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Peering into Cloud Physics Using Ultra-Fine-Resolution Radar and Lidar Systems.
- Source :
-
Bulletin of the American Meteorological Society . Nov2024, Vol. 105 Issue 11, pE2010-E2025. 16p. - Publication Year :
- 2024
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Abstract
- Cloud microphysical processes, such as droplet activation, condensational growth, and collisional growth, play a central role in the evolution of clouds and precipitation. Accurate representations of these processes in numerical models are challenging partially due to incomplete understanding of them at the process level arising from limited systematic observations. Most surface-based active remote sensors, including today's operational cloud radars and lidars, have a resolution on the order of tens of meters. This resolution is insufficient to resolve cloud microphysical processes that manifest at finer (meter and submeter) scales. A new set of ultra-high-resolution ground-based radar and lidar systems have been developed to address this observational gap. The newly developed 94-GHz cloud radar has a range resolution down to 2.8 m, or a factor of 10 finer than typical radars, using a large bandwidth and quadratic phase coding techniques. The lidar has a range resolution down to 10 cm, or a factor of 100 finer than typical lidars, using a time-gated time-correlated single-photon-counting technique. Such high-resolution observations were previously only achievable through in situ aircraft measurements. Even then, aircraft measurements do not permit continuous long-term cloud observation as is possible with ground-based remote sensing instruments. In this study, the first-light cloud observations from the new radar and lidar systems are shown to reveal detailed cloud structures that conventional sensors could only perceive in a bulk sense, thus providing new avenues to investigate cloud microphysical processes and their impact on weather and climate. SIGNIFICANCE STATEMENT: In this study, we introduced two novel remote sensing instruments capable of high-resolution cloud observations: a cloud radar system with a range resolution down to 2.8 m and a lidar system with a range resolution down to 10 cm. Observations show that the radar and lidar systems resolve detailed cloud structures and microphysical processes which would not be obtained from traditional remote sensing systems. The high-resolution measurements provide insights toward the understanding of cloud microphysics at a fundamental level. [ABSTRACT FROM AUTHOR]
- Subjects :
- *REMOTE sensing
*REMOTE sensing by radar
*CLOUD physics
*PHASE coding
*MICROPHYSICS
Subjects
Details
- Language :
- English
- ISSN :
- 00030007
- Volume :
- 105
- Issue :
- 11
- Database :
- Academic Search Index
- Journal :
- Bulletin of the American Meteorological Society
- Publication Type :
- Academic Journal
- Accession number :
- 180762940
- Full Text :
- https://doi.org/10.1175/BAMS-D-23-0032.1