Literature DB >> 30540539

Occupational exposure to gaseous and particulate contaminants originating from additive manufacturing of liquid, powdered, and filament plastic materials and related post-processes.

Antti J K Väisänen1,2, Marko Hyttinen2, Sampsa Ylönen1, Lauri Alonen1.   

Abstract

The aim of this study was to measure the concentrations of gaseous and particulate contaminants originated from additive manufacturing operations and post-processes in an occupational setting when plastics were used as feedstock materials. Secondary aims were to evaluate the concentration levels based on proposed exposure limits and target values and to propose means to reduce exposure to contaminants released in additive manufacturing processes. Volatile organic compounds were sampled with Tenax TA adsorption tubes and analyzed with a thermo desorption gas chromatography-mass spectrometry instrument. Carbonyl compounds were sampled with DNPH-Silica cartridges and analyzed with a high-performance liquid chromatography device. Particles were measured with P-Trak instrument and indoor air quality was sampled with IAQ-Calc instrument. Dust mass concentrations were measured simultaneously with a DustTrak DRX instrument and IOM-samplers. Particle concentrations were highest (2070-81 890 #/cm3 mean) during manufacturing with methods where plastics were thermally processed. Total volatile organic compounds concentrations, in contrast, were low (113-317 µg/m3 mean) during manufacturing with such methods, and vat photopolymerization. However, total volatile organic compounds concentrations of material jetting and multi jet fusion methods were higher (1,114-2,496 µg/m3 mean), perhaps because of material and binder spraying, where part of the spray can become aerosolized. Chemical treatment of manufactured objects was found to be a severe volatile organic compounds source as well. Formaldehyde was detected in low concentrations (3-40 µg/m3) in all methods except for material jetting method, in addition to several other carbonyl compounds. Notable dust concentrations (1.4-9.1 mg/m3) were detected only during post-processing of powder bed fusion and multi jet fusion manufactured objects. Indoor air quality parameters were not found to be notably impacted by manufacturing operations. Only low concentrations (below 2 ppm) of CO were detected during several manufacturing processes. All studied additive manufacturing operations emitted potentially harmful contaminants into their environments, which should be considered in occupational additive manufacturing and workplace design. According to the measured contaminant levels it is possible that adverse additive manufacturing related health effects may occur among exposed workers.

Entities:  

Keywords:  Additive manufacturing; indoor aerosol; indoor air quality; occupational health; particle; volatile organic compound

Mesh:

Substances:

Year:  2019        PMID: 30540539     DOI: 10.1080/15459624.2018.1557784

Source DB:  PubMed          Journal:  J Occup Environ Hyg        ISSN: 1545-9624            Impact factor:   2.155


  11 in total

1.  Particle and organic vapor emissions from children's 3-D pen and 3-D printer toys.

Authors:  Jinghai Yi; Matthew G Duling; Lauren N Bowers; Alycia K Knepp; Ryan F LeBouf; Timothy R Nurkiewicz; Anand Ranpara; Todd Luxton; Stephen B Martin; Dru A Burns; Derek M Peloquin; Eric J Baumann; M Abbas Virji; Aleksandr B Stefaniak
Journal:  Inhal Toxicol       Date:  2019-12-24       Impact factor: 2.724

2.  Pulmonary and systemic toxicity in rats following inhalation exposure of 3-D printer emissions from acrylonitrile butadiene styrene (ABS) filament.

Authors:  Mariana T Farcas; Walter McKinney; Chaolong Qi; Kyle W Mandler; Lori Battelli; Sherri A Friend; Aleksandr B Stefaniak; Mark Jackson; Marlene Orandle; Ava Winn; Michael Kashon; Ryan F LeBouf; Kristen A Russ; Duane R Hammond; Dru Burns; Anand Ranpara; Treye A Thomas; Joanna Matheson; Yong Qian
Journal:  Inhal Toxicol       Date:  2020-10-20       Impact factor: 2.724

3.  Use of 3-Dimensional Printers in Educational Settings: The Need for Awareness of the Effects of Printer Temperature and Filament Type on Contaminant Releases.

Authors:  Aleksandr B Stefaniak; Lauren N Bowers; Gabe Cottrell; Ergin Erdem; Alycia K Knepp; Stephen Martin; Jack Pretty; Matthew G Duling; Elizabeth D Arnold; Zachary Wilson; Benjamin Krider; Ryan F LeBouf; M Abbas Virji; Arif Sirinterlikci
Journal:  J Chem Health Saf       Date:  2021-08-31

4.  Large-Format Additive Manufacturing and Machining Using High-Melt-Temperature Polymers. Part I: Real-Time Particulate and Gas-Phase Emissions.

Authors:  Aleksandr B Stefaniak; Lauren N Bowers; Stephen B Martin; Duane R Hammond; Jason E Ham; J R Wells; Alyson R Fortner; Alycia K Knepp; Sonette du Preez; Jack R Pretty; Jennifer L Roberts; Johan L du Plessis; Austin Schmidt; Matthew G Duling; Andrew Bader; M Abbas Virji
Journal:  J Chem Health Saf       Date:  2021-03-25

5.  Large-Format Additive Manufacturing and Machining Using High-Melt-Temperature Polymers. Part II: Characterization of Particles and Gases.

Authors:  Aleksandr B Stefaniak; Lauren N Bowers; Stephen B Martin; Duane R Hammond; Jason E Ham; J R Wells; Alyson R Fortner; Alycia K Knepp; Sonette du Preez; Jack R Pretty; Jennifer L Roberts; Johan L du Plessis; Austin Schmidt; Matthew G Duling; Andrew Bader; M Abbas Virji
Journal:  J Chem Health Saf       Date:  2021-03-25

6.  Comparison of product safety data sheet ingredient lists with skin irritants and sensitizers present in a convenience sample of light-curing resins used in additive manufacturing.

Authors:  Lauren N Bowers; Anand C Ranpara; Katherine A Roach; Alycia K Knepp; Elizabeth D Arnold; Aleksandr B Stefaniak; M Abbas Virji
Journal:  Regul Toxicol Pharmacol       Date:  2022-05-31       Impact factor: 3.598

Review 7.  3D Printing and Virtual Surgical Planning in Oral and Maxillofacial Surgery.

Authors:  Adeeb Zoabi; Idan Redenski; Daniel Oren; Adi Kasem; Asaf Zigron; Shadi Daoud; Liad Moskovich; Fares Kablan; Samer Srouji
Journal:  J Clin Med       Date:  2022-04-24       Impact factor: 4.964

Review 8.  Particle Safety Assessment in Additive Manufacturing: From Exposure Risks to Advanced Toxicology Testing.

Authors:  Andi Alijagic; Magnus Engwall; Eva Särndahl; Helen Karlsson; Alexander Hedbrant; Lena Andersson; Patrik Karlsson; Magnus Dalemo; Nikolai Scherbak; Kim Färnlund; Maria Larsson; Alexander Persson
Journal:  Front Toxicol       Date:  2022-04-25

9.  Additive Manufacturing for Occupational Hygiene: A Comprehensive Review of Processes, Emissions, & Exposures.

Authors:  A B Stefaniak; S Du Preez; J L Du Plessis
Journal:  J Toxicol Environ Health B Crit Rev       Date:  2021-06-17       Impact factor: 6.393

10.  Exploring Methods for Surveillance of Occupational Exposure from Additive Manufacturing in Four Different Industrial Facilities.

Authors:  Gunilla Runström Eden; Håkan Tinnerberg; Lars Rosell; Rickie Möller; Ann-Charlotte Almstrand; Anna Bredberg
Journal:  Ann Work Expo Health       Date:  2022-02-18       Impact factor: 2.179

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