Biomedical Engineering Reference
In-Depth Information
McMurry, P.H. (2000): The history of condensation nucleus counters, Aerosol Sci Technol ,
33: 297-322.
McMurry, P.H., Wang, X., Park, K., Ehara, K. (2002): The relationship between mass and
mobility for atmospheric particles: A new technique for measuring particle density,
Aerosol Sci Technol , 36: 227-238.
Meier, R., Clark, K., Riediker, M. (2013): Comparative testing of a miniature diffusion
size classifier to assess airborne ultrafine particles under field conditions, Aerosol Sci
Technol , 47: 22-28.
Miller, A., Frey, G., King, G., Sunderman, C. (2010): A handheld electrostatic precipitator for
sampling airborne particles and nanoparticles, Aerosol Sci Technol , 44: 417-427.
Mills, J.B., Park, J.H., Peters, T.M. (2013): Comparison of the DiSCmini aerosol monitor to a
handheld condensation particle counter and a scanning mobility particle sizer for submi-
crometer sodium chloride and metal aerosols, Ann Occup Hyg , 10: 250-258.
Oberdörster, G., Oberdörster, E., Oberdörster, J. (2005): Nanotoxicology: an emerging dis-
cipline evolving from studies of ultrafine particles, Environ Health Perspect , 113:
823-839.
Petäjä, T., Mordas, G., Manninen, H. Aalto, P.P., Hämeri, K., Kulmala, M. (2006): Detection
efficiency of a water-based condensation particle counter 3785, Aerosol Sci Technol ,
40:1090-1097.
Ristimäki, J., Virtanen, A., Marjamäki, M., Keskinen, J. (2002): On-line measurement of
size distribution and effective density of submicron aerosol particles, J Aerosol Sci , 33:
1541-1557.
Roach, S.A. (1959): Measuring dust exposure using the thermal precipitator in colleries and
foundries, Br J Ind Med , 16: 104-122.
Shimada, M., Han, B., Okuyama, K., Otani, Y. (2002): Bipolar charging of aerosol nanopar-
ticles by a soft x-ray photoionizer, J Chem Eng Jpn , 35: 786-793.
Shin, W.G., Pui, D.Y.H., Fissan, H., Neumann, S., Trampe, A. (2007): Calibration and
numerical simulation of nanoparticle surface area monitor (TSI model 3550 NSAM),
J Nanopart Res , 9: 61-69.
Tammet, H., Mirme, A., Tamm, E. (2002): Electrical aerosol spectrometer of Tartu University.
Atmos. Res , 62: 315-324.
Thayer, D., Koehler, K.A., Marchese, A., Volckens, J. (2011): A personal thermophoretic sam-
pler for airborne nanoparticles, Aerosol Sci Technol , 45: 744-750.
Tsai, C.J., Liu, C.N., Hung, S.M., Chen, S.C., Uang, S.N., Cheng, Y.S., Zhou, Y. (2012): Novel
active personal nanoparticle sampler for the exposure assessment of nanoparticles in
workplaces, Environ Sci Technol , 46: 4546-4552.
Van Landuyt, K., Hellack, B., Van Meerbeek, B., Peumans, M., Hoet, P., Wiemann, M.,
Kuhlbusch, T.A.J., Asbach, C. (2014): Nanoparticle release from dental composites,
Acta Biomater , 10: 365-374.
Wang, S.C., Flagan, R.C. (1990): Scanning electrical mobility spectrometer, Aerosol Sci
Technol , 13: 230-240.
Wiedensohler, A. (1988): An approximation of the bipolar charge distribution for particles in
the submicron size range, J Aerosol Sci , 19: 387-389.
Winklmayr, W., Reischl, G.P., Lindner, A.O., Berner, A. (1991): A new electromobility spec-
trometer for the measurement of aerosol size distributions in the size range from 1 to
1000 nm, J Aerosol Sci , 22: 289-296.
Search WWH ::




Custom Search