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NODEFAB · MATERIALS

FDM Materials Guide: From PLA to Nylon

13 min read

This article is available in English only.

Material Choice Is Half the Engineering Decision

Choosing the wrong filament for an FDM print is not just a quality problem — it's a cost problem. The wrong material choice leads to failed prints, expensive reprints, and parts that fail in service.

But material selection is more nuanced than most guides suggest. "PLA for prototypes, ABS for functional parts" is an oversimplification that causes engineers and product designers to either over-engineer (using expensive, difficult-to-print Nylon when PETG would do) or under-engineer (using PLA for parts that will see elevated temperatures).

This guide goes beyond surface-level recommendations to give you the engineering data you need to make material selection a deliberate, informed decision.


The Core Materials: An Engineering Comparison

┌────────┬────────┬────────┬────────┬────────┬────────┬────────┐
│Property│  PLA   │  PETG  │  ABS   │  ASA   │  TPU   │ Nylon  │
├────────┼────────┼────────┼────────┼────────┼────────┼────────┤
│ HDT (°C)│  52   │  70   │  95   │ 95-98  │  80   │  80   │
│UTS (MPa)│ 50-60 │ 45-50 │ 40-50 │ 44-50  │ 25-50 │ 45-75 │
│Elong.(%)│  6-8  │ 200+  │  5-6  │  5-7   │ 300+  │ 30-80 │
│Notch IMP│  Low  │  Med  │  Med  │  Med   │  High │  High │
│UV resist│  Poor │  Good │  Poor │Excellent│  Med  │  Poor │
│Chemical  │  Fair │  Good │  Good │  Good  │  Good │ Excel │
│Printabil.│ Easy │  Easy │  Med  │  Med   │ Hard  │  Hard │
│ Cost/kg  │ Low  │  Low  │  Low  │  Med   │  Med  │  High │
└────────┴────────┴────────┴────────┴────────┴────────┴────────┘

HDT = Heat Deflection Temperature under 0.45 MPa load. UTS = Ultimate Tensile Strength. Elong. = Elongation at break. Impact = Notched Izod impact resistance.


PLA: More Capable Than Its Reputation

PLA (Polylactic Acid) is biopolymer-based (derived from corn starch), which gives it two properties that make it the dominant prototyping filament: low warping and low nozzle temperature (190-220°C). No heated chamber required.

Where PLA excels:

Where PLA fails:

PLA variants worth knowing:

PLA+/PLA Pro: Modified PLA with ~30% better impact resistance and slightly higher HDT. Still easy to print. The "upgrade" most engineers should choose over standard PLA.

High-Speed PLA: Formulated for 200+ mm/s printing speeds. Useful when throughput matters but quality demands are moderate.

PLA CF (Carbon Fiber): Short carbon fiber fill increases stiffness by ~25% and reduces weight. However, this is milled carbon fiber — it reinforces isotropically (all directions). True continuous fiber reinforcement requires different processes.


PETG: The Underrated Workhorse

PETG (Polyethylene Terephthalate Glycol) deserves more respect. It combines near-PLA printability with significantly better mechanical and chemical properties:

PETG advantages over PLA:
• HDT of 70°C (vs 52°C) → survives most indoor environments
• Elongation 200%+ → tough, not brittle
• Chemical resistance to many oils, solvents
• Food-safe grades available (with stainless nozzle)
• Layer adhesion typically better than PLA

PETG disadvantages vs PLA:
• Stringy (needs careful retraction tuning)
• Slightly lower stiffness
• Hygroscopic → must store sealed
• Difficult to post-process (doesn't sand as cleanly)

For functional parts, PETG is often the best cost-performance balance: it costs somewhat more than PLA but is significantly more capable.


ABS: The Classic Industrial Plastic

ABS (Acrylonitrile Butadiene Styrene) is the material that launched desktop 3D printing — and then was largely abandoned by hobbyists because of its printing challenges. For industrial use, these challenges are manageable.

ABS printing requirements:

ABS advantages:

When to use ABS: When you need acetone smoothing for surface finish, when you need proven impact resistance, or when part design is already validated for ABS from a legacy system.


ASA: The Outdoor-Optimized ABS Alternative

ASA (Acrylonitrile Styrene Acrylate) is engineered to fix ABS's biggest weakness: UV degradation. The acrylate component provides significantly better UV resistance.

ASA vs ABS direct comparison:

PropertyABSASA
UV resistancePoor (yellows, embrittles)Excellent (10+ year outdoor stability)
HDT95°C95-98°C
WarpingSevereModerate (still needs enclosure)
Chemical resistanceGoodGood
CostLower20-30% higher

ASA use cases: Outdoor electrical enclosures, automotive exterior trim prototypes, garden equipment, any application with UV exposure. When a customer asks for "something like ABS but for outdoor use," ASA is the answer.


TPU: Engineering Elastomers

TPU (Thermoplastic Polyurethane) is the go-to flexible filament, but "flexible" covers a wide range. Shore hardness determines actual flexibility:

Shore A scale (softer)                Shore D scale (harder)
60A      75A      87A      95A        40D
 │        │        │        │          │
 ▼        ▼        ▼        ▼          ▼
Soft     Semi    Medium    Firm     Semi-rigid
Grip    Gasket   Seal     Bumper   Structural
pads    mounts  inserts  bracket   TPU parts

Printing TPU:

TPU in Nodefab: TPU parts take longer to print (low speed) and often require support removal (flexible supports are difficult). Cost per part is significantly higher than rigid materials for the same geometry. In Nodefab's quote, this shows up as a higher price per gram.


Nylon: The High-Performance Choice

Nylon (PA6, PA12, or PA6-GF/CF variants) represents the step change to engineering-grade performance:

Nylon grades comparison:

PA6:   Lower cost, higher water absorption, higher strength
PA12:  Lower water absorption, more consistent properties, higher cost
PA6-GF: Glass fiber filled → higher stiffness, lower ductility
PA6-CF: Carbon fiber filled → highest stiffness, some conductivity

Why Nylon is challenging to print:

Nylon is extremely hygroscopic. Filament absorbed moisture causes: bubbling, stringing, poor layer adhesion, and significant strength reduction (up to 30%). Drying protocol is mandatory: 80°C for 8-12 hours before printing, sealed storage with desiccant during printing.

Printing requirements: enclosure, 250-280°C nozzle, 70-90°C bed, high-adhesion surface (PEI or glue stick). Warping is significant for large parts.

Where Nylon justifies the effort:


The Nodefab Material Selection Decision Tree

START
  │
  ▼
Outdoor/UV exposure?  ─Yes─►  ASA  (or PETG for mild UV)
  │ No
  ▼
Temperature > 65°C?   ─Yes─►  ABS/ASA/Nylon (based on other needs)
  │ No
  ▼
Flexible/rubbery?      ─Yes─►  TPU (select Shore hardness)
  │ No
  ▼
Chemical exposure?     ─Yes─►  PETG (oils/common solvents)
  │ No                      Nylon (fuels, aggressive chemicals)
  ▼
High wear/sliding?     ─Yes─►  Nylon (PA6 or PA12)
  │ No
  ▼
Functional prototype?  ─Yes─►  PETG or PLA+ (depends on temp)
  │ No
  ▼
Visual prototype only  ─Yes─►  PLA (cheapest, best surface)

How Material Choice Affects Your Nodefab Quote

Material cost is not the only variable. Difficult-to-print materials increase total cost through several mechanisms:

Machine time: Lower print speeds for TPU/Nylon mean more machine hours per gram.

Failure rate: ABS without proper enclosure has higher failure rate — labor cost of monitoring and reprinting.

Post-processing: Nylon parts may require surface treatment; TPU support removal is labor-intensive.

Overhead: Nylon requires dedicated drying equipment and storage protocols.

In Nodefab's instant quote, switching materials changes the material line. The effects above are why a manufacturer's final price for a difficult material can move further than the filament price alone.


Conclusion

Material selection for FDM is a multi-variable optimization problem. Performance requirements, printability, post-processing needs, and total cost all interact. The materials landscape is richer than the "PLA/PETG/ABS" trifecta — ASA, TPU, and Nylon each solve specific problems that the standard trio cannot.

Nodefab's instant quote makes the material side of this comparison concrete: upload your part, toggle between materials, and see how the price moves.

Next: See how printer technology (FDM vs SLA vs SLS vs MJF) interacts with material choice to further expand your manufacturing options.