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Operation-specific and time-resolved monitoring of occupational nano/sub-micron particle exposure in a Swedish metal additive manufacturing facility
Örebro University, School of Medical Sciences. Örebro University Hospital. Department of Occupational and Environmental Medicine.ORCID iD: 0000-0001-8166-7955
Örebro University, School of Science and Technology. School of Medical Sciences, Faculty of Medicine and Health, Örebro University, Örebro, Sweden. (Inflammatory Response and Infection Susceptibility Centre (iRiSC); Man-Technology-Environment Research Centre (MTM))ORCID iD: 0000-0002-2403-7989
Department of Occupational and Environmental Medicine, Örebro University Hospital, Örebro SE-701 85, Sweden.
Örebro University, School of Science and Technology. (Man-Technology-Environment Research Centre (MTM))ORCID iD: 0000-0001-7338-2079
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2026 (English)In: Annals of Work Exposures and Health, ISSN 2398-7308, E-ISSN 2398-7316, Vol. 70, no 4, article id wxag040Article in journal (Refereed) Published
Abstract [en]

The aim of the study was to determine nano/sub-micron particle and dust exposure levels throughout the whole workflow at a Swedish metal additive manufacturing (AM) facility, focusing on the laser powder bed fusion (L-PBF) method. By evaluating particle levels and composition across different AM processes using both stationary and personal sampling, the study sought to improve exposure assessment and inform protective measures in the metal AM workplaces. Measurements were conducted during five measurement weeks, as five working days Monday-Friday, between October 2020 and October 2023. Personal particle measurements in the breathing zone were performed on Mondays and Fridays for 1 to 3 workers per day. Stationary particle and dust sampling were performed continuously at three locations each week to capture task-specific and temporal variation in emissions. Nano/sub-micron particle concentrations ranged from 0 to 3.3 million particles/cm3, with the highest peaks recorded in the post-processing area. Elevated levels were also detected, near the depowdering machine, by the bandsaw, and in the lunchroom, while levels near the printers were low (<10,000 particles/cm3). Personal exposure peaks occurred during printer cleaning, feedstock powder filling, dust removal with compressed air, post-processing, and packing. In contrast to the increased nano/sub-micron particle levels observed, respirable, and inhalable dust levels were very low. The study highlights the need to monitor particle exposure during both manufacturing and post-processing. Health risks associated with airborne particles are influenced by both exposure levels and the toxicological properties of materials. To ensure a safe and sustainable future for metal AM, comprehensive exposure assessment, risk evaluation, and the implementation of protective measures remain essential.

Place, publisher, year, edition, pages
Oxford University Press, 2026. Vol. 70, no 4, article id wxag040
Keywords [en]
3D printing, dust exposure, emission, laser powder bed fusion, nanoparticles, post-processing
National Category
Occupational Health and Environmental Health
Identifiers
URN: urn:nbn:se:oru:diva-129116DOI: 10.1093/annweh/wxag040ISI: 001781060900001PubMedID: 42219903OAI: oai:DiVA.org:oru-129116DiVA, id: diva2:2065559
Note

Funding Agency:

This study was supported by Stiftelsen för Kunskap- och Kompetensutveckling Sweden (Grants No. 2019-0107 2022-0122, and 2023-0020).

Available from: 2026-06-03 Created: 2026-06-03 Last updated: 2026-06-15Bibliographically approved

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Andersson, LenaAlijagic, AndiEngwall, MagnusSärndahl, EvaHedbrant, Alexander

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