Publications

Our publications are listed below in reverse chronological order. When available in print, papers are accessible through links to the original Journal web pages including the full article information are attached to the doi numbers.

Pre-prints of submitted or in press papers for which a member of the CCC research group is the lead author may be made available upon request. Fulfillment of requests for pre-prints will be decided on a case-by-case basis. Please send requests for pre-prints to Dr. Cameron Homeyer.

* Indicates a CCC student author. All CCC authors are denoted in bold text.

Recent Paper Highlights

Submitted or In Press Papers

  • Mullinix, S. A., B. A. Schenkel, R. N. Mendeke, J. Ruppert, M. C. Brown, C. R. Homeyer, T. Galarneau, and K. M. Wheeler, ????: How does the Precipitation Structure of Landfalling Tropical Cyclones Change due to Extratropical Transition?, Geophys. Res. Lett., in prep
  • De Martin, F., C. R. Homeyer, and D. J. Bodine, ????: Are we under-utilizing single-Doppler radar observations of severe thunderstorms?, J. Appl. Meteor. Climatol., in prep
  • Mendeke, R. N., B. A. Schenkel, S. A. Mullinix, C. R. Homeyer, and A. A. Alford, 2026: A Climatology of Post Landfall Tropical Cyclone Precipitation Structure Change, Geophys. Res. Lett., submitted
  • Qor-el-aine, A., S. Versick, A. Agusti-Panareda, and C. R. Homeyer, ????: Evaluation of stratospheric CO2 transport in global models using DCOTSS aircraft observations: implications for convective injection, Atmos. Chem. Phys., submitted
  • Hartman, C. T., S. M. Hitchcock, C. R. Homeyer, J. C. Furtado, T. P. Lane, and J. D. Heaton, ????: A Climatology of Turbulence Near Thunderstorms, J. Clim., conditionally accepted
  • Delaria, E. R., J. M. St Clair, G. M. Wolfe, T. F. Hanisco, R. Hannun, D. C. Anderson, E. C. Apel, E. L. Atlas, T. P. Bui, T. L. Campos, B. Daube, G. Diskin, B. D. Hall, J. S. Hare, E. J. Hintsa, C. R. Homeyer, R. S. Hornbrook, L. V. Howar, F. L. Moore, P. A. Newman, G. Novak, J. V. Pittman, A. W. Rollins, R. J. Salawitch, S. Schauffler, K. R. Smith, J. B. Smith, W. P. Smith, A. Swanson, T. Thornberry, V. A. Treadaway, E. Waxman, D. M. Wilmouth, K. P. Bowman, and L. L. Pan, ????: Deep Convection of Formaldehyde Precursors Accelerates Photochemistry in the Upper Troposphere and Lower Stratosphere, J. Geophys. Res. Atmos., submitted
  • *Gordon, A. E., W. J. Randel, and C. R. Homeyer, ????: Expansive Stratospheric Impacts from Tropical Cyclones, submitted
  • Howar, L. V., R. J. Salawitch, D. M. Wilmouth, J. S. Hare, J. G. Anderson, E. R. Delaria, J. M. St. Clair, T. F. Hanisco, E. J. Hintsa, B. D. Hall, F. L. Moore, E. L. Atlas, S. Schauffler, K. R. Smith, S. Donnelly, V. A. Treadway, J. B. Smith, D. S. Sayres, J. V. Pittman, B. Daube, T. P. Bui, J. Dean-Day, Y. Li, S. C. Wofsy, C. R. Homeyer, F. N. Keutsch, and K. P. Bowman, ????: Quantification of the Effect of Kinetic Uncertainties on Photochemical Loss of Ozone in the Midlatitude Stratosphere, J. Geophys. Res. Atmos., conditionally accepted
  • Homeyer, C. R., and E. N. Tinney, ????: Observed Long-Term Changes in Global Tropopause Characteristics, Atmos. Chem. Phys., submitted, doi:10.5194/egusphere-2026-3889
  • Wilmouth, D. M., J. S. Hare, L. V. Howar, R. J. Salawitch, E. J. Hintsa, J. B. Smith, D. S. Sayres, J. G. Anderson, J. M. St Clair, E. R. Delaria, R. A. Hannun, T. F. Hanisco, D. J. Czizco, X. Shen, C. R. Homeyer, M. L. Santee, T. P. Bui, P. A. Newman, F. N. Keutsch, and K. P. Bowman, ????: Analysis of inorganic chlorine chemistry in the midlatitude summer stratosphere using aircraft and satellite observations, Atmos. Chem. Phys., submitted, doi:10.5194/egusphere-2026-3480

2026

  1. Sudler, E. E., A. J. Hill, and C. R. Homeyer, 2026: Artificial Intelligence Weather Prediction Model Performance for Hurricane Helene (2024), Wea. Forecasting, 41, 1429–1442 doi:10.1175/WAF-D-25-0175.1
  2. Ryoo, J.-M., K. Bowman, R. Ueyama, C. Liu, C. R. Homeyer, J. Smith, J. M. Dean-Day, and T. P. Bui, 2026: Linkage between atmospheric rivers and overshooting convection and their roles on UTLS water vapor during the North American monsoon: Insight from DCOTSS, J. Geophys. Res. Atmos., 131, e2025JD046298, doi:10.1029/2025JD046298
  3. *Shepherd, C. M., C. R. Homeyer, K. P. Bowman, K.-W. Chang, K. M. Bedka, B. Daube, J. M. Dean-Day, T. F. Hanisco, R. A. Hannun, J. Hare, A. Pandey, J. V. Pittman, D. S. Sayres, J. B. Smith, J. M. St. Clair, D. M. Wilmouth, S. Wofsy, and R. Ueyama, 2026: Evaluating the Impacts of Storm‐Scale and Environmental Factors on Stratosphere‐Troposphere Exchange Associated With Midlatitude Convection, J. Geophys. Res. Atmos., 131, e2025JD045514, doi:10.1029/2025JD045514
  4. Bowman, K. P., F. Keutsch, C. R. Homeyer, D. S. Sayres, J. B. Smith, D. M. Wilmouth, J. G. Anderson, E. L. Atlas, E. Apel, K. Bedka, T. P. Bui, D. Cziczo, B. Daube, E. R. Delaria, J. Dykema, T. F. Hanisco, R. Hannun, B. Hall, E. Hintsa, L. Howar, D. Hurst, J. L. Jacquot, A. Laskin, Y. Li, C. Liu, F. Moore, G. Mullendore, P. Newman, A. K. Pandit, A. D. Rapp, R. J. Salawitch, X. Shen, J. M. St. Clair, R. Ueyama, J.-P. Vernier, and S. C. Wofsy, 2026: The Dynamics and Chemistry of the Summer Stratosphere (DCOTSS) Project, Bull. Amer. Meteorol. Soc., 107, E696–E717, doi:10.1175/BAMS-D-24-0177.1
  5. Sharpe, S., Y. Li, S. Benjemia, F. Rivera-Adorno, T. Olayemi, J. Ese, X. Shen, M. Fraund, R. Moffet, N. N. Lata, Z. Cheng, S. China, C. R. Homeyer, J. Dykema, M. A. Marcus, J. Wang, D. Cziczo, F. Keutsch, and A. Laskin, 2026: Chemical Imaging of Individual Stratospheric Particles Sampled Over North America, Environ. Sci.: Atmos., 6, 47–60, doi:10.1039/D5EA00127G

2025

  1. Fagan, H. E.*, and C. R. Homeyer, 2025: Upper Troposphere Lower Stratosphere Composition Change in Tropical Cyclones: Assessments from 17 Years of Satellite Observations, J. Geophys. Res. Atmos., 130, e2025JD044717, doi:10.1029/2025JD044717
  2. Gordon, A. E.*, and C. R. Homeyer, 2025: Examining Stratosphere-Troposphere Exchange in an Idealized Simulation of a Tropical Cyclone, J. Geophys. Res. Atmos., 130, e2025JD044044, doi:10.1029/2025JD044044
  3. Kim, S.-H., R. Ueyama, R. Atlas, J. Dean-Day, P. Bui, J. B. Smith, A. Podglajen, and C. R. Homeyer, 2025: Atmospheric Turbulence in the Upper Troposphere and Lower Stratosphere from Airborne Observations during the DCOTSS Field Campaign, J. Geophys. Res. Atmos., 130, e2025JD044556, doi:10.1029/2025JD044556
  4. Shen, X., J. L. Jacquot, Y. Li, S. A. L. Sharpe, J. A. Dykema, K. P. Bowman, C. R. Homeyer, F. N. Keutsch, A. Laskin, D. M. Murphy, F. A. Rivera-Adorno, G. P. Schill, J. B. Smith, and D. J. Cziczo, 2025: Stratospheric aerosol perturbation by tropospheric biomass burning and deep convection, Nat. Geosci., 18, doi:10.1038/s41561-025-01821-1
  5. Howar, L. V., R. J. Salawitch, D. M. Wilmouth, E. J. Hintsa, J. S. Hare, T. F. Hanisco, J. M. St. Clair, E. R. Delaria, E. L. Atlas, S. Schauffler, K. R. Smith, J. B. Smith, B. D. Hall, F. L. Moore, J. V. Pittman, B. Daube, T. P. Bui, Y. Li, F. N. Keutsch, D. S. Sayres, S. C. Wofsy, J. Dean-Day, S. Donnelly, V. A. Treadaway, J. G. Anderson, C. R. Homeyer, and K. P. Bowman, 2025: Conditions Necessary for Chlorine Activation in the Midlatitude Summer Lower Stratosphere, J. Geophys. Res. Atmos., 130, e2025JD043786, doi:10.1029/2025JD043786
  6. Christo, G., R. Trapp, S. Nesbitt, L. Di Girolamo, E. C. Wolff, C. R. Homeyer, and Y. Hong, 2025: The Spatial Area and other Attributes of GOES-16 Overshooting Tops as Indicators of Potential Hail, Mon. Wea. Rev., 153, 2121–2137, doi:10.1175/MWR-D-24-0150.1
  7. Homeyer, C. R., M. J. Bunkers, J. T. Allen, and A. M. Murphy, 2025: United States Supercell Storms and Their Severity: A 14-year Radar-Based Climatology, J. Appl. Meteorol. Clim., 64, 959–970, doi:10.1175/JAMC-D-24-0185.1
  8. Coffer, B. E., M. D. Parker, M. C. Coniglio, and C. R. Homeyer, 2025: Supercell environments using GridRad-Severe and the HRRR: Addressing discrepancies between prior tornado climatologies, Wea. Forecasting, 40, 1405–1428, doi:10.1175/WAF-D-24-0251.1
  9. Cooney, J. W., K. M. Bedka, C. A. Liles, and C. R. Homeyer, 2025: Open-Source Automated Software Detection of Severe Storm Signatures Using Geostationary Imagery, Artif. Intell. Earth Syst., 4, e240037, doi:10.1175/AIES-D-24-0037.1
  10. Itterly, K. F., K. M. Bedka, C. R. Homeyer, and K. Khlopenkov, 2025: Quantifying Tropopause-Overshooting Volume from Satellite and Radar Observations during DCOTSS 2021 and 2022 Campaigns, J. Geophys. Res. Atmos., 130, doi:10.1029/2024JD042418
  11. Hitchcock, S. M., T. P. Lane, W. Deierling, R. D. Sharman, S. B. Trier, and C. R. Homeyer, 2025: Spatial Patterns of Turbulence near Thunderstorms, Bull. Amer. Meteorol. Soc., in press, doi:10.1175/BAMS-D-23-0142.1

2024

  1. Schmidt, T. G., A. McGovern, J. T. Allen, C. K. Potvin, R. J. Chase, C. M. Wiley, W. R. McGovern-Fagg, M. L. Flora, C. R. Homeyer, and J. K. Williams, 2024: Gridded Severe Hail Nowcasting Using 3D U-Nets, Lightning Observations, and the Warn-on-Forecast System, Artif. Intell. Earth Syst., 3, e240026, doi:10.1175/AIES-D-24-0026.1
  2. Murphy, K. M., J. R. Mecikalski, K. M. Bedka, J. W. Cooney, and C. R. Homeyer, 2024: Characterization of Microphysical Signatures Within Above Anvil Cirrus Plumes in GOES-16 Infrared and Visible Imagery, J. Geophys. Res. Atmos., 129, doi:10.1029/2024JD041076
  3. Sayres, D. S., J. B. Smith, D. M. Wilmouth, A. Pandey, C. R. Homeyer, K. P. Bowman, and J. G. Anderson, 2024: Using the NAMA as a Natural Integrator to Quantify the Convective Contribution to Lower Stratospheric Water Vapor Over North America, J. Geophys. Res. Atmos., 129, doi:10.1029/2024JD041641
  4. Tinney, E. N.*, C. R. Homeyer, K. M. Bedka, and B. R. Scarino, 2024: The Response of Tropopause-Overshooting Convection over North America to Climate Change, J. Clim., 37, 6183–6200, doi:10.1175/JCLI-D-23-0745.1
  5. Homeyer, C. R., A. E. Gordon*, J. B. Smith, R. Ueyama, D. M. Wilmouth, D. S. Sayres, J. Hare, A. Pandey, T. F. Hanisco, J. M. Dean-Day, R. Hannun, and J. M. St. Clair, 2024: Stratospheric Hydration Processes in Tropopause-Overshooting Convection Revealed by Tracer-Tracer Correlations from the DCOTSS Field Campaign, J. Geophys. Res. Atmos., 129, doi:10.1029/2024JD041340
  6. Sherman, Z., M. Grover, R. Jackson, S. Collis, J. O’Brien, C. R. Homeyer, R. J. Chase, T. J. Lang, D. M. Stechman, A. Sockol, K. Muehlbauer, J. Thielen, A. Theisen,  S. Gardner, and D. Michelson, 2024: Effective Visualization of Radar Data for Users Impacted by Color Vision Deficiency, Bull. Amer. Meteorol. Soc., 105, E1479–E1489, doi:10.1175/BAMS-D-23-0056.1
  7. Gordon, A. E.*, C. R. Homeyer, J. B. Smith, R. Ueyama, J. M. Dean-Day, E. L. Atlas, K. Smith, J. V. Pittman, D. S. Sayres, D. M. Wilmouth, A. Pandey, J. M. St. Clair, T. F. Hansico, J. Hare, R. A. Hannun, S. Wofsy, B. C. Daube, and S. Donnelly, 2024: Airborne observations of upper troposphere and lower stratosphere composition change in active convection producing above-anvil cirrus plumes, Atmos. Chem. Phys., 24, 7591–7608, doi:10.5194/acp-24-7591-2024
  8. Chase, R. J., A. McGovern, C. R. Homeyer, P. Marinescu, and C. K. Potvin, 2024: Machine Learning Estimation of Maximum Vertical Velocity from Radar, Artif. Intell. Earth Syst., 3, 230095,  doi:10.1175/AIES-D-23-0095.1

2023

  1. Tinney, E. N.*, and C. R. Homeyer, 2023: Climatology, sources, and transport characteristics of observed water vapor extrema in the lower stratosphere, Atmos. Chem. Phys., 23, 14375–14392, doi:10.5194/acp-23-14375-2023
  2. Murphy, A. M.*, and C. R. Homeyer, 2023: Comparison of Radar-Observed Tornadic and Nontornadic MCS Cells using Probability Matched Means, J. Appl. Meteorol. Climatol., 62, 1371–1388, doi:10.1175/JAMC-D-23-0070.1
  3. Homeyer, C. R., J. B. Smith, K. M. Bedka, K. P. Bowman, D. M. Wilmouth, R. Ueyama, J. Dean-Day, J. M. St. Clair, R. Hannun, J. Hare, A. Pandey, D. S. Sayres, T. F. Hanisco, A. E. Gordon*, and E. N. Tinney*, 2023: Extreme Altitudes of Stratospheric Hydration by Midlatitude Convection Observed During the DCOTSS Field Campaign, Geophys. Res. Lett., 50, doi:10.1029/2023GL104914
  4. Auth, R. M.*, and C. R. Homeyer, 2023: Targeted Balloon Observations of Stratosphere-To-Troposphere Transport From a Mesoscale Convective System, J. Geophys. Res. Atmos., 128, doi:10.1029/2023JD039139
  5. Homeyer, C. R., E. M. Murillo*, and M. R. Kumjian, 2023: Relationships Between 10 Years of Radar-Observed Supercell Characteristics and Hail Potential, Mon. Wea. Rev., 151, 2609–2632, doi:10.1175/MWR-D-23-0019.1
  6. Scarino, B., K. Itterly, K. Bedka, C. R. Homeyer, J. Allen, S. Bang, and D. Cecil, 2023: Deriving Severe Hail Likelihood from Satellite Observations and Model Reanalysis Parameters using a Deep Neural Network, Artif. Intell. Earth Syst., 2, 220042, doi:10.1175/AIES-D-22-0042.1
  7. Murphy, A. M.*, C. R. Homeyer, and K. Q. Allen*, 2023: Development and Investigation of GridRad-Severe, a Multi-Year Severe Event Radar Database, Mon. Wea. Rev., 151, 2257–2277, doi:10.1175/MWR-D-23-0017.1
  8. Cuchiara, G., A. Fried, M. Barth, M. Bela, C. R. Homeyer, J. Walega, P. Weibring, D. Richter, S. Woods, A. Beyersdorf, T. P. Bui, and J. Dean-Day, 2023: Effect of Marine and Land Convection on Wet Scavenging of Ozone Precursors Observed during a SEAC4RS case study, J. Geophys. Res. Atmos., 128, doi:10.1029/2022JD037107
  9. Rios-Berrios, R., N. Sakaeda, H. J. Jimenez-González, A. Nieves-Jimenez, Y. Zayas, E. Martin, S.-N. Wu, C. R. Homeyer, and E. Rodríguez, 2023: Observing the Diurnal Cycle of Coastal Rainfall over Western Puerto Rico in Collaboration with University of Puerto Rico Students, Bull. Amer. Meteorol. Soc., 104, E305–E324, doi:10.1175/BAMS-D-21-0322.1

2022

  1. Zhang, Y., J. Fan, M. Shrivastava, C. R. Homeyer, Y. Wang, and J. Seinfeld, 2022: Notable Impacts of Wildfires in the Western US on Weather Hazards in the Central US, Proc. Nat. Acad. Sci., 119, doi:10.1073/pnas.2207329119
  2. Tinney, E. N.*, C. R. Homeyer, L. Elizalde*, D. F. Hurst, A. M. Thompson, R. M. Stauffer, H. Vömel, and H. B. Selkirk, 2022: A Modern Approach to Stability-Based Definition of the Tropopause, Mon. Wea. Rev., 150, 3151–3174, doi:10.1175/MWR-D-22-0174.1
  3. Murillo, E. M.*, and C. R. Homeyer, 2022: What Determines Above-Anvil Cirrus Plume Infrared Temperature?, J. Atmos. Sci., 79, 3181–3194, doi:10.1175/JAS-D-22-0080.1
  4. Gordon, A. E.*, and C. R. Homeyer, 2022: Sensitivities of Cross-Tropopause Transport in Midlatitude Overshooting Convection to the Lower Stratosphere Environment, J. Geophys. Res. Atmos., 127, doi:10.1029/2022JD036713
  5. Bell, J. R., K. M. Bedka, C. J. Schultz, A. L. Molthan, S. D. Bang, J. Glisan, T. Ford, W. S. Lincoln, L. A. Schultz, A. M. Melancon, E. F. Wisinski, K. Itterly, C. R. Homeyer, D. J. Cecil, C. Cogil, E. Lenning, R. Donavon, and R. Wolf, 2022: Satellite-Based Characterization of Convection and Impacts from the Catastrophic 10 August 2020 Midwest U.S. Derecho, Bull. Amer. Meteorol. Soc., 103, E1172–E1196, doi:10.1175/BAMS-D-21-0023.1
  6. Tang, S., S. Xie, Z. Guo, S.-Y. Hong, B. Khouider, D. Klocke, M. Köhler, M.-S. Koo, P. M. Krishna, V. E. Larson, S. Park, P. Vaillancourt, Y.-C. Wang, J. Yang, C. L. Daleu, C. R. Homeyer, R. Jones, N. Malap, R. Neggers, T. Prabhakaran, E. Ramirez, C. Schumacher, C. Tao, P. Bechtold, H.-Y. Ma, D. Neelin, and X. Zeng, 2022: Long-Term Single-Column Model Intercomparison on the Diurnal Cycle of Precipitation Over Midlatitude and Tropical Land, Q. J. R. Meteorol. Soc., 148, 641–669, doi:10.1002/qj.4222

2021

  1. Phoenix, D. B.*, and C. R. Homeyer, 2021: Simulated Impacts of Tropopause-Overshooting Convection on the Chemical Composition of the Upper Troposphere and Lower Stratosphere, J. Geophys. Res. Atmos., 126, doi:10.1029/2021JD034568
  2. Brauer, N. S., J. B. Basara, P. E. Kirstetter, R. A. Wakefield, C. R. Homeyer, J. Yoo, M. Shepherd, and J. A. Santanello, 2021: The Inland Maintenance and Re-intensification of Tropical Storm Bill (2015) Part 2: Precipitation Microphysics, J. Hydrometeor., 22, 2695–2711, doi:10.1175/JHM-D-20-0151.1
  3. Jeong, J.-H., J. Fan, and C. R. Homeyer, 2021: Spatial and temporal trends and variabilities of hailstones in the United States Northern Great Plains and their possible attributions, J. Clim., 34, 6819–6840, doi:10.1175/JCLI-D-20-0245.1
  4. Homeyer, C. R., and K. P. Bowman, 2021: A 22-Year Evaluation of Convection Reaching the Stratosphere over the United States, J. Geophys. Res. Atmos., 126, doi:10.1029/2021JD034808
  5. Mecikalski, J. R., T. N. Sandmæl*, E. M. Murillo*, C. R. Homeyer, K. M. Bedka, J. M. Apke, and C. P. Jewett, 2021: A Random Forest Model to Assess Predictor Importance and Nowcast Severe Storms using High-Resolution Radar–GOES Satellite–Lightning Observations, Mon. Wea. Rev., 149, 1725–1746, doi:10.1175/MWR-D-19-0274.1
  6. Eddy, A. J., D. R. MacGorman, C. R. Homeyer, and E. Williams, 2021: Intraregional Comparisons of the Near-Storm Environments of Storms Dominated by Frequent Positive versus Negative Cloud-to-Ground Flashes, Earth and Space Science, 8, doi:10.1029/2020EA001141
  7. Murillo, E. M.*, C. R. Homeyer, and J. T. Allen, 2021: A 23-Year Severe Hail Climatology using GridRad MESH Observations, Mon. Wea. Rev., 149, 945–958,  doi:10.1175/MWR-D-20-0178.1
  8. Lin, Y., J. Fan, J.-H. Jeong, Y. Zhang, C. R. Homeyer, and J. Wang, 2021: Urbanization-induced land and aerosol impacts on storm propagation and hail characteristics, J. Atmos. Sci., 78, 925–947, doi:10.1175/JAS-D-20-0106.1
  9. Tinney, E. N.*, and C. R. Homeyer, 2021: A 13-year Trajectory-Based Analysis of Convection-Driven Changes in Upper Troposphere Lower Stratosphere Composition over the United States, J. Geophys. Res. Atmos., 126,  doi:10.1029/2020JD033657
  10. Homeyer, C. R., A. O. Fierro, B. A. Schenkel, A. C. Didlake, G. M. McFarquhar, J. Hu, A. V. Ryzhkov, J. B. Basara, A. M. Murphy*, and J. Zawislak, 2021: Polarimetric Signatures in Landfalling Tropical Cyclones, Mon. Wea. Rev., 149, 131–154, doi:10.1175/MWR-D-20-0111.1

2020

  1. Homeyer, C. R., T. N. Sandmæl*, C. K. Potvin, and A. M. Murphy*, 2020: Distinguishing Characteristics of Tornadic and Nontornadic Supercell Storms from Composite Mean Analyses of Radar Observations, Mon. Wea. Rev., 148, 5015–5040, doi:10.1175/MWR-D-20-0136.1
  2. Lagerquist, R., A. McGovern, C. R. Homeyer, D. J. Gagne II, and T. Smith, 2020: Deep Learning on Three-Dimensional Multiscale Data for Next-hour Tornado Prediction, Mon. Wea. Rev., 148, 2837–2861, doi:10.1175/MWR-D-19-0372.1
  3. Cuchiara, G. C., A. Fried, M. C. Barth, M. Bela, C. R. Homeyer, B. Gaubert, J. Walega, P. Weibring, D. Richter, P. Wennberg, J. Crounse, M. Kim, G. Diskin, T. M. Hanisco, G. M. Wolfe, A. Beyersdorf, J. Peischl, I. B. Pollack, J. M. St. Clair, S. Woods, S. Tanelli, T. P. Bui, J. Dean-Day, G. Huey, and N. Heath, 2020: Vertical Transport, Entrainment, and Scavenging Processes Affecting Trace Gases in a Modeled and Observed SEAC4RS Case Study, J. Geophys. Res. Atmos., 125, doi:10.1029/2019JD031957
  4. Martin, E. R., C. R. Homeyer, R. A. McKinzie, K. M. McCarthy, and T. Xian, 2020: Regionally Varying Assessments of Upper-Level Tropical Width in Reanalyses and CMIP5 Models Using a Tropopause Break Metric, J. Climate, 33, 5885–5903, doi:10.1175/JCLI-D-19-0629.1
  5. Phoenix, D. B.*, C. R. Homeyer, M. C Barth, and S. B. Trier, 2020: Mechanisms Responsible for Stratosphere-to-Troposphere Transport around a Mesoscale Convective System Anvil, J. Geophys. Res. Atmos., 125, doi:10.1029/2019JD032016
  6. Jeong, J-H., J. Fan, C. R. Homeyer, and Z. Hou, 2020: Understanding Hailstone Temporal Variability and Contributing Factors over the United States Southern Great Plains, J. Clim., 33, 3947–3966, doi:10.1175/JCLI-D-19-0606.1
  7. Brauer, N. S., J. B. Basara, C. R. Homeyer, G. M. McFarquhar, and P. E. Kirstetter, 2020: Quantifying Precipitation Efficiency and Drivers of Excessive Precipitation in Post-Landfall Hurricane Harvey, J. Hydrometeor., 21, 433–452, doi:10.1175/JHM-D-19-0192.1
  8. Starzec, M., G. L. Mullendore, and C. R. Homeyer, 2020: Retrievals of Convective Detrainment Heights Using Ground-based Radar Observations, J. Geophys. Res. Atmos., 125, doi:10.1029/2019JD031164
  9. Jeyaratnam, J., J. F. Booth, C. M. Naud, Z. J. Luo, and C. R. Homeyer, 2020: Upright convection in extratropical cyclones: A survey using ground-based radar data over the United States, Geophys. Res. Lett., 47, doi:10.1029/2019GL086620

2019

  1. Tang, B. H., V. A. Gensini, and C. R. Homeyer, 2019: Trends in United States large hail environments and observations, npj Climate and Atmospheric Science 2, 45, doi:10.1038/s41612-019-0103-7
  2. Sandmæl, T. N.*, C. R. Homeyer, K. M. Bedka, J. M. Apke, J. R. Mecikalski, and K. Khlopenkov, 2019: Using Remote Sensing Observations to Identify Significantly Severe and Potentially Tornadic Storms, J. Appl. Meteor. Climatol., 58, 2569–2590, doi:10.1175/JAMC-D-18-0241.1
  3. McGovern, A., R. A. Lagerquist, D. J. Gagne, G. E. Jergensen, K. L. Elmore, C. R. Homeyer, and T. Smith, 2019: Making the black box more transparent: Understanding the physical implications of machine learning, Bull. Amer. Meteorol. Soc., 100, 2175–2199, doi:10.1175/BAMS-D-18-0195.1
  4. Zhang, Y., J. Fan, T. Logan, Z. Li, and C. R. Homeyer, 2019: Wildfire impact on environmental thermodynamics and severe convective storms, Geophys. Res. Lett., 46, 10,082–10,093, doi:10.1029/2019GL084534
  5. Feng, Z., R. A. Houze Jr., L. R. Leung, F. Song, J. C. Hardin, J. Wang, W. I. Gustafson Jr., and C. R. Homeyer, 2019: Spatiotemporal Characteristics and Large-scale Environments of Mesoscale Convective Systems East of the Rocky Mountains, J. Climate, 32, 7303–7328, doi:10.1175/JCLI-D-19-0137.1
  6. Song, F., Z. Feng, L. R. Leung, R. A. Houze Jr., J. Wang, J. Hardin, and C. R. Homeyer, 2019: Contrasting Spring and Summer Large-Scale Environments Associated with Mesoscale Convective Systems over the U.S. Great Plains, J. Climate, 32, 6749–6767, doi:10.1175/JCLI-D-18-0839.1
  7. Xian, T., and C. R. Homeyer, 2019: Global tropopause altitudes in radiosondes and reanalyses, Atmos. Chem. Phys., 19, 5661–5678, doi:10.5194/acp-19-5661-2019
  8. Murillo, E. M.*, and C. R. Homeyer, 2019: Severe Hail Fall and Hail Storm Detection using Remote Sensing Observations, J. Appl. Meteor. Climatol., 58, 947–970, doi:10.1175/JAMC-D-18-0247.1

2018

  1. Apke, J. M., J. R. Mecikalski, K. Bedka, E. W. McCaul, C. R. Homeyer, and C. P. Jewett, 2018: Relationships Between Deep Convection Updraft Characteristics and Satellite-Based Super Rapid Scan Mesoscale Atmospheric Motion Vector-Derived Flow, Mon. Wea. Rev., 146, 3461–3480, doi:10.1175/MWR-D-18-0119.1
  2. Handler, S. L.*, and C. R. Homeyer, 2018: Radar-Observed Bulk Microphysics of Midlatitude Leading-Line Trailing-Stratiform Mesoscale Convective Systems, J. Appl. Meteor. Climatol., 57, 2231–2248, doi:10.1175/JAMC-D-18-0030.1
  3. Bedka, K., E. M. Murillo*, C. R. Homeyer, B. Scarino, and H. Mersiovsky, 2018: The Above Anvil Cirrus Plume: The Most Definitive Indicator of a Severe Storm in Visible and Infrared Satellite Imagery, Wea. Forecasting, 33, 1159–1181, doi:10.1175/WAF-D-18-0040.1
  4. Bela, M. M., M. C. Barth, O. B. Toon, A. Fried, C. Ziegler, K. A. Cummings, Y. Li, K. E. Pickering, C. R. Homeyer, H. Morrison, Q. Yang, R. M. Mecikalski, L. Carey, M. I. Biggerstaff, D. P. Betten, and A. A. Alford, 2018: Effects of Scavenging, Entrainment, and Aqueous Chemistry on Peroxides and Formaldehyde in Deep Convective Outflow Over the Central and Southeast United States, J. Geophys. Res. Atmos., 123, 7594–7614, doi:10.1029/2018JD028271
  5. Cooney, J. W., K. P. Bowman, C. R. Homeyer, and T. M. Fenske, 2018: Ten-Year Analysis of Tropopause-Overshooting Convection using GridRad Data, J. Geophys. Res. Atmos., 123, 329–343, doi:10.1002/2017JD027718

2017

  1. Smith, J. B., D. M. Wilmouth, K. M. Bedka, K. P. Bowman, C. R. Homeyer, J. A. Dykema, M. R. Sargent, C. Clapp, S. S. Leroy, D. S. Sayres, J. M. Dean-Day, T. P. Bui, and J. G. Anderson, 2017: A Case Study of Convectively Sourced Water Vapor Observed in the Overworld Stratosphere over the United States, J. Geophys. Res. Atmos., 122, 9529–9554, doi:10.1002/2017JD026831
  2. Phoenix, D. B.*, C. R. Homeyer, and M. C. Barth, 2017: Sensitivity of simulated convection-driven stratosphere-troposphere exchange in WRF-Chem to the choice of physical and chemical parameterization, Earth and Space Science, 4, 454–471, doi:10.1002/2017EA000287
  3. Anderson, J. G., D. K. Weisenstein, K. P. Bowman, C. R. Homeyer, J. B. Smith, D. M. Wilmouth, D. S. Sayres, J. E. Klobas, S. S. Leroy, J. A. Dykema, and S. C. Wofsy, 2017: Control of Stratospheric Ozone Over the U.S. in Summer: Analyses Linking Temperature, Convective Injection Heights and Frequency, Sulfate and Chlorine Radical Catalysis, Proc. Nat. Acad. Sci., 114, E4905–E4913, doi:10.1073/pnas.1619318114
  4. Sorooshian, A., T. Shingler, E. Crosbie, M. C. Barth, C. R. Homeyer, P. Campuzano-Jost, D. A. Day, J. L. Jimenez, K. L. Thornhill, L. D. Ziemba, D. R. Blake, and A. Fried, 2017: Contrasting aerosol optical and hygroscopic properties in the inflow and outflow of deep convective storms: Analysis of airborne data from DC3, J. Geophys. Res. Atmos., 122, 4565–4577, doi:10.1002/2017JD026638
  5. Homeyer, C. R., J. D. McAuliffe*, and K. M. Bedka, 2017: On the Development of Above-Anvil Cirrus Plumes in Extratropical Convection, J. Atmos. Sci., 74, 1617–1633, doi:10.1175/JAS-D-16-0269.1
  6. Boothe, A. C.*, and C. R. Homeyer, 2017: Global large-scale stratosphere–troposphere exchange in modern reanalyses, Atmos. Chem. Phys., 17, 5537–5559, doi:10.5194/acp-17-5537-2017
  7. Starzec, M., C. R. Homeyer, and G. L. Mullendore, 2017: Storm Labeling in 3 Dimensions (SL3D): A Volumetric Radar Echo and Dual-Polarization Updraft Classification Algorithm, Mon. Wea. Rev., 145, 1127–1145, doi:10.1175/MWR-D-16-0089.1
  8. Fujiwara, M., J. S. Wright, G. L. manney, L. J. Gray, J. Anstey, T. Birner, S. Davis, E. P. Gerber, V. L. Harvey, M. I. Hegglin, C. R. Homeyer, J. A. Knox, K. Krüger, A. Lambert, C. S. Long, P. Martineau, A. Molod, B. M. Monge-Sanz, M. L. Santee, S. Tegtmeier, S. Chabrillat, D. G. H. Tan, D. R. Jackson, S. Polavarapu, G. P. Compo, R. Dragani, W. Ebisuzaki, Y. Harada, C. Kobayashi, W. McCarty, K. Onogi, S. Pawson, A. Simmons, K. Wargan, J. S. Whitaker, and C-Z. Zou, 2017: Introduction to the SPARC Reanalysis Intercomparison Project (S-RIP) and overview of the reanalysis systems, Atmos. Chem. Phys., 17, 1417–1452, doi:10.5194/acp-17-1417-2017
  9. Pan, L. L., E. L. Atlas, R. J. Salawitch, S. B. Honomichl, J. F. Bresch, W. J. Randel, E. C. Apel, R. S. Hornbrook, A. J. Weinheimer, D. C. Anderson, S. J. Andrews, S. Baidar, S. P. Beaton, T. L. Campos, L. J. Carpenter, D. Chen, B. Dix, V. Donets, S. R. Hall, T. F. Hanisco, C. R. Homeyer, L. G. Huey, J. B. Jensen, L. Kaser, D. E. Kinnison, T. K. Koenig, J-F. Lamarque, C. Liu, J. Luo, Z. J. Luo, D. D. Montzka, J. M. Nicely, R. B. Pierce, D. D. Riemer, T. Robinson, P. Romashkin, A. Saiz-Lopez, S. Schauffler, O. Shieh, M. H. Stell, G. Vaughan, K. Ullmann, R. Volkamer, and G. Wolfe, 2017: The Convective Transport of Active Species in the Tropics (CONTRAST) Experiment, Bull. Amer. Meteorol. Soc., 98, 106–128, doi:10.1175/BAMS-D-14-00272.1

2016

  1. Tian, J., X. Dong, B. Xi, J. Wang, C. R. Homeyer, G. M. McFarquhar, and J. Fan, 2016: Retrievals of ice cloud microphysical properties of deep convective systems using radar measurements, J. Geophys. Res. Atmos., 121, 10,820–10,839, doi:10.1002/2015JD024686
  2. Barth, M. C., M. M. Bela, A. Fried, P. O. Wennberg, J. D. Crounse, J. M. St. Clair, N. J. Blake, D. R. Blake,  C. R. Homeyer, W. H. Brune, L. Zhang, J. Mao, X. Ren, T. B. Ryerson, I. B. Pollack, J. Peischl, R. C. Cohen, B. A. Nault, L. G. Huey, X. Liu, and C. A. Cantrell, 2016: Convective Transport and Scavenging of Peroxides by Thunderstorms Observed over the Central U.S. during DC3, J. Geophys. Res. Atmos., 121, 4272–4295, doi:10.1002/2015JD024570
  3. Bela, M. M., M. C. Barth, O. B. Toon, A. Fried, C. R. Homeyer, H. Morrison, K. A. Cummings, Y. Li, K. E. Pickering, D. Allen, Q. Yang, P. O. Wennberg, J. D. Crounse, J. M. St. Clair, A. P. Teng, D. O’Sullivan, L. G. Huey, D. Chen, X. Liu, D. Blake, N. Blake, E. Apel, R. S. Hornbrook, F. Flocke, T. Campos, and G. Diskin, 2016: Wet Scavenging of Soluble Gases in DC3 Deep Convective Storms Using WRF-Chem Simulations and Aircraft Observations, J. Geophys. Res. Atmos., 121, 4233–4257, doi:10.1002/2015JD024623
  4. Pollack, I. B., C. R. Homeyer, T. B. Ryerson, K. C. Aikin, J. Peischl, E. C. Apel, T. Campos, F. Flocke, R. S. Hornbook, D. J. Knapp, D. D. Montzka, A. J. Weinheimer, D. Riemer, G. Diskin, G. Sachse, T. Mikoviny, A. Wisthaler, E. Bruning, D. MacGorman, K. A. Cummings, K. E. Pickering, H. Huntrieser, M. Lichtenstern, H. Schlager, and M. C. Barth, 2016: Airborne quantification of upper tropospheric NOx production from lightning in deep convective storms over the United States Great Plains, J. Geophys. Res. Atmos., 121, 2002–2028, doi:10.1002/2015JD023941
  5. Solomon, D. L., K. P. Bowman, and C. R. Homeyer, 2016: Tropopause-Penetrating Convection from Three-Dimensional Gridded NEXRAD Data, J. Appl. Met. Clim., 55, 465–478, doi:10.1175/JAMC-D-15-0190.1

2015

  1. Homeyer, C. R., 2015: Numerical simulations of extratropical tropopause-penetrating convection: Sensitivities to grid resolution, J. Geophys. Res. Atmos., 120, 7174–7188, doi:10.1002/2015JD023356
  2. Diao, M., J. B. Jensen, L. L. Pan, C. R. Homeyer, S. Honomichl, J. F. Bresch, and A. Bansemer, 2015: Distributions of ice supersaturation and ice crystals from airborne observations in relation to upper tropospheric dynamical boundaries, J. Geophys. Res. Atmos., 120, 5101–5121, doi:10.1002/2015JD023139
  3. Apel, E. C., R. S. Hornbrook, A. J. Hills, M. C. Barth, A. Weinheimer, C. Cantrell, S. A. Rutledge, B. Basarab, J. Crawford, G. Diskin, C. R. Homeyer, T. Campos, F. Flocke, A. Fried, D. R. Blake, W. Brune, I. Pollack, J. Peischl, T. Ryerson, P. O. Wennberg, J. D. Crounse, A. Wisthaler, T. Mikoviny, G. Huey, B. Heikes, D. O’Sullivan, and D. D. Reimer, 2015: Upper tropospheric ozone production from lightning NOx-impacted convection: Smoke ingestion case study from the DC3 campaign, J. Geophys. Res. Atmos., 120, 2505–2523, doi:10.1002/2014JD022121
  4. Homeyer, C. R. and M. R. Kumjian, 2015: Microphysical Characteristics of Overshooting Convection from Polarimetric Radar Observations, J. Atmos. Sci., 72, 870–891, doi:10.1175/JAS-D-13-0388.1

2014

  1. Pan, L. L., C. R. Homeyer, S. Honomichl, B. A. Ridley, M. Weisman, M. C. Barth, J. W. Hair, M. A. Fenn, C. Butler, G. S. Diskin, J. H. Crawford, T. B. Ryerson, I. Pollack, J. Peischl, and H. Huntrieser, 2014: Thunderstorms enhance tropospheric ozone by wrapping and shedding stratospheric air, Geophys. Res. Lett., 41, 7785–7790, doi:10.1002/2014GL061921
  2. Homeyer, C. R., L. L. Pan, S. W. Dorsi, L. M. Avallone, A. J. Weinheimer, A. S. O’Brien, J. P. DiGangi, M. A. Zondlo, T. B. Ryerson, G. S. Diskin, and T. L. Campos, 2014: Convective transport of water vapor into the lower stratosphere observed during double-tropopause events, J. Geophys. Res. Atmos., 119, 10,941–10,958, doi:10.1002/2014JD021485
  3. Peevey, T. R., J. C. Gille, C. R. Homeyer, and G. L. Manney, 2014: The double tropopause and its dynamical relationship to the tropopause inversion layer in storm track regions, J. Geophys. Res. Atmos., 119, 10,194–10,212, doi:10.1002/2014JD021808
  4. Homeyer, C. R., C. Schumacher, and L. J. Hopper, Jr., 2014: Assessing the Applicability of the Tropical Convective-Stratiform Paradigm in the Extratropics Using Radar Divergence Profiles, J. Clim., 27, 6673–6686, doi:10.1175/JCLI-D-13-00561.1
  5. Homeyer, C. R., L. L. Pan, and M. C. Barth, 2014: Transport from convective overshooting of the extratropical tropopause and the role of large-scale lower stratosphere stability, J. Geophys. Res. Atmos., 119, doi:10.1002/2013JD020931
  6. Homeyer, C. R., 2014: Formation of the Enhanced-V Infrared Cloud Top Feature from High-Resolution Three-Dimensional Radar Observations, J. Atmos. Sci., 71, 332–348, doi:10.1175/JAS-D-13-079.1

2013

  1. Homeyer, C. R., and K. P. Bowman, 2013: Rossby Wave Breaking and Transport between the Tropics and Extratropics above the Subtropical Jet, J. Atmos. Sci., 70, 607–626, doi:10.1175/JAS-D-12-0198.1

2012

  1. Pan, L. L., A. Kunz, C. R. Homeyer, L. A. Munchak, D. E. Kinnison, and S. Tilmes, 2012: Commentary on using equivalent latitude in the upper troposphere and lower stratosphere, Atmos. Chem. Phys., 12, 9187–9199, doi:10.5194/acp-12-9187-2012

2011

  1. Homeyer, C. R., K. P. Bowman, L. L. Pan, M. A. Zondlo, and J. F. Bresch, 2011: Convective injection into stratospheric intrusions, J. Geophys. Res., 116, D23304, doi:10.1029/2011JD016724
  2. Homeyer, C. R., K. P. Bowman, L. L. Pan, E. L. Atlas, R.-S. Gao, and T. L. Campos, 2011: Dynamical and chemical characteristics of tropospheric intrusions observed during START08, J. Geophys. Res., 116, D06111, doi:10.1029/2010JD015098

2010

  1. Homeyer, C. R., K. P. Bowman, and L. L. Pan, 2010: Extratropical tropopause transition layer characteristics from high-resolution sounding data, J. Geophys. Res., 115, D13108, doi:10.1029/2009JD013664
  2. Pan, L. L., K. P. Bowman, E. L. Atlas, S. C. Wofsy, F. Zhang, J. F. Bresch, B. A. Ridley, J. V. Pittman, C. R. Homeyer, P. Romashkin, and W. A. Cooper, 2010: The Stratosphere–Troposphere Analyses of Regional Transport 2008 (START08) Experiment, Bull. Amer. Meteorol. Soc., 91, 327–329, doi:10.1175/2009BAMS2865.1

2009

  1. Bowman, K. P., C. R. Homeyer, and D. G. Stone, 2009: A Comparison of Oceanic Precipitation Estimates in the Tropics and Subtropics, J. App. Meteor. & Clim., 48, 1335–1344, doi:10.1175/2009JAMC2149.1