박사

Exposure Assessment of Nanoparticles at the Workplaces - Characterization, Statistical Analysis and Instrument Comparison : 사업장에서의 나노입자 특성규명 및 노출평가

함승헌 2015년
논문상세정보
' Exposure Assessment of Nanoparticles at the Workplaces - Characterization, Statistical Analysis and Instrument Comparison : 사업장에서의 나노입자 특성규명 및 노출평가' 의 주제별 논문영향력
논문영향력 선정 방법
논문영향력 요약
주제
  • autocorrelation
  • engineered nanoparticle
  • nanoparticle exposure assessment
  • occupational health
  • smps
  • unintended
동일주제 총논문수 논문피인용 총횟수 주제별 논문영향력의 평균
88 0

0.0%

' Exposure Assessment of Nanoparticles at the Workplaces - Characterization, Statistical Analysis and Instrument Comparison : 사업장에서의 나노입자 특성규명 및 노출평가' 의 참고문헌

  • Zwack, L. M., C. J. Paciorek, J. D. Spengler and J. I. Levy (2011). "Modeling spatial patterns of traffic-related air pollutants in complex urban terrain." Environmental Health Perspectives 119(6): 852-859.
  • Zimmer, A. T., P. A. Baron and P. Biswas (2002). "The influence of operating parameters on number-weighted aerosol size distribution generated from a gas metal arc welding process." Journal of Aerosol Science 33(3): 519-531.
  • Zimmer, A. T. and P. Biswas (2001). "Characterization of the aerosols resulting from arc welding processes." Journal of Aerosol Science 32(8): 993-1008.
  • Zimmer, A. T. (2002). "The influence of metallurgy on the formation of welding aerosols." Journal of Environmental Monitoring 4(5): 628-632.
  • Zhang, M., L. Jian, P. Bin, M. Xing, J. Lou, et al. (2013). "Workplace exposure to nanoparticles from gas metal arc welding process." Journal of Nanoparticle Research 15(11): 1-14.
  • Yoon, C. S., N. W. Paik and J. H. Kim (2003). "Fume generation and content of total chromium and hexavalent chromium in flux-cored arc welding." Annals of Occupational Hygiene 47(8): 671-680.
  • Wittmaack, K. (2007). "In search of the most relevant parameter for quantifying lung inflammatory response to nanoparticle exposure: Particle number, surface area, or what?" Environmental Health Perspectives 115(2): 187-194.
  • Wiedensohler, A., W. Birmili, A. Nowak, A. Sonntag, K. Weinhold, et al. (2012). "Mobility particle size spectrometers: Harmonization of technical standards and data structure to facilitate high quality long-term observations of atmospheric particle number size distributions." Atmospheric Measurement Techniques 5: 657-685.
  • Watson, J. G., J. C. Chow, D. A. Sodeman, D. H. Lowenthal, M.-C. O. Chang, et al. (2011). "Comparison of four scanning mobility particle sizers at the fresno supersite." Particuology 9(3): 204-209.
  • Virji, M. A., S. R. Woskie, M. Waters, S. Brueck, D. Stancescu, et al. (2009). "Agreement between task-based estimates of the full-shift noise exposure and the full-shift noise dosimetry." Annals of Occupational Hygiene 53(3): 201-214.
  • Virji, M. A., S. R. Woskie and L. D. Pepper (2008). "Task-based lead exposures and work site characteristics of bridge surface preparation and painting contractors." Journal of Occupational and Environmental Hygiene 6(2): 99-112.
  • Van Duuren-Stuurman, B., S. R. Vink, K. J. Verbist, H. G. Heussen, D. H. Brouwer, et al. (2012). "Stoffenmanager nano version 1.0: A web-based tool for risk prioritization of airborne manufactured nano objects." Annals of Occupational Hygiene 56(5): 525-541.
  • Van Broekhuizen, P., W. Van Veelen, W.-H. Streekstra, P. Schulte and L. Reijnders (2012). "Exposure limits for nanoparticles: Report of an international workshop on nano reference values." Annals of Occupational Hygiene 56(5): 515-524.
  • Tsai, S.-J., R. F. Huang and M. J. Ellenbecker (2010). "Airborne nanoparticle exposures while using constant-flow, constant-velocity, and air-curtain-isolated fume hoods." Annals of Occupational Hygiene 54(1): 78-87.
  • Tsai, S.-J., E. Ada, J. Isaacs and M. Ellenbecker (2009). "Airborne nanoparticle exposures associated with the manual handling of nanoalumina and nanosilver in fume hoods." Journal of Nanoparticle Research 11(1): 147-161.
  • Tsai, C.-J., C.-Y. Huang, S.-C. Chen, C.-E. Ho, C.-H. Huang, et al. (2011). "Exposure assessment of nano-sized and respirable particles at different workplaces." Journal of Nanoparticle Research: 1-12.
  • Tsai, C.-J., C.-Y. Huang, S.-C. Chen, C.-E. Ho, C.-H. Huang, et al. (2011). "Exposure assessment of nano-sized and respirable particles at different workplaces." Journal of Nanoparticle Research 13(9): 4161-4172.
  • Tsai, C. S.-J., D. White, H. Rodriguez, C. E. Munoz, C.-Y. Huang, et al. (2012). "Exposure assessment and engineering control strategies for airborne nanoparticles: An application to emissions from nanocomposite compounding processes." Journal of Nanoparticle Research 14(7): 1-14.
  • Tritscher, T., M. Beeston, A. F. Zerrath, S. Elzey, T. J. Krinke, et al. (2013). "Nanoscan smps?a novel, portable nanoparticle sizing and counting instrument." Journal of Physics: Conference Series 429(1): 012061.
  • Seixas, N. S., L. Sheppard and R. Neitzel (2003). "Comparison of task-based estimates with full-shift measurements of noise exposure." AIHA Journal 64(6): 823-829.
  • Schulte, P., V. Murashov, R. Zumwalde, E. Kuempel and C. Geraci (2010). "Occupational exposure limits for nanomaterials: State of the art." Journal of Nanoparticle Research 12(6): 1971-1987.
  • Schulte, P., C. Geraci, R. Zumwalde, M. Hoover and E. Kuempel (2008). "Occupational risk management of engineered nanoparticles." Journal of Occupational and Environmental Hygiene 5(4): 239-249.
  • Schmoll, L. H., T. M. Peters and P. T. O'Shaughnessy (2010). "Use of a condensation particle counter and an optical particle counter to assess the number concentration of engineered nanoparticles." Journal of Occupational and Environmental Hygiene 7(9): 535-545.
  • S yseth, V., H. L. Johnsen and J. Kongerud (2013). "Respiratory hazards of metal smelting." Current Opinion in Pulmonary Medicine 19(2): 158-162.
  • Reiman, M. P. and R. C. Manske (2009). Functional testing in human performance, Human kinetics.
  • Ramachandran, G., M. Ostraat, D. E. Evans, M. M. Methner, P. O’Shaughnessy, et al. (2011). "A strategy for assessing workplace exposures to nanomaterials." Journal of Occupational and Environmental Hygiene 8(11): 673-685.
  • Plitzko, S. (2009). "Workplace exposure to engineered nanoparticles." Inhalation Toxicology 21(s1): 25-29.
  • Pinheiro, J., D. Bates and R. Maintainer. (2013). "Package ‘nlme’." Retrieved 30 Sep 2014, from http://cran.r-project.org/web/packages/nlme/nlme.pdf.
  • Pfefferkorn, F. E., D. Bello, G. Haddad, J.-Y. Park, M. Powell, et al. (2010). "Characterization of exposures to airborne nanoscale particles during friction stir welding of aluminum." Annals of Occupational Hygiene 54(5): 486-503.
  • Peters, T. M., W. A. Heitbrink, D. E. Evans, T. J. Slavin and A. D. Maynard (2006). "The mapping of fine and ultrafine particle concentrations in an engine machining and assembly facility." Annals of Occupational Hygiene 50(3): 249-257.
  • Peters, T. M., S. Elzey, R. Johnson, H. Park, V. H. Grassian, et al. (2008). "Airborne monitoring to distinguish engineered nanomaterials from incidental particles for environmental health and safety." Journal of Occupational and Environmental Hygiene 6(2): 73-81.
  • Park, J. Y., P. C. Raynor, A. D. Maynard, L. E. Eberly and G. Ramachandran (2009). "Comparison of two estimation methods for surface area concentration using number concentration and mass concentration of combustion-related ultrafine particles." Atmospheric Environment 43(3): 502-509.
  • Park, J. Y., G. Ramachandran, P. C. Raynor and G. M. Olson (2010). "Determination of particle concentration rankings by spatial mapping of particle surface area, number, and mass concentrations in a restaurant and a die casting plant." Journal of Occupational and Environmental Hygiene 7(8): 466-476.
  • Paik, S. Y., D. M. Zalk and P. Swuste (2008). "Application of a pilot control banding tool for risk level assessment and control of nanoparticle exposures." Annals of Occupational Hygiene 52(6): 419-428.
  • Ozaki, T. (1977). "On the order determination of arima models." Journal of the Royal Statistical Society. Series C (Applied Statistics) 26(3): 290-301.
  • Ott, W., P. Switzer and N. Willits (1994). "Carbon monoxide exposures inside an automobile traveling on an urban arterial highway." Air & waste 44(8): 1012-1018.
  • Osborne, J. and E. Waters (2002). "Four assumptions of multiple regression that researchers should always test." Practical assessment, research & evaluation 8(2): 1-9.
  • Ono-Ogasawara, M., F. Serita and M. Takaya (2009). "Distinguishing nanomaterial particles from background airborne particulate matter for quantitative exposure assessment." Journal of Nanoparticle Research 11(7): 1651-1659.
  • Olanow, C. W. (2004). "Manganese-induced parkinsonism and parkinson's disease." Annals of the New York Academy of Sciences 1012(1): 209-223.
  • Oberdorster, G., J. Ferin and B. Lehnert (1994). "Correlation between particle size, in vivo particle persistence, and lung injury." Environ Health Perspect 102: 173-179.
  • Oberdorster, G., E. Oberdorster and J. Oberdorster (2007). "Concepts of nanoparticle dose metric and response metric." Environmental Health Perspectives 115(6): A290-A290.
  • Oberdorster, G., E. Oberdorster and J. Oberdorster (2005). "Nanotoxicology: An emerging discipline evolving from studies of ultrafine particles." Environmental Health Perspectives 113(7): 823-839.
  • Oberdorster, G. (2010). "Safety assessment for nanotechnology and nanomedicine: Concepts of nanotoxicology." Journal of Internal Medicine 267(1): 89-105.
  • Neubauer, N., M. Seipenbusch and G. Kasper (2013). "Functionality based detection of airborne engineered nanoparticles in quasi real time: A new type of detector and a new metric." Annals of Occupational Hygiene 57(7): 842-852.
  • Neitzel, R., W. Daniell, L. Sheppard, H. Davies and N. Seixas (2011). "Evaluation and comparison of three exposure assessment techniques." Journal of Occupational and Environmental Hygiene 8(5): 310-323.
  • NIOSH (2009) Approaches to safe nanotechnology
  • Mulholland, G. W., M. K. Donnelly, C. R. Hagwood, S. R. Kukuck, V. A. Hackley, et al. (2006). "Measurement of 100 nm and 60 nm particle standards by differential mobility analysis." Journal of Research-National Institute of Standards and Technology 111(4): 257.
  • Methner, M., L. Hodson, A. Dames and C. Geraci (2010). "Nanoparticle emission assessment technique (neat) for the identification and measurement of potential inhalation exposure to engineered nanomaterials?part b: Results from 12 field studies." Journal of Occupational and Environmental Hygiene 7(3): 163-176.
  • Methner, M., L. Hodson and C. Geraci (2009). "Nanoparticle emission assessment technique (neat) for the identification and measurement of potential inhalation exposure to engineered nanomaterials ? part a." Journal of Occupational and Environmental Hygiene 7(3): 127-132.
  • Methner, M., C. Beaucham, C. Crawford, L. Hodson and C. Geraci (2012). "Field application of the nanoparticle emission assessment technique (neat): Task-based air monitoring during the processing of engineered nanomaterials (enm) at four facilities." Journal of Occupational and Environmental Hygiene 9(9): 543-555.
  • Meeker, J. D., P. Susi and M. R. Flynn (2007). "Manganese and welding fume exposure and control in construction." Journal of Occupational and Environmental Hygiene 4(12): 943-951.
  • McGarry, P., L. Morawska, L. D. Knibbs and H. Morris (2013). "Excursion guidance criteria to guide control of peak emission and exposure to airborne engineered particles." Journal of Occupational and Environmental Hygiene 10(11): 640-651.
  • Maynard, A. D. and R. J. Aitken (2007). "Assessing exposure to airborne nanomaterials: Current abilities and future requirements." Nanotoxicology 1(1): 26-41.
  • Liu, P. S. and T. Deshler (2003). "Causes of concentration differences between a scanning mobility particle sizer and a condensation particle counter." Aerosol Science & Technology 37(11): 916-923.
  • Lin, M., H. C. Lucas Jr and G. Shmueli (2013). "Research commentary-too big to fail: Large samples and the p-value problem." Information Systems Research 24(4): 906-917.
  • Levy, J. I., T. Dumyahn and J. D. Spengler (2002). "Particulate matter and polycyclic aromatic hydrocarbon concentrations in indoor and outdoor microenvironments in boston, massachusetts." J Expo Anal Environ Epidemiol 12(2): 104-114.
  • Lehnert, M., B. Pesch, A. Lotz, J. Pelzer, B. Kendzia, et al. (2012). "Exposure to inhalable, respirable, and ultrafine particles in welding fume." Annals of Occupational Hygiene 56(5): 557-567.
  • Lee, M.-H., W. McClellan, J. Candela, D. Andrews and P. Biswas (2007). "Reduction of nanoparticle exposure to welding aerosols by modification of the ventilation system in a workplace." Journal of Nanoparticle Research 9(1): 127-136.
  • Lee, J. H., M. Kwon and J. H. Ji (2011). "Exposure assessment of workplaces manufacturing nanosized tio2 and silver." Inhalation Toxicology 23(4): 226-237.
  • Lawrence, I. and K. Lin (1989). "A concordance correlation coefficient to evaluate reproducibility." Biometrics: 255-268.
  • Kwiatkowski, D., P. C. B. Phillips, P. Schmidt and Y. Shin (1992). "Testing the null hypothesis of stationarity against the alternative of a unit root: How sure are we that economic time series have a unit root?" Journal of Econometrics 54(1?3): 159-178.
  • Kuhlbusch, T., C. Asbach, H. Fissan, D. Gohler and M. Stintz (2011). "Nanoparticle exposure at nanotechnology workplaces: A review." Particle and Fibre Toxicology 8(1): 22.
  • Klein Entink, R., W. Fransman and D. Brouwer (2011). "How to statistically analyze nano exposure measurement results: Using an arima time series approach." Journal of Nanoparticle Research 13(12): 6991-7004.
  • Kinney, P. D. and D. Y. Pui (1991). "Use of the elecftrostatic classification method to 0.1 tm srm particles-a feasibiiiy study." Journal of Research of the National Institute of Standards and Technology 96(2).
  • Kaminski, H., M. Beyer, H. Fissan, C. Asbach and T. A. Kuhlbusch (2014). "Measurements of nanoscale tio2 and al2o3 in industrial workplace environments?methodology and results."
  • Joshi, M., B. Sapra, A. Khan, S. Tripathi, P. Shamjad, et al. (2012). "Harmonisation of nanoparticle concentration measurements using grimm and tsi scanning mobility particle sizers." Journal of Nanoparticle Research 14(12): 1-14.
  • ISO (2008). "27687." Nanotechnologies?Terminology and definitions for nano-objects?Nanoparticle, nanofiber and nanoplate.
  • IRSST (2009). Best practices guide to synthetic nanoparticle risk management, Institut de recherche Robert-Sauve en sante et en securite du travail.
  • IFA. (2009). "Criteria for assessment of the effectiveness of protective measures." Retrieved 18 July, 2012, from http://www.dguv.de/ifa/en/fac/nanopartikel/beurteilungsmassstaebe/index.jsp.
  • Hyndman, R. J. and Y. Khandakar (2008). "Automatic time series for forecasting: The forecast package for r." Journal of Statistical Software 27(3).
  • Hyndman, R. J. (2013). "Package ‘forecast’." Retrieved 30 Sep 2014, from http://cran.r-project.org/web/packages/forecast/forecast.pdf.
  • Houseman, E. A., L. Ryan, J. I. Levy and J. D. Spengler (2002). "Autocorrelation in real-time continuous monitoring of microenvironments." Journal of Applied Statistics 29(6): 855-872.
  • Hothorn, T., A. Zeileis and M. A. Zeileis. (2014). "Package ‘lmtest’." Retrieved 30 Sep 2014, from http://cran.r-project.org/web/packages/lmtest/lmtest.pdf.
  • Honnert, B. and M. Grzebyk (2013). "Manufactured nano-objects: An occupational survey in five industries in france." Annals of Occupational Hygiene 58(1): 121-135.
  • Heitbrink, W. A., D. E. Evans, B. K. Ku, A. D. Maynard, T. J. Slavin, et al. (2009). "Relationships among particle number, surface area, and respirable mass concentrations in automotive engine manufacturing." Journal of Occupational and Environmental Hygiene 6(1): 19-31.
  • Heitbrink, W. A., D. E. Evans, B. K. Ku, A. D. Maynard, T. J. Slavin, et al. (2008). "Relationships among particle number, surface area, and respirable mass concentrations in automotive engine manufacturing." Journal of Occupational and Environmental Hygiene 6(1): 19-31.
  • Ham, S., C. Yoon, E. Lee, K. Lee, D. Park, et al. (2012). "Task-based exposure assessment of nanoparticles in the workplace." Journal of Nanoparticle Research 14(9): 1-17.
  • Halperin, W. E. (1996). "The role of surveillance in the hierarchy of prevention." American journal of industrial medicine 29(4): 321-323.
  • Gomez, V., M. Levin, A. T. Saber, S. Irusta, M. Dal Maso, et al. (2014). "Comparison of dust release from epoxy and paint nanocomposites and conventional products during sanding and sawing." Annals of Occupational Hygiene.
  • Fuller, C. H., D. Brugge, P. L. Williams, M. A. Mittleman, J. L. Durant, et al. (2012). "Estimation of ultrafine particle concentrations at near-highway residences using data from local and central monitors." Atmospheric Environment 57: 257-265.
  • Fox, J. and S. Weisberg (2011). An r companion to applied regression, Sage.
  • Fierz, M., S. Weimer and H. Burtscher (2009). "Design and performance of an optimized electrical diffusion battery." Journal of Aerosol Science 40(2): 152-163.
  • Ellenbecker, M. and S. Tsai (2008). "Interim best practices for working with nanoparticles." Center for High-Rate Nanomanufacturing.
  • Donaldson, K., L. Tran, L. A. Jimenez, R. Duffin, D. E. Newby, et al. (2005). "Combustion-derived nanoparticles: A review of their toxicology following inhalation exposure." Particle and Fibre Toxicology 2(1): 10.
  • Demou, E., W. J. Stark and S. Hellweg (2009). "Particle emission and exposure during nanoparticle synthesis in research laboratories." Annals of Occupational Hygiene 53(8): 829-838.
  • Demou, E., P. Peter and S. Hellweg (2008). "Exposure to manufactured nanostructured particles in an industrial pilot plant." Annals of Occupational Hygiene 52(8): 695-706.
  • Debia, M., S. Weichenthal, R. Tardif and A. Dufresne (2012). "Ultrafine particle (ufp) exposures in an aluminium smelter: Soderberg vs. Prebake potrooms." Environment and Pollution 1(1): p2.
  • Dasch, J. and J. D'Arcy (2008). "Physical and chemical characterization of airborne particles from welding operations in automotive plants." Journal of Occupational and Environmental Hygiene 5(7): 444-454.
  • Cowpertwait, P. S. P., Metcalfe, A V. (2009). Introductory time series with r, Springer.
  • Chung, G. (1990). De morbis artificum diatriba, Dongmyungsa.
  • Cena, L. G. and T. M. Peters (2011). "Characterization and control of airborne particles emitted during production of epoxy/carbon nanotube nanocomposites." Journal of Occupational and Environmental Hygiene 8(2): 86-92.
  • Buonanno, G., L. Morawska and L. Stabile (2011). "Exposure to welding particles in automotive plants." Journal of Aerosol Science 42(5): 295-304.
  • Brouwer, D., M. Berges, M. A. Virji, W. Fransman, D. Bello, et al. (2012). "Harmonization of measurement strategies for exposure to manufactured nano-objects; report of a workshop." Annals of Occupational Hygiene 56(1): 1-9.
  • Brouwer, D., B. van Duuren-Stuurman, M. Berges, E. Jankowska, D. Bard, et al. (2009). "From workplace air measurement results toward estimates of exposure? Development of a strategy to assess exposure to manufactured nano-objects." Journal of Nanoparticle Research 11(8): 1867-1881.
  • Brouwer, D. H., B. van Duuren-Stuurman, M. Berges, D. Bard, E. Jankowska, et al. (2013). "Workplace air measurements and likelihood of exposure to manufactured nano-objects, agglomerates, and aggregates." Journal of Nanoparticle Research 15(11): 1-14.
  • Brouwer, D. H. (2012). "Control banding approaches for nanomaterials." Annals of Occupational Hygiene 56(5): 506-514.
  • Box, G. E. and G. M. Jenkins (1976). Time series analysis, control, and forecasting, San Francisco, CA: Holden Day.
  • Beurskens-Comuth, P. A. W. V., K. Verbist and D. Brouwer (2011). "Video exposure monitoring as part of a strategy to assess exposure to nanoparticles." Annals of Occupational Hygiene 55(8): 937-945.
  • Bello, D., B. Wardle, N. Yamamoto, R. Guzman deVilloria, E. Garcia, et al. (2009). "Exposure to nanoscale particles and fibers during machining of hybrid advanced composites containing carbon nanotubes." Journal of Nanoparticle Research 11(1): 231-249.
  • Baveye, P. and M. Laba (2008). "Aggregation and toxicology of titanium dioxide nanoparticles." Environ Health Perspect 116(4): A152.
  • BSI (2007). Nanotechnologies?part 2: Guide to safe handling and disposal of manufactured nanomaterials. PD 6699-2, British Standards Institution.
  • Ashby, H. S. (2002). "Welding fume in the workplace." Professional Safety 47(4): 55-63.
  • Asbach, C., T. Kuhlbusch, H. Kaminski, B. Stahlmecke, S. Plitzko, et al. (2012). Standard operation procedures: For assessing exposure to nanomaterials, following a tiered approach, NanoGEM. 7708: 1006-1015.
  • Asbach, C., H. Kaminski, H. Fissan, C. Monz, D. Dahmann, et al. (2009). "Comparison of four mobility particle sizers with different time resolution for stationary exposure measurements." Journal of Nanoparticle Research 11(7): 1593-1609.
  • Asbach, C., H. Kaminski, D. Von barany, T. A. J. Kuhlbusch, C. Monz, et al. (2012). "Comparability of portable nanoparticle exposure monitors." Annals of Occupational Hygiene 56(5): 606-621.
  • Antonini, J. M., S. Stone, J. R. Roberts, B. Chen, D. Schwegler-Berry, et al. (2007). "Effect of short-term stainless steel welding fume inhalation exposure on lung inflammation, injury, and defense responses in rats." Toxicology and Applied Pharmacology 223(3): 234-245.
  • Afshari, A., U. Matson and L. E. Ekberg (2005). "Characterization of indoor sources of fine and ultrafine particles: A study conducted in a full-scale chamber." Indoor Air 15(2): 141-150.