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December 1, 2000Journal of Applied Meteorology1,003 citationsOpen Access

Rain-Profiling Algorithm for the TRMM Precipitation Radar

TIToshio IguchiOsaka Gakuin UniversityTKToshiaki KozuShimane UniversityRMR. MeneghiniGoddard Space Flight Center

Key Points

  • Describe the standard rain-profiling algorithm used by the Tropical Rainfall Measuring Mission Precipitation Radar to retrieve vertical profiles of attenuation-corrected radar reflectivity and rainfall rates.
  • Implemented a hybrid attenuation correction combining the Hitschfeld–Bordan approach and the surface reference method using an optimum weighting function.
  • Formulated a two-dimensional correction framework to resolve nonuniform beam-filling errors across the radar footprint.
  • Calibrated default drop size distribution models by ensuring consistency between model-derived attenuation and ocean surface reference measurements.
  • Created an operational processing pipeline that corrects for radar signal attenuation and vertical drop size distribution variations.
  • Demonstrated that convective drop size distribution models calibrated over oceans are inconsistent over land, confirming fundamental differences in raindrop size distributions between oceanic and continental convection.

Abstract

This paper describes the Tropical Rainfall Measuring Mission (TRMM) standard algorithm that estimates the vertical profiles of attenuation-corrected radar reflectivity factor and rainfall rate. In particular, this paper focuses on the critical steps in the algorithm. These steps are attenuation correction, selection of the default drop size distribution model including vertical variations, and correction for the nonuniform beam-filling effect. The attenuation correction is based on a hybrid of the Hitschfeld–Bordan method and a surface reference method. A new algorithm to obtain an optimum weighting function is described. The nonuniform beam-filling problem is analyzed as a two-dimensional problem. The default drop size distribution model is selected according to the criterion that the attenuation estimates derived from the model and the independent estimates from the surface reference with the nonuniform beam-filling correction are consistent for rain over ocean. It is found that the drop size distribution models that are consistent for convective rain over ocean are not consistent over land, indicating a change in the size distributions associated with convective rain over land and ocean, respectively.

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Cite This Study

Iguchi et al. (2000) studied this question.

synapsesocial.com/papers/6a19610bf2eb401dc7890197https://doi.org/10.1175/1520-0450(2001)040<2038:rpaftt>2.0.co;2
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