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Article

Urban Impacts on Convective Squall Lines over Chicago in the Warm Season—Part I: Observations of Multi-Scale Convective Evolution

by
Michael L. Kaplan
1,*,
S. M. Shajedul Karim
2,3 and
Yuh-Lang Lin
2
1
Division of Atmospheric Sciences, Desert Research Institute, Reno, NV 89512, USA
2
Department of Physics, North Carolina A&T State University, Greensboro, NC 27411, USA
3
Center for Atmospheric Sciences, Hampton University, Hampton, VA 23669, USA
*
Author to whom correspondence should be addressed.
Atmosphere 2025, 16(3), 306; https://doi.org/10.3390/atmos16030306
Submission received: 1 February 2025 / Revised: 2 March 2025 / Accepted: 4 March 2025 / Published: 6 March 2025
(This article belongs to the Section Meteorology)

Abstract

In this study, our aim is to diagnose how two quasi-linear convective systems (QLCS) are organized so one can determine the possible role of the city of Chicago, IL, USA, in modifying convective precipitation systems. In this Part I of a two-part study, we employ large-scale analyses, radiosonde soundings, surface observations, and Doppler radar data to diagnose the precursor atmospheric circulations that organize the evolution of two mesoscale convective systems and compare those circulations to radar and precipitation. Several multi-scale processes are found that organize and modify convection over the Chicago metroplex. Two sequential quasi-linear convective systems (QLCS #1 and #2) were organized that propagated over Chicago, IL, USA, during an eight-hour period on 5–6 July 2018. The first squall line (QLCS #1) built from the southwest to the northeast while strengthening as it propagated over the city, and the second (QLCS #2) propagated southeastwards and weakened as it passed over the city in association with a polar cold front. The weak upper-level divergence associated with a diffluent flow poleward of an expansive ridge built over and strengthened a low-level trough and confluence zone, triggering QLCS #1. Convective downdrafts from QLCS #1 produced a cold pool that interacted with multiple confluent low-level jets surrounding and focused on the metroplex urban heat island, thus advecting the convection poleward over the metroplex. The heaviest precipitation occurred just south-southeast of Midway Airport, Chicago. Subsequently, a polar cold front propagated into the metroplex, which triggered QLCS #2. However, the descending air above it under the polar jet and residual cold pool from QLCS #1 rapidly dissipated the cold frontal convection. This represents a case study where very active convection built over the metroplex and was likely modified by it, as evidenced in numerical simulations to be described in Part II.
Keywords: convection; mesoscale; lake-breeze; jets; convergence; heating; urban convection; mesoscale; lake-breeze; jets; convergence; heating; urban

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MDPI and ACS Style

Kaplan, M.L.; Karim, S.M.S.; Lin, Y.-L. Urban Impacts on Convective Squall Lines over Chicago in the Warm Season—Part I: Observations of Multi-Scale Convective Evolution. Atmosphere 2025, 16, 306. https://doi.org/10.3390/atmos16030306

AMA Style

Kaplan ML, Karim SMS, Lin Y-L. Urban Impacts on Convective Squall Lines over Chicago in the Warm Season—Part I: Observations of Multi-Scale Convective Evolution. Atmosphere. 2025; 16(3):306. https://doi.org/10.3390/atmos16030306

Chicago/Turabian Style

Kaplan, Michael L., S. M. Shajedul Karim, and Yuh-Lang Lin. 2025. "Urban Impacts on Convective Squall Lines over Chicago in the Warm Season—Part I: Observations of Multi-Scale Convective Evolution" Atmosphere 16, no. 3: 306. https://doi.org/10.3390/atmos16030306

APA Style

Kaplan, M. L., Karim, S. M. S., & Lin, Y.-L. (2025). Urban Impacts on Convective Squall Lines over Chicago in the Warm Season—Part I: Observations of Multi-Scale Convective Evolution. Atmosphere, 16(3), 306. https://doi.org/10.3390/atmos16030306

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