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Original Articles

Characterization of chemical contaminants generated by a desktop fused deposition modeling 3-dimensional Printer

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References

  • International Organization for Standardization/American Society of Testing Materials (ISO/ASTM): Additive manufacturing — General principles — Terminology (ISO/ASTM 52900) [Standard] Geneva, Switzerland: ISO/ASTM, 2015.
  • Short, D. B., A. Sirinterlikci, P. Badger, and B. Artieri: Environmental, health, and safety issues in rapid prototyping. Rapid Proto. J. 21(1):105–110 (2015).
  • He, Z., G. Li, J. Chen, Y. Huang, T. An, and C. Zhang: Pollution characteristics and health risk assessment of volatile organic compounds emitted from different plastic solid waste recycling workshops. Environ. Int. 77:85–94 (2015).
  • Rutkowski, J. V., and B. C. Levin: Acrylonitrile-butadiene-styrene copolymers (ABS): Pyrolysis and combustion products and their toxicity - A review of the literature. Fire Mat. 10(3–4):93–105 (1986).
  • Unwin, J., M. R. Coldwell, C. Keen, and J. J. McAlinden: Airborne emissions of carcinogens and respiratory sensitizers during thermal processing of plastics. Ann. Occup. Hyg. 57(3):399–406 (2013).
  • Wolkoff, P., C. K. Wilkins, P. A. Clausen, and G. D. Nielsen: Organic compounds in office environments - Sensory irritation, odor, measurements and the role of reactive chemistry. Indoor Air 16(1):7–19 (2006).
  • Lee, J. S., H. S. Kwak, B. S. Choi, and S. Y. Park: A case of occupational asthma in a plastic injection process worker. Ann. Occup. Environ. Med. 25(1):25 (2013).
  • Van Kampen, V., R. Merget, and X. Baur: Occupational airway sensitizers: An overview on the respective literature. Am. J. Ind. Med. 38(2):164–218 (2000).
  • Clausen, P. A., C. K. Wilkins, P. Wolkoff, and G. D. Nielsen: Chemical and biological evaluation of a reaction mixture of R-(+)-limonene/ozone: Formation of strong airway irritants. Environ. Int. 26(7–8):511–522 (2001).
  • Tuomi, T., B. Engström, R. Niemelä, J. Svinhufvud, and K. Reijula: Emission of ozone and organic volatiles from a selection of laser printers and photocopiers. Appl. Occup. Environ. Hyg. 15(8):629–634 (2000).
  • Wang, H., C. He, L. Morawska, P. McGarry, and G. Johnson: Ozone-initiated particle formation, particle aging, and precursors in a laser printer. Environ. Sci. Technol. 46(2):704–712 (2012).
  • Anderson, S. E., J. Franko, L. G. Jackson, J. R. Wells, J. E. Ham, and B. J. Meade: Irritancy and allergic responses induced by exposure to the indoor air chemical 4-Oxopentanal. Tox. Sci. 127(2):371–381 (2012).
  • Jarvis, J., M. J. Seed, R. A. Elton, L. Sawyer, and R. M. Agius: Relationship between chemical structure and the occupational asthma hazard of low molecular weight organic compounds. Occup. Environ. Med. 62(4):243–250 (2005).
  • Azimi, P., D. Zhao, C. Pouzet, N. E. Crain, and B. Stephens: Emissions of ultrafine particles and volatile organic compounds from commercially available desktop three-dimensional printers with multiple filaments. Environ. Sci. Technol. 50(3):1260–1268 (2016).
  • Kim, Y., C. Yoon, S. Ham, J. Park, S. Kim, O. Kwon et al.: Emissions of Nanoparticles and Gaseous Material from 3D Printer Operation. Environ. Sci. Technol. 49(20):12044–12053 (2015).
  • Stabile, L., M. Scungio, G. Buonanno, F. Arpino, and G. Ficco: Airborne particle emission of a commercial 3D printer: The effect of filament material and printing temperature. Indoor Air 27(2):398–408 (2017).
  • Steinle, P.: Characterization of emissions from a desktop 3D printer and indoor air measurements in office settings. J. Occup. Environ. Hyg. 13(2):121–132 (2016).
  • Stephens, B., P. Azimi, Z. El Orch, and T. Ramos: Ultrafine particle emissions from desktop 3D printers. Atmos. Environ. 79:334–339 (2013).
  • Yi, J., R. F. LeBouf, M. G. Duling, et al.: Emission of particulate matter from a desktop three-dimensional (3-D) printer. J. Toxicol. Environ. Health A 79:453–465 (2016).
  • Jankovic, J. T., S. M. Hollenbeck, and T. L. Zontek: Ambient air sampling during quantum-dot spray deposition. Int. J. Occup. Environ. Health 16(4):388–398 (2010).
  • Yi, J., B. T. Chen, D. Schwegler-Berry, et al.: Whole-body nanoparticle aerosol inhalation exposures. J. Vis. Experiments (75):(2013).
  • International Organization for Standardization/International Electrotechnical Commission (ISO/IEC): Information Technology - Office Equipment - Determination of Chemical Emission Rates from Electronic Equipment: (ISO/IEC 28360). [Standard] Geneva, Switzerland: ISO/IEC, 2007.
  • Bundesanstalt für Materialforschung und-prüfung (BAM): Basic Criteria for Award of the Environmental Lable: Office Equipment with Printing Function (Printers, Copiers, Multifunction Devices) (RAL-UZ-171). [Standard] St. Augustin, Germany: BAM, 2012.
  • LeBouf, R. F., M. A. Virji, R. Saito, P. K. Henneberger, N. Simcox, and A. B. Stefaniak: Exposure to volatile organic compounds in healthcare settings. Occup. Environ. Med. 71(9):642–650 (2014).
  • Ham, J. E., S. R. Jackson, J. C. Harrison, and J. R. Wells: Gas-phase reaction products and yields of terpinolene with ozone and nitric oxide using a new derivatization agent. Atmos. Environ. 122:513–520 (2015).
  • Jackson, S. R., J. E. Ham, J. C. Harrison, and J. R. Wells: Identification and quantification of carbonyl-containing α-pinene ozonolysis products using O-tert-butylhydroxylamine hydrochloride. J. Atmos. Chem. DOI:10.1007/s10874-016-9344-6.
  • Wells, J. R., and J. E. Ham: A new agent for derivatizing carbonyl species used to investigate limonene ozonolysis. Atmos. Environ. 99:519–526 (2014).
  • Liu, B. Y. H., D. Y. H. Pui, and K. L. Rubow: Characteristics of air sampling filter media. In Aerosols in the Mining and Industrial Work Environments, V. A. Marple and B. Y. H. Liu (eds.). Ann Arbor, MI: Ann Arbor Science, 1983. pp. 989–1038.
  • He, C., L. Morawska, H. Wang, et al.: Quantification of the relationship between fuser roller temperature and laser printer emissions. J. Aerosol Sci. 41(6):523–530 (2010).
  • Nørgaard, A. W., V. Kofoed-Sørensen, C. Mandin, et al.: Ozone-initiated terpene reaction products in five European offices: Replacement of a floor cleaning agent. Environ. Sci. Technol. 48(22):13331–13339 (2014).
  • Nørgaard, A. W., J. D. Kudal, V. Kofoed-Sørensen, I. K. Koponen, and P. Wolkoff: Ozone-initiated VOC and particle emissions from a cleaning agent and an air freshener: Risk assessment of acute airway effects. Environ. Int. 68:209–218 (2014).
  • Wisthaler, A., and C. J. Weschler: Reactions of ozone with human skin lipids: sources of carbonyls, dicarbonyls, and hydroxycarbonyls in indoor air. Proc. Natl. Acad. Sci. USA. 107(15):6568–6575 (2010).
  • Brown, S. K.: Assessment of pollutant emissions from dry-process photocopiers. Indoor Air 9(4):259–267 (1999).
  • Castellano, P., S. Canepari, R. Ferrante, and N. L'Episcopo: Multiparametric approach for an exemplary study of laser printer emissions. J. Environ. Monit. 14(2):446–454 (2012).
  • Lee, S. C., S. Lam, and H. Kin Fai: Characterization of VOCs, ozone, and PM10 emissions from office equipment in an environmental chamber. Build. Environ. 36(7):837–842 (2001).
  • Leovic, K. W., L. S. Sheldon, D. A. Whitaker, R. G. Hetes, J. A. Calcagni, and J. N. Baskir: Measurement of Indoor Air Emissions from Dry-Process Photocopy Machines. J. Air Waste Manag. Assoc. 46(9):821–829 (1996).
  • Wang, Z. M., J. Wagner, and S. Wall: Characterization of laser printer nanoparticle and VOC emissions, formation mechanisms, and strategies to reduce airborne exposures. Aerosol Sci. Technol. 45(9):1060–1068 (2011).
  • Contos, D. A., M. W. Holdren, D. L. Smith, R. C. Brooke, V. L. Rhodes, and M. L. Rainey: Sampling and analysis of volatile organic compounds evolved during thermal processing of acrylonitrile butadiene styrene composite resins. J. Air Waste Manag. Assoc. 45(9):686–694 (1995).
  • Forrest, M. J., A. M. Jolly, S. R. Holding, and S. J. Richards: Emissions from processing thermoplastics. Ann. Occup. Hyg. 39(1):35–53 (1995).
  • Barthel, M., V. Pedan, O. Hahn, et al.: XRF-analysis of fine and ultrafine particles emitted from laser printing devices. Environ. Sci. Technol. 45(18):7819–7825 (2011).
  • Morawska, L., C. He, G. Johnson, R. Jayaratne, T. Salthammer, H. Wang et al.: An investigation into the characteristics and formation mechanisms of particles originating from the operation of laser printers. Environ. Sci. Technol. 43(4):1015–1022 (2009).
  • Pirela, S. V., G. A. Sotiriou, D. Bello, et al.: Consumer exposures to laser printer-emitted engineered nanoparticles: A case study of life-cycle implications from nano-enabled products. Nanotoxicology 9(6):760–768 (2015).
  • Salthammer, T., T. Schripp, E. Uhde, and M. Wensing: Aerosols generated by hardcopy devices and other electrical appliances. Environ. Pollut. 169:167–174 (2012).
  • LeBlanc, A. J., J. L. Cumpston, B. T. Chen, D. Frazer, V. Castranova, and T. R. Nurkiewicz: Nanoparticle inhalation impairs endothelium-dependent vasodilation in subepicardial arterioles. J. Toxicol. Environ. Health A 72(24):1576–1584 (2009).
  • Nurkiewicz, T. R., D. W. Porter, A. F. Hubbs, et al.: Nanoparticle inhalation augments particle-dependent systemic microvascular dysfunction. Part. Fibre Toxicol. 5:1 (2008).
  • Oberdorster, G.: Pulmonary effects of inhaled ultrafine particles. Int. Arch. Occup. Environ. Health 74(1):1–8 (2001).
  • He, C., L. Morawska, and L. Taplin: Particle emission characteristics of office printers. Environ. Sci. Technol. 41(17):6039–6045 (2007).