FDM Material · Engineering Composite

Carbon Fiber PETG
(CF-PETG)

Short-carbon-fiber reinforced PETG for stiff, dimensionally stable structural parts where chemical resistance matters.

CompositeCarbon FiberStiffLow WarpCF-PETG
Tensile Strength
58 MPa
Heat Deflection
80 °C
Density
1.32 g/cm³
Print Temp
245–260 °C
Fracktal Carbon Fiber PETG filament spool on black background

Quick Reference

Material properties
Category
Engineering Composite
Base Polymer
Polyethylene Terephthalate Glycol (PETG)
Filler
Short-cut carbon fibre (~15 wt%)
Tensile Strength
58 MPa
Heat Deflection (HDT)
80 °C
Density
1.32 g/cm³
Moisture Sensitivity
Low — dry 65 °C / 4 h if stored unsealed
Nozzle Temp
245–260 °C
Nozzle Diameter
≥ 0.4 mm
Nozzle Material
Hardened steel (mandatory)
Bed Temperature
75–90 °C
Enclosure
Recommended
Post-Processing
Sand, drill, tap; carbon dust — wear a mask
Comparative Profile

Material Property Profile

CF-PETGThis material
CF-PAComparison

Values scored 0–10 from measured mechanical data and print process behaviour. Select a material above to compare properties.

2.55.07.510
Measured Properties

Key Properties

Engineering values with context that decides whether CF-PETG is the right choice for your application.

Tensile Strength
58 MPa
15–20 % stronger than unfilled PETG in the print direction.
Heat Deflection
80 °C
10 °C higher than unfilled PETG — improved thermal stability.
Stiffness (Modulus)
4.5 GPa
Twice as stiff as standard PETG — near-aluminium feel at low weight.
Density
1.32 g/cm³
Denser than unfilled PETG but stiffer — better specific stiffness.
Warp / Shrinkage
Very Low
Carbon fibre restricts thermal contraction — excellent dimensional stability.
Surface Finish
Matte / Textured
Carbon content gives a uniform matte texture — no extra treatment needed.
Printer Compatibility

Machine Requirements

Hard thresholds for reliable CF-PETG output — check your printer meets these before loading the filament.

RequirementMinimum SpecRecommended
Nozzle Temperature240 °C245–260 °C
Bed Temperature70 °C75–90 °C
EnclosurePassiveRecommended
Nozzle MaterialHardened steelHardened steel 0.4 mm+
Cooling Fan25 %50 %
Retraction3 mm4–5 mm @ 40 mm/s

Hardened steel nozzle is mandatory. Carbon fibre will abrade a brass nozzle within minutes of printing, causing diameter growth, stringing, and dimension drift. Never use brass with CF-PETG.

Where It Is Used

Applications — By Industry

3D printed assembly jig — end-of-arm tooling and robotic grippers

Tooling / Jigs

  • Assembly jigs & fixtures
  • Go/no-go gauges
  • Welding locators

Drone / Robotics

  • UAV frames & arms
  • Robot chassis plates
  • Camera mounts
Matte black 3D printed end-use automotive part

Automotive

  • Interior mounting brackets
  • Sensor housings
  • Panel clips
3D printed parts for R&D prototyping and engineering applications

R&D / Prototyping

  • Reinforced structural prototypes
  • Stiffness-critical test parts
  • Lightweight mechanical parts
Benchmark

Tensile Strength — FDM Materials (MPa)

20406080CF-PA82PC62CF-PETG58PLA56Nylon PA1250PETG48PC-ABS48ASA42ABS38TPU 95A28PP28
Performance Map

Heat Deflection vs Tensile Strength

Available Materials

Carbon fiber reinforced PETG combining superior heat resistance with excellent printability. Ideal for reinforced engineering parts requiring higher stiffness than standard PETG.
03060901201501800153045607590Tensile Strength (MPa) — ASTM D638Heat Deflection Temperature (°C) — ASTM D648 @ 0.455 MPaCF-PETGCF-PANylon PA12PLAPETGABSTPU 95APCASAPC-ABSPP
Decision Guide

When to Use CF-PETG — and When Not To

Use CF-PETG when

  • High stiffness-to-weight ratio is the design requirement
  • Chemical resistance needed alongside structural performance
  • Dimensional stability under thermal cycling is critical
  • Matte surface texture is acceptable or desirable
  • You have a hardened steel nozzle

Avoid CF-PETG when

  • Brass nozzle only — will wear rapidly (use unfilled PETG instead)
  • Parts needing smooth polished finish (surface is matte and textured)
  • Very long slender spans — impact strength is lower than unfilled PETG
  • Food contact applications
Design for Additive

DfAM Tips for CF-PETG

Design rules that get the best performance from CF-PETG.

Wall Thickness ≥ 1.2 mm (3+ perimeters)

Fibre alignment benefit only appears at 3+ perimeters. Below that, you lose most of the stiffness advantage.

Min Hole Diameter: 1.5 mm

CF-PETG has very low shrinkage but fibre bunching near small holes can reduce accuracy. Add 0.1 mm bore clearance.

Max Overhang: 45°

Carbon fibre does not improve overhang — use supports beyond 45°. Keep unsupported spans under 30 mm.

Hardened Steel Nozzle Required

Carbon fibres abrade brass nozzles in minutes. Use hardened steel (or ruby) and replace at first sign of wear.

Ready to print in CF-PETG?

Order Fracktal CF-PETG filament — available in 500 g and 1 kg spools.