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Abstract

Characterization of Physicochemical Properties of Feedlot Dust Ice Crystal Residuals (ICRs) †

1
Department of Life, Earth and Environmental Sciences, West Texas A&M University (WTAMU), Canyon, TX 79016, USA
2
Institute of Meteorology and Climate Research, Karlsruhe Institute of Technology (KIT), 76021 Karlsruhe, Germany
*
Authors to whom correspondence should be addressed.
Presented at the 3rd International Electronic Conference on Atmospheric Sciences, 16–30 November 2020; Available online: https://ecas2020.sciforum.net/.
Environ. Sci. Proc. 2021, 4(1), 23; https://doi.org/10.3390/ecas2020-08438
Published: 15 November 2020
(This article belongs to the Proceedings of The 3rd International Electronic Conference on Atmospheric Sciences)
This study considers how feedlot dust size and composition contribute to atmospheric ice nucleation and the formation of local cloud and precipitation in the Texas Panhandle. Our previous work using Raman micro-spectroscopy revealed that ambient dust sampled at a commercial feedlot is predominantly composed of brown or black carbon, hydrophobic humic acid, water-soluble organics, less soluble fatty acids and those carbonaceous materials mixed with salts and minerals [1]. Organic acids (i.e., long-chain fatty acids) and heat-stable organics were recently found to be acting as efficient ice-nucleating particles (INPs) [2,3]. However, our knowledge regarding which particulate features of feedlot dust trigger immersion freezing at heterogeneous freezing temperatures (i.e., size vs. composition) is still lacking. To improve our knowledge, we conducted single-particle physicochemical analyses of different types of feedlot dust simulants and their ice crystal residual (ICR) samples. Our preliminary results show that aerosol particle composition is dominated by organics, with substantial inclusion of salts (e.g., potassium). This is consistent with our previous study of open-lot livestock feeding facility-emitted aerosol particle composition analyses [1]. The elemental composition analysis revealed some notable differences between aerosol particle samples and residual samples, indicating the inclusion of non-hygroscopic organic particles as ice residuals. Our ICR analysis also revealed a decrease in hygroscopic salt inclusion in residuals, which may imply the importance of immersion rather than condensation freezing in agricultural INPs. The observations of the dry heat-resistant physicochemical properties and predominantly supermicron nature of feedlot-emitted INPs are also highlights of this study. Further research should focus on understanding how organic composition and/or other particulate properties influence ice nucleation. Such an organic INP dataset has long been a missing piece in the study area of cloud microphysics and atmospheric chemistry and is of importance to improve atmospheric models of cloud feedback and determine their impact on regional weather and climate.

Supplementary Materials

The following are available online at www.mdpi.com/10.3390/ecas2020-08438/s1.

References

  1. Hiranuma, N.; Brooks, S.D.; Gramann, J.; Auvermann, B.W. High concentrations of coarse particles emitted from a cattle feeding operation. Atmos. Chem. Phys. 2011, 11, 8809–8823. [Google Scholar] [CrossRef]
  2. DeMott, P.J.; Mason, R.H.; McCluskey, C.S.; Hill, T.C.J.; Perkins, R.J.; Desyaterik, Y.; Bertram, A.K.; Trueblood, J.V.; Grassian, V.H.; Qiu, Y.; et al. Ice nucleation by particles containing long-chain fatty acids of relevance to freezing by sea spray aerosols. Environ. Sci. Process. Impacts 2018, 20, 1559–1569. [Google Scholar] [CrossRef] [PubMed]
  3. Perkins, R.J.; Gillette, S.M.; Hill, T.C.J.; Demott, P.J. The labile nature of ice nucleation by Arizona Test Dust. ACS Earth Space Chem. 2020, 4, 133–141. [Google Scholar] [CrossRef]
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MDPI and ACS Style

Hou, Y.; Hee, P.; Umo, N.S.; Möhler, O.; Hiranuma, N. Characterization of Physicochemical Properties of Feedlot Dust Ice Crystal Residuals (ICRs). Environ. Sci. Proc. 2021, 4, 23. https://doi.org/10.3390/ecas2020-08438

AMA Style

Hou Y, Hee P, Umo NS, Möhler O, Hiranuma N. Characterization of Physicochemical Properties of Feedlot Dust Ice Crystal Residuals (ICRs). Environmental Sciences Proceedings. 2021; 4(1):23. https://doi.org/10.3390/ecas2020-08438

Chicago/Turabian Style

Hou, Yidi, Petrina Hee, Nsikanabasi Silas Umo, Ottmar Möhler, and Naruki Hiranuma. 2021. "Characterization of Physicochemical Properties of Feedlot Dust Ice Crystal Residuals (ICRs)" Environmental Sciences Proceedings 4, no. 1: 23. https://doi.org/10.3390/ecas2020-08438

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