Related Experiment Video
Updated: Feb 2, 2026

3D Printing - Evaluating Particle Emissions of a 3D Printing Pen
Published on: October 9, 2020
Particle emissions from fused deposition modeling 3D printers: Evaluation and meta-analysis
Peter Byrley1, Barbara Jane George2, William K Boyes3
1ORAU Student Services Contractor to Exposure Methods & Measurements Division, National Exposure Research Laboratory, USEPA, RTP, NC 27711, United States.
None:
Fused deposition modeling (FDM) 3D printers, the most popular choice among home hobbyists, have been shown to release volatile organic chemicals (VOCs) and billions of airborne particles per minute, indicating the potential for consumer inhalation exposure and consequent health risks. Publications on FDM 3D printer emissions however, contain large heterogeneity of testing methods and analytical procedures making it difficult to reach overall conclusions for particle characteristics or particle number emission rates across the field. In this publication, data were collected over the printing time from 3D printer emission studies including particle count diameters (PCDs) (nanometers), particle number concentrations (PNCs) (particles/cm3), and particle number emission rates (PNERs) (particles min-1). Despite heterogeneity in methods, the majority of particles released were reported as ultrafine in size (i.e., <100 nm) indicating that using both acrylonitrile butadiene styrene (ABS) and poly-lactic acid (PLA) may present a risk of exposure to respirable particles. Mean PNC emitted in 3D printing tests ranged over several orders of magnitude across publications with overall means of 300,980 particles/cm3 for ABS and 65,482 particles/cm3 for PLA. Although mean PNC data were available from only 7 of the 16 papers reviewed, ABS resulted in greater particle numbers than PLA suggesting increased exposure to ultrafine particles. A linear mixed model was fitted for mean PNCs to further explore the impact of nozzle temperature and filament material. Finally, the PNER calculation method especially regarding losses, varied widely across studies, and directly impacted the PNERs reported. To strengthen direct comparability of results going forward, it is recommended that standard emissions testing protocols be developed for FDM 3D printers and particle influxes and losses be more uniformly calculated.
Related Concept Videos
Reclosers and Fuses
A comprehensive protection scheme for radial distribution...
Emission Spectra
Subatomic Particles
Circuit Breaker and Fuse Selection
In high-voltage systems,...
Phase Transitions: Sublimation and Deposition
Directing Effect of Substituents: meta-Directing Groups

