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Transport of Mineral Dust Into the Arctic in Two Reanalysis Datasets of Atmospheric Composition Cover

Transport of Mineral Dust Into the Arctic in Two Reanalysis Datasets of Atmospheric Composition

Open Access
|Jul 2023

References

  1. Abbatt, JPD, Leaitch, WR, Aliabadi, AA, Bertram, AK, Blanchet, J-P, Boivin-Rioux, A, Bozem, H, Burkart, J, Chang, RYW, Charette, J, Chaubey, JP, Christensen, RJ, Cirisan, A, Collins, DB, Croft, B, Dionne, J, Evans, GJ, Fletcher, CG, Galí, M, Ghahremaninezhad, R, Girard, E, Gong, W, Gosselin, M, Gourdal, M, Hanna, SJ, Hayashida, H, Herber, AB, Hesaraki, S, Hoor, P, Huang, L, Hussherr, R, Irish, VE, Keita, SA, Kodros, JK, Köllner, F, Kolonjari, F, Kunkel, D, Ladino, LA, Law, K, Levasseur, M, Libois, Q, Liggio, J, Lizotte, M, Macdonald, KM, Mahmood, R, Martin, RV, Mason, RH, Miller, LA, Moravek, A, Mortenson, E, Mungall, EL, Murphy, JG, Namazi, M, Norman, A-L, O’Neill, NT, Pierce, JR, Russell, LM, Schneider, J, Schulz, H, Sharma, S, Si, M, Staebler, RM, Steiner, NS, Thomas, JL, von Salzen, K, Wentzell, JJB, Willis, MD, Wentworth, GR, Xu, J-W and Yakobi-Hancock, JD. 2019. Overview paper: New insights into aerosol and climate in the Arctic. Atmos. Chem. Phys., 19: 25272560. DOI: 10.5194/acp-19-2527-2019
  2. Amino, T, Iizuka, Y, Matoba, S, Shimada, R, Oshima, N, Suzuki, T, Ando, T, Aoki, T and Fujita, K. 2021. Increasing dust emission from ice free terrain in southeastern Greenland since 2000. Polar Sci., 27: 100599. DOI: 10.1016/j.polar.2020.100599
  3. Arnalds, O, Dagsson-Waldhauserova, P and Olafsson, H. 2016. The Icelandic volcanic aeolian environment: Processes and impacts – A review. Aeolian Res., 20: 176195. DOI: 10.1016/j.aeolia.2016.01.004
  4. Baldo, C, Formenti, P, Nowak, S, Chevaillier, S, Cazaunau, M, Pangui, E, Di Biagio, C, Doussin, J-F, Ignatyev, K, Dagsson-Waldhauserova, P, Arnalds, O, MacKenzie, AR and Shi, Z. 2020. Distinct chemical and mineralogical composition of Icelandic dust compared to northern African and Asian dust. Atmos. Chem. Phys., 20: 1352113539. DOI: 10.5194/acp-20-13521-2020
  5. Barkan, J and Alpert, P. 2008. Synoptic patterns associated with dusty and non-dusty seasons in the Sahara. Theoretical and Applied Climatology. 94: 153162. DOI: 10.1007/s00704-007-0354-9
  6. Barrie, LA and Barrie, MJ. 1990. Chemical components of lower tropospheric aerosols in the high arctic: Six years of observations. J. Atmos. Chem. 11: 211226. DOI: 10.1007/BF00118349
  7. Benedetti, A, Di Giuseppe, F, Jones, L, Peuch, V-H, Rémy, S and Zhang, X. 2019. The value of satellite observations in the analysis and short-range prediction of Asian dust. Atmos. Chem. Phys., 19: 987998. DOI: 10.5194/acp-19-987-2019
  8. Benedetti, A, Morcrette, J-J, Boucher, O, Dethof, A, Engelen, R, Fisher, M, Flentje, H, Huneeus, N, Jones, L, Kaiser, J, Kinne, S, Mangold, A, Razinger, M, Simmons, A and Suttie, M. 2009. Aerosol analysis and forecast in the European centre for medium-range weather forecasts integrated forecast system: 2. Data assimilation. J. Geophys. Res.-Atmos., 114: D13205. DOI: 10.1029/2008JD011115
  9. Bohlmann, S, Shang, X, Vakkari, V, Giannakaki, E, Leskinen, A, Lehtinen, KEJ, Pätsi, S and Komppula, M. 2021. Lidar depolarization ratio of atmospheric pollen at multiple wavelengths. Atmos. Chem. Phys., 21: 70837097. DOI: 10.5194/acp-21-7083-2021
  10. Bond, TC, Doherty, SJ, Fahey, DW, Forster, PM, Berntsen, T, DeAngelo, BJ, Flanner, MG, Ghan, S, Kärcher, B, Koch, D, Kinne, S, Kondo, Y, Quinn, PK, Sarofim, MC, Schultz, MG, Schulz, M, Venkataraman, C, Zhang, H, Zhang, S, Bellouin, N, Guttikunda, SK, Hopke, PK, Jacobson, MZ, Kaiser, JW, Klimont, Z, Lohmann, U, Schwarz, JP, Shindell, D, Storelvmo, T and Warren SG. 2013. Bounding the role of black carbon in the climate system: A scientific assessment. J. Geophys. Res.-Atmos., 118: 53805552. DOI: 10.1002/jgrd.50171
  11. Bory, AJ-M, Biscaye, PE, Piotrowski, AM and Steffensen, JP. 2003. Regional variability of ice core dust composition and provenance in Greenland, Geochem. Geophys. Geosyst., 4: 1107. DOI: 10.1029/2003GC000627
  12. Bozzo, A, Benedetti, A, Flemming, J, Kipling, Z and Rémy, S. 2020. An aerosol climatology for global models based on the tropospheric aerosol scheme in the Integrated Forecasting System of ECMWF. Geosci. Model Dev., 13: 10071034. DOI: 10.5194/gmd-13-1007-2020
  13. Breider, TJ, Mickley, LJ, Jacob, DJ, Wang, Q, Fisher, JA, Chang, RY-W and Alexander B. 2014. Annual distributions and italics of Arctic aerosol components, aerosol optical depth, and aerosol absorption. J. Geophys. Res.-Atmos., 119: 41074124. DOI: 10.1002/2013JD020996
  14. Buchard, V, Randles, CA, da Silva, AM, Darmenov, A, Colarco, PR, Govindaraju, R, Ferrare, R, Hair, J, Beyersdorf, AJ, Ziemba, LD and Yu, H. 2017. The MERRA-2 Aerosol Reanalysis, 1980 Onward. Part II: Evaluation and Case Studies. J. Climate, 30: 68516872. DOI: 10.1175/JCLI-D-16-0613.1
  15. Bullard, JE, Baddock, M, Bradwell, T, Crusius, J, Darlington, E, Gaiero, D, Gasso, S, Gisladottir, G, Hodgkins, R, McCulloch, R, McKenna-Neuman, C, Mockford, T, Stewart, H and Thorsteinsson, T. 2016. High-latitude dust in the Earth system. Rev. Geophys., 54: 447485. DOI: 10.1002/2016RG000518
  16. Chin, M, Ginoux, P, Kinne, S, Torres, O, Holben, BN, Duncan, BN, Martin, RV, Logan, JA, Higurashi, A and Nakajima, T. 2002. Tropospheric Aerosol Optical Thickness from the GOCART Model and Comparisons with Satellite and Sun Photometer Measurements. J. Atmos. Sci., 59, 461483. DOI: 10.1175/1520-0469(2002)059<;0461:TAOTFT>2.0.CO;2
  17. Costa, A, Meyer, J, Afchine, A, Luebke, A, Günther, G, Dorsey, JR, Gallagher, MW, Ehrlich, A, Wendisch, M, Baumgardner, D, Wex, H and Krämer, M. 2017. Classification of Arctic, midlatitude and tropical clouds in the mixed-phase temperature regime. Atmos. Chem. Phys., 17: 1221912238. DOI: 10.5194/acp-17-12219-2017
  18. Crusius, J. 2021. Dissolved Fe Supply to the Central Gulf of Alaska Is Inferred to Be Derived From Alaskan Glacial Dust That Is Not Resolved by Dust Transport Models. J. Geophys. Res.-Biogeo., 126: e2021JG006323. DOI: 10.1029/2021JG006323
  19. Dagsson-Waldhauserova, P, Arnalds, O and Olafsson, H. 2014. Long-term variability of dust events in iceland (1949–2011). Atmos. Chem. Phys., 14: 1341113422. DOI: 10.5194/acp-14-13411-2014
  20. Dagsson-Waldhauserova, P and Meinander, O. 2019. Editorial: Atmosphere—Cryosphere Interaction in the Arctic, at High Latitudes and Mountains With Focus on Transport, Deposition, and Effects of Dust, Black Carbon, and Other Aerosols. Front. Earth Sci. 7: 337. DOI: 10.3389/feart.2019.00337
  21. Dagsson-Waldhauserova, P, Renard, J-B, Olafsson, HVignelles, D, Berthet, G, Verdier, N and Duverger V. 2019. Vertical distribution of aerosols in dust storms during the Arctic winter. Sci. Rep., 9: 111. DOI: 10.1038/s41598-019-51764-y
  22. Devasthale, A, Tjernström, M and Ali, O. 2011. The vertical distribution of thin features over the Arctic analysed from CALIPSO observations: Part 2: Aerosols. Tellus B, 63: 8695. DOI: 10.1111/j.1600-0889.2010.00517.x
  23. Errera, Q, Bennouna, Y, Schulz, M, Eskes, HJ, Basart, S, Benedictow, A, Blechschmidt, A-M, Chabrillat, S, Clark, H, Cuevas, E, Flentje, H, Hansen, KM, Im, U, Kapsomenakis, J, Langerock, B, Petersen, K, Richter, A, Sudarchikova, N, Thouret, V, Wagner, A, Wang, Y, Warneke, T and Zerefos, C. 2021. Validation report of the CAMS global Reanalysis of aerosols and reactive gases, years 2003–2020, Copernicus Atmosphere Monitoring Service (CAMS) report, CAMS84_2018SC3_D5.1.1-2020.pdf, June 2021. DOI: 10.24380/8gf9-k005
  24. Fan, S-M. 2013. Modeling of observed mineral dust aerosols in the arctic and the impact on winter season low-level clouds. J. Geophys. Res.-Atmos., 118: 1116111174. DOI: 10.1002/jgrd.50842
  25. Flemming, J, Benedetti, A, Inness, A, Engelen, RJ, Jones, L, Huijnen, V, Remy, S, Parrington, M, Suttie, M, Bozzo, A, Peuch, V-H, Akritidis, D and Katragkou, E. 2017. The CAMS interim Reanalysis of Carbon Monoxide, Ozone and Aerosol for 2003–2015. Atmos. Chem. Phys., 17: 19451983. DOI: 10.5194/acp-17-1945-2017
  26. Francis, D, Eayrs, C, Chaboureau, J-P, Mote, T and Holland, DM. 2019. A meandering polar jet caused the development of a Saharan cyclone and the transport of dust toward Greenland. Adv. Sci. Res., 16: 4956. DOI: 10.5194/asr-16-49-2019
  27. Franzén, LG, Hjelmroos, M, Kållberg, P, Brorström-Lunden, E, Juntto, S and Savolainen, A-L. 1994. The ‘yellow snowepisode’ of northern Fennoscandia, March 1991—a case study of long-distance transport of soil, pollen and stable organic compounds. Atmos. Environ. 28: 35873604. DOI: 10.1016/1352-2310(94)00191-M
  28. Gelaro, R, McCarty, W, Suárez, MJ, Todling, R, Molod, A, Takacs, L, Randles, CA, Darmenov, A, Bosilovich, MG, Reichle, R, Wargan, K, Coy, L, Cullather, R, Draper, C, Akella, S, Buchard, V, Conaty, A, da Silva, AM, Gu, W, Kim, G-K, Koster, R, Lucchesi, R, Merkova, D, Nielsen, JE, Partyka, G, Pawson, S, Putman, W, Rienecker, M, Schubert, SD, Sienkiewicz, M and Zhao, B. 2017. The Modern-Era Retrospective Analysis for Research and Applications, Version 2 (MERRA-2). J. Climate, 30: 54195454. DOI: 10.1175/JCLI-D-16-0758.1
  29. Ginoux, P, Chin, M, Tegen, I, Prospero, JM, Holben, B, Dubovik, O, and Lin, SJ. 2001. Italics and distributions of dust 70 aerosols simulated with the GOCART model. J. Geophys. Res.-Atmos. DOI: 10.1029/2000JD000053
  30. Ginoux, P, Prospero, JM, Gill, TE, Hsu, NC and Zhao, M. 2012. Global-scale attribution of anthropogenic and natural dust italics and their emission rates based on MODIS Deep Blue aerosol products. Rev. Geophys., 50: RG3005. DOI: 10.1029/2012RG000388
  31. Groot Zwaaftink, CD, Arnalds, Ó, Dagsson-Waldhauserova, P, Eckhardt, S, Prospero, JM and Stohl, A. 2017. Temporal and spatial variability of Icelandic dust emissions and atmospheric transport. Atmos. Chem. Phys., 17: 1086510878. DOI: 10.5194/acp-17-10865-2017
  32. Groot Zwaaftink, CD, Grythe, H, Skov, H and Stohl, A. 2016. Substantial contribution of northern high-latitude italics to mineral dust in the Arctic. J. Geophys. Res.-Atmos, 121: 1367813697. DOI: 10.1002/2016JD025482
  33. Gueymard, C and Yang, D. 2020. Worldwide validation of CAMS and MERRA-2 reanalysis aerosol optical depth products using 15 years of AERONET observations. Atmos. Environ., 117216. DOI: 10.1016/j.atmosenv.2019.117216
  34. Guieu, C, Loÿe-Pilot, M-D, Ridame, C and Thomas, C. 2002. Chemical characterization of the Saharan dust end-member: Some biogeochemical implications for the western Mediterranean Sea. J. Geophys. Res., 107: 4258. DOI: 10.1029/2001JD000582
  35. Gunnarsson, A, Gardarsson, S, Pálsson, F, Jóhannesson, T and Sveinsson, Ó. 2021. Annual and inter-annual variability and trends of albedo of Icelandic glaciers. The Cryosphere, 15: 547570. DOI: 10.5194/tc-15-547-2021
  36. Hashimoto, Y, Sekine, Y and Otoshi, T. 1992. Atmospheric aluminum from human activities. Atmos. Environ B-Urb., 26: 295300. DOI: 10.1016/0957-1272(92)90005-D
  37. Huang, Z, Huang, J, Hayasaka, T, Wang, S, Zhou, T and Jin, H. 2015. Short-cut transport path for Asian dust directly to the Arctic: a case study. Environ. Res. Lett., 10: 114018. DOI: 10.1088/1748-9326/10/11/114018
  38. Huneeus, N, Schulz, M, Balkanski, Y, Griesfeller, J, Prospero, J, Kinne, S, Bauer, S, Boucher, O, Chin, M, Dentener, F, Diehl, T, Easter, R, Fillmore, D, Ghan, S, Ginoux, P, Grini, A, Horowitz, L, Koch, D, Krol, MC, Landing, W, Liu, X, Mahowald, N, Miller, R, Morcrette, J-J, Myhre, G, Penner, J, Perlwitz, J, Stier, P, Takemura, T and Zender, CS. 2011. Global dust model intercomparison in AeroCom phase I. Atmos. Chem. Phys., 11: 77817816. DOI: 10.5194/acp-11-7781-2011
  39. Indoitu, R, Kozhoridze, G, Batyrbaeva, M, Vitkovskaya, I, Orlovsky, N, Blumberg, D and Orlovsky, L. 2015. Dust emission and environmental changes in the dried bottom of the Aral Sea. Aeolian. Res., 17: 101115. DOI: 10.1016/j.aeolia.2015.02.004
  40. Inness, A, Ades, M, Agustí-Panareda, A, Barré, J, Benedictow, A, Blechschmidt, A-M, Dominguez, JJ, Engelen, R, Eskes, H, Flemming, J, Huijnen, V, Jones, L, Kipling, Z, Massart, S, Parrington, M, Peuch, V-H, Razinger, M, Remy, S, Schulz, M and Suttie, M. 2019. The CAMS reanalysis of atmospheric composition. Atmos. Chem. Phys., 19: 35153556. DOI: 10.5194/acp-19-3515-2019
  41. Kim, M-H, Omar, AH, Tackett, JL, Vaughan, MA, Winker, DM, Trepte, CR, Hu, Y, Liu, Z, Poole, LR, Pitts, MC, Kar, J and Magill, BE. 2018. The CALIPSO version 4 automated aerosol classification and lidar ratio selection algorithm. Atmos. Meas. Tech., 11: 61076135. DOI: 10.5194/amt-11-6107-2018
  42. Klonecki, A, Hess, PEmmons, LK, Smith, L, Orlando, JJ and Blake, D. 2003. Seasonal changes in the transport of pollutants into the Arctic troposphere-model study. J. Geophys. Res.-Atmos., 108: 8367. DOI: 10.1029/2002JD002199
  43. Kok, JF. 2011. A scaling theory for the size distribution of emitted dust aerosols suggests climate models underestimate the size of the global dust cycle. P. Natl. Acad. Sci. USA, 108: 10161021. DOI: 10.1073/pnas.1014798108
  44. Kylling, A, Zwaaftink, CDG and Stohl, A. 2018. Mineral Dust In- stantaneous Radiative Forcing in the Arctic. Geophys. Res. Lett., 45: 42904298. DOI: 10.1029/2018GL077346
  45. Mahowald, NM, Baker, AR, Bergametti, G, Brooks, N, Duce, RA, Jickells, TD, Kubilay, N, Prospero, JM and Tegen, I. 2005. Atmospheric global dust cycle and iron in- puts to the ocean. Global Biogeochem. Cy., 19: GB4025. DOI: 10.1029/2004GB002402
  46. Marticorena, B and Bergametti, G. 1995. Modeling the atmospheric dust cycle: 1. Design of a soil-derived dust emission scheme. J. Geophys. Res., 100: 1641516430. DOI: 10.1029/95JD00690
  47. Meinander, O, Dagsson-Waldhauserova, P, Amosov, P, Aseyeva, E, Atkins, C, Baklanov, A, Baldo, C, Barr, SL, Barzycka, B, Benning, LG, Cvetkovic, B, Enchilik, P, Frolov, D, Gassó, S, Kandler, K, Kasimov, N, Kavan, J, King, J, Koroleva, T, Krupskaya, V, Kulmala, M, Kusiak, M, Lappalainen, HK, Laska, M, Lasne, J, Lewandowski, M, Luks, B, McQuaid, JB, Moroni, B, Murray, B, Möhler, O, Nawrot, A, Nickovic, S, O’Neill, NT, Pejanovic, G, Popovicheva, O, Ranjbar, K, Romanias, M, Samonova, O, Sanchez-Marroquin, A, Schepanski, K, Semenkov, I, Sharapova, A, Shevnina, E, Shi, Z, Sofiev, M, Thevenet, F, Thorsteinsson, T, Timofeev, M, Umo, NS, Uppstu, A, Urupina, D, Varga, G, Werner, T, Arnalds, O and Vukovic Vimic, A. 2022. Newly identified climatically and environmentally significant high-latitude dust italics. Atmos. Chem. Phys., 22: 1188911930. DOI: 10.5194/acp-22-11889-2022
  48. Mitchell, JM. 1957. Visual range in the polar regions with particular reference to the Alaskan Arctic. J. Atmos. Sol.-Terr. Phys., 17: 195211.
  49. Morcrette, J-J, Beljaars, A, Benedetti, A, Jones, L and Boucher, O. 2008. Sea- salt and dust aerosols in the ECMWF IFS model. Geophys. Res. Lett., 35: L24813. DOI: 10.1029/2008GL036041
  50. Morrison, H, de Boer, G, Feingold, G, Harrington, J, Shupe MD and Sulia, K. 2012. Resilience of persistent Arctic mixed-phase clouds. Nat. Geosci., 5: 1117. DOI: 10.1038/ngeo1332
  51. Nguyen, Q, Skov, H, Sørensen, LL, Jensen, B, Grube, AG, Massling, A, Glasius, M and Nøjgaard, JK. 2013. Italic apportionment of particles at Station Nord, North East Greenland during 2008–2010 using COPREM and PMF analysis. Atmos. Chem. Phys., 13: 3549. DOI: 10.5194/acp-13-35-2013
  52. Pacyna, JM and Ottar, B. 1988. Vertical distribution of aerosols in the Norwegian Arctic. Atmos. Environ., 22: 22132222. DOI: 10.1016/0004-6981(88)90131-X
  53. Prenni, AJ, DeMott, PJ, Rogers, DC, Kreidenweis, SM and Mcfarquhar, GM. 2009. Ice nuclei characteristics from M-PACE and their relation toice formation in clouds. Tellus B, 61: 436448. DOI: 10.1111/j.1600-0889.2009.00415.x
  54. Rahn, K, Borys, R and Shaw, G. 1977. The Asian italic of Arctic haze bands. Nature, 268: 713715. DOI: 10.1038/268713a0
  55. Randles, C, da Silva, AM, Buchard, V, Colarco, P, Darmenov, A, Govindaraju, R, Smirnov, A, Holben, B, Ferrare, R, Hair, J, et al. 2017. The MERRA-2 aerosol reanalysis, 1980 onward. Part I: System description and data assimilation evaluation. J. Climate, 30: 68236850. DOI: 10.1175/JCLI-D-16-0609.1
  56. Rémy, S, Kipling, Z, Flemming, J, Boucher, O, Nabat, P, Michou, M, Bozzo, A, Ades, M, Huijnen, V, Benedetti, A, Engelen, R, Peuch, V-H and Morcrette, J-J. 2019. Description and evaluation of the tropospheric aerosol scheme in the European Centre for Medium-Range Weather Forecasts (ECMWF) Integrated Forecasting System (IFS-AER, cycle 45R1). Geosci. Model Dev., 12: 46274659. DOI: 10.5194/gmd-12-4627-2019
  57. Samset, BH, Sand, M, Smith, CJ, Bauer, SE, Forster, PM, Fuglestvedt, JS, Osprey, S and Schleussner, C-F. 2018. Climate impacts from a removal of anthropogenic aerosol emissions. Geophys. Res. Lett., 45: 10201029. DOI: 10.1002/2017GL076079
  58. Sanchez-Marroquin, A, Arnalds, O, Baustian-Dorsi, KJ, Browse, J, Dagsson-Waldhauserova, P, Harrison, AD, Maters, EC, Pringle, KJ, Vergara-Temprado, J, Burke, IT, Mc- Quaid, JB, Carslaw, KS and Murray, BJ. 2020. Iceland is an episodic italic of atmospheric ice-nucleating particles relevant for mixed-phase clouds. Sci. Adv., 6. DOI: 10.1126/sciadv.aba8137
  59. Schepanski, K. 2018. Transport of Mineral Dust and Its Impact on Climate. Geosci., 8: 151. DOI: 10.3390/geosciences8050151
  60. Shi, Y, Liu, X, Wu, M, Zhao, X, Ke, Z and Brown, H. 2022. Relative importance of high-latitude local and long-range-transported dust for Arctic ice-nucleating particles and impacts on Arctic mixed-phase clouds. Atmos. Chem. Phys., 22: 29092935. DOI: 10.5194/acp-22-2909-2022
  61. Si, M, Evoy, E, Yun, J, Xi, Y, Hanna, SJ, Chivulescu, A, Rawlings, K, Veber, D, Platt, A, Kunkel, D, Hoor, P, Sharma, S, Leaitch, WR and Bertram, AK. 2019. Concentrations, composition, and italics of ice-nucleating particles in the Canadian High Arctic during spring 2016. Atmos. Chem. Phys., 19: 30073024. DOI: 10.5194/acp-19-3007-2019
  62. Stein, AF, Draxler, RR, Rolph, GD, Stunder, BJB, Cohen, MD and Ngan, F. 2015. NOAA’s HYSPLIT atmospheric transport and dispersion modeling system. B. Am. Meteorol. Soc., 96: 20592077. DOI: 10.1175/BAMS-D-14-00110.1
  63. Stohl, A. 2006. Characteristics of atmospheric transport into the Arctic troposphere. J. Geophys. Res., 111: D11306. DOI: 10.1029/2005JD006888
  64. Tackett, JL, Winker, DM, Getzewich, BJ, Vaughan, MA, Young, SA and Kar, J. 2018. CALIPSO lidar level 3 aerosol profile product: Version 3 algorithm design. Atmos. Meas. Tech., 11: 41294152. DOI: 10.5194/amt-11-4129-2018
  65. Thomas, MA, Devasthale, A and Kahnert, M. 2022. Marine aerosol properties over the Southern Ocean in relation to the wintertime meteorological conditions. Atmos. Chem. Phys., 22: 119137. DOI: 10.5194/acp-22-119-2022
  66. Thomas, MA, Devasthale, A, Tjernström, M and Ekman, AML. 2019. The relation between aerosol vertical distribution and temperature inversions in the Arctic in winter and spring. Geophys. Res. Lett., 46: 28362845. DOI: 10.1029/2018GL081624
  67. Thomas, N and Nigam, S. 2018. Twentieth-Century Climate Change over Africa: Seasonal Hydroclimate Trends and Sahara Desert Expansion. J. Climate, 31: 33493370. DOI: 10.1175/JCLI-D-17-0187.1
  68. Tjernström, M and Graversen, RG. 2009. The vertical structure of the lower Arctic troposphere analysed from observations and the ERA-40 reanalysis. Q. J. Roy. Meteor. Soc., 135: 431443. DOI: 10.1002/qj.380
  69. Tobo, Y, Adachi, K, DeMott, PJ, Hill, TCJ, Hamilton, DS, Mahowald, NM, Nagatsuka, N, Ohata, S, Uetake, J, Kondo, Y and Koike, M. 2019. Glacially italicd dust as a potentially significant italic of ice nucleating particles. Nat. Geosci., 12: 253258. DOI: 10.1038/s41561-019-0314-x
  70. van der Does, M, Knippertz, P, Zschenderlein, P, Giles Harrison, R and Stuut, J-BW. 2018. The mysterious long-range transport of giant mineral dust particles. Sci. Adv. 4: eaau2768. DOI: 10.1126/sciadv.aau2768
  71. Varga, G, Dagsson-Waldhauserová, P, Gresina, F and Helgadottir, A. 2021. Saharan dust and giant quartz particle transport towards Iceland. Sci. Rep.-UK, 11: 11891. DOI: 10.1038/s41598-021-91481-z
  72. Winker, DM, Pelon, J, Coakley, JA, Ackerman, SA, Charlson, RJ, Colarco, PR, Flamant, P, Fu, Q, Hoff, RM, Kittaka, C, Kubar, TL, Le Treut, H, McCormick, MP, Mégie, G, Poole, L, Powell, K, Trepte, K, Vaughan, MA and Wielicki, BA. 2010. The CALIPSO mission – A global 3D view of aerosols and clouds. B. Am. Meteorol. Soc., 91: 12111229. DOI: 10.1175/2010BAMS3009.1
  73. Winker, DM, Tackett, JL, Getzewich, BJ, Liu, Z, Vaughan, MA and Rogers, RR. 2013. The global 3-D distribution of tropospheric aerosols as characterized by CALIOP. Atmos. Chem. Phys., 13: 33453361. DOI: 10.5194/acp-13-3345-2013
  74. Winker, DM, Vaughan, MA, Omar, A, Hu, Y, Powell, KA, Liu, Z, Hunt, WH and Young, SA. 2009. Overview of the CALIPSO Mission and CALIOP Data Processing Algorithms. J. Atmos. Ocean. Tech, 26: 23102323. DOI: 10.1175/2009JTECHA1281.1
  75. Wu, M, Liu, X, Yu, H, Wang, H, Shi, Y, Yang, K, Darmenov, A, Wu, C, Wang, Z, Luo, T, Feng, Y and Ke, Z. 2020. Understanding processes that control dust spatial distributions with global climate models and satellite observations. Atmos. Chem. Phys., 20: 1383513855. DOI: 10.5194/acp-20-13835-2020
  76. Xie, H, Wang, Z, Luo, T, Yang, K, Zhang, D, Zhou, T, Yang, X, Liu, X and Fu, Q. 2022. Seasonal Variation of Dust Aerosol Vertical Distribution in Arctic Based on Polarized Micropulse Lidar Measurement. Remote Sens., 14: 5581. DOI: 10.3390/rs14215581
  77. Young, SA, Vaughan, MA, Garnier, A, Tackett, JL, Lambeth, JD and Powell, KA. 2018. Extinction and optical depth retrievals for CALIPSO’s Version 4 data release. Atmos. Meas. Tech., 11: 57015727. DOI: 10.5194/amt-11-5701-2018
  78. Zamora, LM, Kahn, RA, Evangeliou, N, Groot Zwaaftink, CD and Huebert, KB. 2022. Comparisons between the distributions of dust and combustion aerosols in MERRA-2, FLEXPART, and CALIPSO and implications for deposition freezing over wintertime Siberia. Atmos. Chem. Phys., 22: 1226912285. DOI: 10.5194/acp-22-12269-2022
  79. Zdanowicz, CM, Zielinski, GA and Wake, CP. 1998. Characteristics of modern atmospheric dust deposition in snow on the Penny Ice Cap, Baffin Island, Arctic Canada. Tellus B, 50: 506520. DOI: 10.3402/tellusb.v50i5.16234
  80. Zhao, A, Ryder, C and Wilcox, L. 2022. How well do the CMIP6 models simulate dust aerosols? Atmos. Chem. Phys., 22: 20952119. DOI: 10.5194/acp-22-2095-2022
  81. Zhao, X, Huang, K, Fu, JS and Abdullaev, SF. 2022. Long-range transport of Asian dust to the Arctic: identification of transport pathways, evolution of aerosol optical properties, and impact assessment on surface albedo changes. Atmos. Chem. Phys., 22: 1038910407. DOI: 10.5194/acp-22-10389-2022
Language: English
Page range: 13 - 32
Submitted on: Nov 29, 2022
Accepted on: Jun 22, 2023
Published on: Jul 18, 2023
Published by: Stockholm University Press
In partnership with: Paradigm Publishing Services

© 2023 Sebastian Böö, Annica M. L. Ekman, Gunilla Svensson, Abhay Devasthale, published by Stockholm University Press
This work is licensed under the Creative Commons Attribution 4.0 License.