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Original Articles

Field evaluation of a Portable Fine Particle Concentrator (PFPC) for ice nucleating particle measurements

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Pages 1067-1078 | Received 12 Feb 2019, Accepted 27 May 2019, Published online: 13 Jun 2019

References

  • Bigg, E. K. 1953. The formation of atmospheric ice crystals by the freezing of droplets. Q. J. R. Meteorol. Soc 79 (342):510–519. doi: 10.1002/qj.49707934207.
  • Boose, Y., Z. A. Kanji, M. Kohn, B. Sierau, A. Zipori, I. Crawford, G. Lloyd, N. Bukowiecki, E. Herrmann, P. Kupiszewski, M. Steinbacher, and U. Lohmann. 2016a. Ice nucleating particle measurements at 241 K during winter months at 3580 m MSL in the swiss alps. J. Atmos. Sci. 73 (5):2203–2228. doi: 10.1175/JAS-D-15-0236.1.
  • Boose, Y., B. Sierau, M. Isabel Garcia, S. Rodriguez, A. Alastuey, C. Linke, M. Schnaiter, P. Kupiszewski, Z. A. Kanji, and U. Lohmann. 2016b. Ice nucleating particles in the Saharan air layer. Atmos. Chem. Phys. 16 (14):9067–9087. doi: 10.5194/acp-16-9067-2016.
  • Boucher, O., D. Randall, P. Artaxo, C. Bretherton, G. Feingold, P. Forster, V.-M. Kerminen, Y. Kondo, H. Liao, U. Lohmann, P. Rasch, S. K. Satheesh, S. Sherwood, B. Stevens, X. Y. Zhang, and X. Y. Zhan. 2013. Clouds and aerosols. Clim. Chang. 2013 Phys. Sci. Basis. Contrib. Work. Gr. I Fifth Assess. Rep. Intergov. Panel Clim. Chang:571–657.
  • Brands, M., M. Kamphus, T. Bottger, J. Schneider, F. Drewnick, A. Roth, J. Curtius, C. Voigt, A. Borbon, M. Beekmann, A. Bourdon, T. Perrin, and S. Borrmann. 2011. Characterization of a newly developed aircraft-based laser ablation aerosol mass spectrometer (Alabama) and first field deployment in urban pollution plumes over Paris during MEGAPOLI 2009. Aerosol Sci. Technol. 45 (1):46–64. doi: 10.1080/02786826.2010.517813.
  • Budke, C., and T. Koop. 2015. BINARY: an optical freezing array for assessing temperature and time dependence of heterogeneous ice nucleation. Atmos. Meas. Tech. 8 (2):689–703. doi: 10.5194/amt-8-689-2015.
  • Bundke, U., B. Nillius, R. Jaenicke, T. Wetter, H. Klein, and H. Bingemer. 2008. The fast ice nucleus chamber FINCH. Atmos. Res. 90 (2–4):180–186. doi: 10.1016/j.atmosres.2008.02.008.
  • Canagaratna, M. R., J. T. Jayne, J. L. Jimenez, J. D. Allan, M. R. Alfarra, Q. Zhang, T. B. Onasch, F. Drewnick, H. Coe, A. Middlebrook, A. Delia, L. R. Williams, A. M. Trimborn, M. J. Northway, P. F. DeCarlo, C. E. Kolb, P. Davidovits, and D. R. Worsnop. 2007. Chemical and microphysical characterization of ambient aerosols with the aerodyne aerosol mass spectrometer. Mass Spectrom. Rev. 26 (2):185–222. doi: 10.1002/mas.20115.
  • Cziczo, D. J., L. Ladino, Y. Boose, Z. A. Kanji, P. Kupiszewski, S. Lance, S. Mertes, and H. Wex. 2017. Measurements of ice nucleating particles and ice residuals. Meteorol. Monogr. 58:8.1–8.13. doi: 10.1175/AMSMONOGRAPHS-D-16-0008.1.
  • Demokritou, P., T. Gupta, S. Ferguson, and P. Koutrakis. 2003. Development of a high-volume concentrated ambient particles system (CAPS) for human and animal inhalation toxicological studies. Inhal. Toxicol. 15 (2):111–129. doi: 10.1080/08958370304475.
  • DeMott, P. J., T. C. J. Hill, C. S. McCluskey, K. A. Prather, D. B. Collins, R. C. Sullivan, M. J. Ruppel, R. H. Mason, V. E. Irish, T. Lee, C. Y. Hwang, T. S. Rhee, J. R. Snider, G. R. McMeeking, S. Dhaniyala, E. R. Lewis, J. J. B. Wentzell, J. P. D. Abbatt, C. Lee, C. M. Sultana, A. P. Ault, J. L. Axson, M. Diaz Martinez, I. Venero, G. Santos-Figueroa, M. D. Stokes, G. B. Deane, O. L. Mayol-Bracero, V. H. Grassian, T. H. Bertram, A. K. Bertram, B. F. Moffett, and G. D. Franc. 2016. Sea spray aerosol as a unique source of ice nucleating particles. Proc. Natl. Acad. Sci. 113 (21):5797–5803. doi: 10.1073/pnas.1514034112.
  • DeMott, P. J., T. C. J. Hill, M. D. Petters, A. K. Bertram, Y. Tobo, R. H. Mason, K. J. Suski, C. S. Mccluskey, E. J. T. Levin, G. P. Schill, Y. Boose, A. M. Rauker, A. J. Miller, J. Zaragoza, K. Rocci, N. E. Rothfuss, H. P. Taylor, J. D. Hader, C. Chou, J. A. Huffman, U. Pöschl, A. J. Prenni, and S. M. Kreidenweis. 2017. Comparative measurements of ambient atmospheric concentrations of ice nucleating particles using multiple immersion freezing methods and a continuous flow diffusion chamber. Atmos. Chem. Phys. 17 (18):11227–11245. doi: 10.5194/acp-17-11227-2017.
  • DeMott, P. J., A. J. Prenni, X. Liu, S. M. Kreidenweis, M. D. Petters, C. H. Twohy, M. S. Richardson, T. Eidhammer, and D. C. Rogers. 2010. Predicting global atmospheric ice nuclei distributions and their impacts on climate. Proc. Natl. Acad. Sci. U. S. A. 107 (25):11217–11222. doi: 10.1073/pnas.0910818107.
  • Drewnick, F., S. S. Hings, P. DeCarlo, J. T. Jayne, M. Gonin, K. Fuhrer, S. Weimer, J. L. Jimenez, K. L. Demerjian, S. Borrmann, and D. R. Worsnop. 2005. A new Time-of-Flight Aerosol Mass Spectrometer (TOF-AMS)—instrument description and first field deployment. Aerosol Sci. Technol. 39 (7):637–658. doi: 10.1080/02786820500182040.
  • Herrmann, E., E. Weingartner, S. Henne, L. Vuilleumier, N. Bukowiecki, M. Steinbacher, F. Conen, M. Collaud Coen, E. Hammer, Z. Jurányi, U. Baltensperger, and M. Gysel. 2015. Analysis of long-term aerosol size distribution data from Jungfraujoch with emphasis on free tropospheric conditions, cloud influence, and air mass transport. J. Geophys. Res. Atmos. 120 (18):9459–9480. doi: 10.1002/2015JD023660.
  • Hinds, W. C. 1999. Aerosol technology – properties, behaviour, and measurements of airborne particles. 2nd ed. New York: Wiley.
  • Hoose, C., and O. Möhler. 2012. Heterogeneous ice nucleation on atmospheric aerosols: a review of results from laboratory experiments. Atmos. Chem. Phys. 12 (20):9817–9854. doi: 10.5194/acp-12-9817-2012.
  • Kanji, Z. A., L. A. Ladino, H. Wex, Y. Boose, M. Burkert-Kohn, D. J. Cziczo, and M. Krämer. 2017. Overview of ice nucleating particles. Meteorol. Monogr. 58:1.1–1.33. doi: 10.1175/AMSMONOGRAPHS-D-16-0006.1.
  • Korolev, A., G. McFarquhar, P. R. Field, C. Franklin, P. Lawson, Z. Wang, E. Williams, S. J. Abel, D. Axisa, S. Borrmann, J. Crosier, J. Fugal, M. Krämer, U. Lohmann, O. Schlenczek, and M. Wendisch. 2017. Ice formation and evolution in clouds and precipitation: Measurement and modeling challenges. Chapter 5: Mixed-phase clouds: progress and challenges. Meteorol. Monogr. 1724 (Fahrenheit 1724):AMSMONOGRAPHS-D-17-0001.1.
  • Lacher, L., P. J. DeMott, E. J. T. Levin, K. J. Suski, Y. Boose, A. Zipori, E. Herrmann, N. Bukowiecki, M. Steinbacher, E. Gute, J. P. D. Abbatt, U. Lohmann, and Z. A. Kanji. 2018. Background Free-Tropospheric ice nucleating particle concentrations at mixed-phase cloud conditions. J. Geophys. Res. Atmos. 123 (18):10,506–10,525. doi: 10.1029/2018JD028338.
  • Lacher, L., U. Lohmann, Y. Boose, A. Zipori, E. Herrmann, N. Bukowiecki, M. Steinbacher, and Z. A. Kanji. 2017. The horizontal ice nucleation chamber (HINC): INP measurements at conditions relevant for mixed-phase clouds at the high altitude research station Jungfraujoch. Atmos. Chem. Phys. 17 (24):15199–15224. doi: 10.5194/acp-17-15199-2017.
  • Liu, P., P. J. Ziemann, D. B. Kittelson, and P. H. McMurry. 1995. Generating particle beams of controlled dimensions and divergence: I. Theory of particle motion in aerodynamic lenses and nozzle expansions. Aerosol Sci. Technol. 22 (3):293–313. doi: 10.1080/02786829408959748.
  • Loo, B. W., and C. P. Cork. 1988. Development of high efficiency virtual impactors. Aerosol Sci. Technol. 9 (3):167–176. doi: 10.1080/02786828808959205.
  • McCluskey, C. S., T. C. J. Hill, R. S. Humphries, A. M. Rauker, S. Moreau, P. G. Strutton, S. D. Chambers, A. G. Williams, I. McRobert, J. Ward, M. D. Keywood, J. Harnwell, W. Ponsonby, Z. M. Loh, P. B. Krummel, A. Protat, S. M. Kreidenweis, and P. J. DeMott. 2018. Observations of ice nucleating particles over Southern ocean waters. Geophys. Res. Lett. 45 (21):11,989–11,997. doi: 10.1029/2018GL079981.
  • McCluskey, C. S., T. C. J. Hill, F. Malfatti, C. M. Sultana, C. Lee, M. V. Santander, C. M. Beall, K. A. Moore, G. C. Cornwell, D. B. Collins, K. A. Prather, T. Jayarathne, E. A. Stone, F. Azam, S. M. Kreidenweis, and P. J. DeMott. 2017. A dynamic link between ice nucleating particles released in nascent sea spray aerosol and oceanic biological activity during two mesocosm experiments. J. Atmos. Sci. 74 (1):151–166. doi: 10.1175/JAS-D-16-0087.1.
  • Mülmenstädt, J., O. Sourdeval, J. Delanoë, and J. Quaas. 2015. Frequency of occurrence of rain from liquid-, mixed-, and ice-phase clouds derived from A-Train satellite retrievals. Geophys. Res. Lett. 42 (15):6502–6509. doi: 10.1002/2015GL064604.
  • Prenni, A. J., P. J. Demott, D. C. Rogers, S. M. Kreidenweis, G. M. McFarquhar, G. Zhang, and M. R. Poellot. 2009. Ice nuclei characteristics from M-PACE and their relation to ice formation in clouds. Tellus, Ser. B Chem. Phys. Meteorol. 61B (2):436–448. doi: 10.1111/j.1600-0889.2009.00415.x.
  • Prenni, A. J., Y. Tobo, E. Garcia, P. J. DeMott, J. A. Huffman, C. S. McCluskey, S. M. Kreidenweis, J. E. Prenni, C. Pöhlker, and U. Pöschl. 2013. The impact of rain on ice nuclei populations at a forested site in Colorado. Geophys. Res. Lett. 40 (1):227–231. doi: 10.1029/2012GL053953.
  • Pruppacher, H. R., and J. D. Klett. 1997. Mircophysics of clouds and precipitation. 2nd ed. Dordrecht, The Netherlands: Kluwer Academic Publishers,.
  • Rogers, D. C., P. J. DeMott, and S. M. Kreidenweis. 2001. Airborne measurements of tropospheric ice-nucleating aerosol particles in the arctic spring. J. Geophys. Res. Atmos. 106 (D14):15053–15063. doi: 10.1029/2000JD900790.
  • Saarikoski, S., S. Carbone, M. J. Cubison, R. Hillamo, P. Keronen, C. Sioutas, D. R. Worsnop, and J. L. Jimenez. 2014. Evaluation of the performance of a particle concentrator for online instrumentation. Atmos. Meas. Tech. 7 (7):2121–2135.
  • Schmidt, S., J. Schneider, T. Klimach, S. Mertes, L. P. Schenk, P. Kupiszewski, J. Curtius, and S. Borrmann. 2017. Online single particle analysis of ice particle residuals from mountain-top mixed-phase clouds using laboratory derived particle type assignment. Atmos. Chem. Phys. 17 (1):575–594. doi: 10.5194/acp-17-575-2017.
  • Schrod, J., A. Danielczok, D. Weber, M. Ebert, E. S. Thomson, and H. G. Bingemer. 2016. Re-evaluating the frankfurt isothermal static diffusion chamber for ice nucleation. Atmos. Meas. Tech. 9 (3):1313–1324. doi: 10.5194/amt-9-1313-2016.
  • Seinfeld, J. H., and S. N. Pandis. 2006. Atmospheric chemistry and physics: from air pollution to climate change. 2nd ed. New York: Wiley.
  • Sioutas, C., P. Koutrakis, S. T. Ferguson, and R. M. Burton. 1995. Development and evaluation of a prototype ambient particle concentrator for inhalation exposure studies. Inhal. Toxicol. 7 (5):633–644. doi: 10.3109/08958379509014470.
  • Suski, K. J., T. C. J. Hill, E. J. T. Levin, A. Miller, P. J. Demott, and S. M. Kreidenweis. 2018. Agricultural harvesting emissions of ice nucleating particles. Atmos. Chem. Phys. 18 (May):13755–13771: doi: 10.5194/acp-18-13755-2018.
  • Tobo, Y., A. J. Prenni, P. J. Demott, J. A. Huffman, C. S. McCluskey, G. Tian, C. Pöhlker, U. Pöschl, and S. M. Kreidenweis. 2013. Biological aerosol particles as a key determinant of ice nuclei populations in a Forest ecosystem. J. Geophys. Res. Atmos. 118 (17):10100–10110.
  • Vali, G., P. J. DeMott, O. Möhler, and T. F. Whale. 2015. Technical note: a proposal for ice nucleation terminology. Atmos. Chem. Phys. 15 (18):10263–10270. doi: 10.5194/acp-15-10263-2015.
  • Von Der Weiden, S. L., F. Drewnick, and S. Borrmann. 2009. Particle loss calculator – a new software tool for the assessment of the performance of aerosol inlet systems. Atmos. Meas. Tech 2 (2):479–494. doi: 10.5194/amt-2-479-2009.
  • Weingartner, E., S. Nyeki, and U. Baltensperger. 1999. Seasonal and diurnal variation of aerosol size distributions (10<D<750 nm) at a high-alpine site (Jungfraujoch 3580 m asl). J. Geophys. Res. Atmos. 104 (D21):26809–26820.
  • Zellweger, C., J. Forrer, P. Hofer, S. Nyeki, B. Schwarzenbach, E. Weingartner, M. Ammann, and U. Baltensperger. 2003. Partitioning of reactive nitrogen (NOy) and dependence on meteorological conditions in the lower free troposphere. Atmos. Chem. Phys. 3 (3):779–796. doi: 10.5194/acp-3-779-2003.

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