powder price | USD 23 - 40 / kg | USD 30 - 60 / kg filament | 20 - 40 percent above PA12 |
Heat resistance, in real numbers
Heat is where nylon earns its place in engineering work and also where the trade-offs are clearest. Unfilled PA12 holds its shape to roughly 170 to 175 C under light load, PA6 goes higher, and PA11 is the low-temperature member of the family at about 90 to 100 C. Carbon or glass filling raises stiffness dramatically but adds very little to heat resistance, which is a common misunderstanding: a carbon-filled grade chosen for heat will disappoint, while the same grade chosen for stiffness and creep resistance will not.
Moisture is the number one cause of bad parts
Every nylon absorbs water from the air, and the consequences run in both directions. Wet filament prints badly: the absorbed water boils at the nozzle, producing a foamed, rough surface, micro-voids in the extrusion path and visibly weaker layer bonds. Wet parts also behave differently in service. A saturated PA6-CF part retains roughly 47 percent of its dry tensile strength, while a saturated PA612-CF part retains about 90 percent. Toughness can move the other way, because absorbed water plasticises the matrix and can nearly triple the notched impact of a glass-filled grade. The lesson is that the honest question is not which nylon, it is which environment.
Humidity also moves dimensions. A PA12 part exposed to 50 percent relative humidity for a day may grow by 0.1 to 0.2 percent, while a PA11 part can swell up to 0.4 percent. On a 200 mm part that is most of a tolerance band, so if the drawing calls for a tight fit, either account for the swell in the model or specify a sealing coat.
Where nylon is the right answer
- Snap fits, clips and latches. Nylon bends instead of shattering, which is why it replaced ABS in most repeated-assembly features.
- Gears, sliders and wear surfaces. Unlubricated sliding contact suits nylon well, and carbon-filled grades add the stiffness and creep resistance a load-bearing housing needs.
- Ducts, manifolds and fluid routing. Nylon has good resistance to oils, fuels and many solvents, provided the service temperature stays inside the grade's limit.
- Brackets, drone arms and structural prototypes. The strength-to-weight ratio is the best available in polymer powder-bed printing, and MJF packs parts densely enough to make short production runs economic.
- Living hinges and fatigue parts. Use PA11 here rather than PA12: a documented switch from PA12 to PA11 for an integral hinge took a part from cracking at 50 to 100 cycles to surviving over 5,000.
Where nylon is the wrong answer
- Prolonged ultraviolet exposure. Unprotected nylon fades and embrittles outdoors. Use ASA or a UV-stable material instead, or accept a coating and a shorter service life.
- Continuous service above the grade limit. Above roughly 120 C, unfilled PA12 creeps under load. That is a design constraint, not a printing parameter.
- Strong acids and oxidising agents. Nylon resists fuels and oils, not everything.
- Precision bearing fits and sealing faces. Powder-bed as-cast tolerance is about plus or minus 0.3 mm. Plan a machined bore rather than specifying a tolerance the process cannot hold.
- Cosmetic surfaces and food contact. Powder-bed parts have a uniform matte grain, and printed porosity makes them unsuitable for repeated food contact without a compliant seal.
- Very thin cosmetic walls. MJF needs about 0.8 to 1.0 mm minimum wall, with 0.5 mm as the fine-detail limit and 1.0 mm minimum hole diameter to avoid powder entrapment.
Specifying nylon with us
If you send the model, the load case, the service temperature and the environment, we will tell you whether nylon is the right call and which grade, then return a price for powder-bed or filament production with the drying and annealing steps included rather than charged as extras. Where an as-cast feature cannot hold your tolerance we will say so at DFM review and quote the machining. See SLS nylon 3D printing, FDM 3D printing and SLM metal 3D printing if the temperature limit rules polymer out.
Scope and sources. Mechanical and thermal ranges were compiled in 2026 from an Nylon 12 versus Nylon 11 selection guide for SLS and MJF, a PA12 MJF material page with wall, hole and tolerance limits, a comparison of FDM nylon against SLS and MJF PA12 including moisture effects and a engineering guide to PA11 and PA12. Values come from technical data sheets measured on moulded specimens, so printed parts will differ, especially across layer boundaries on FDM. Moisture absorption, dimensional swell and impact response all depend on the service environment, so confirm them against your own application rather than a table.