A general N-moment normalization method for deriving raindrop size distribution scaling relationships

Hugh Morrison, Matthew Robert Kumjian, Charlotte P. Martinkus, Olivier P. Prat, Marcus Van Lier-Walqui

Research output: Contribution to journalArticle

3 Citations (Scopus)

Abstract

A general drop size distribution (DSD) normalization method is formulated in terms of generalized power series relating any DSD moment to any number and combination of reference moments. This provides a consistent framework for comparing the variability of normalized DSD moments using different sets of reference moments, with no explicit assumptions about the DSD functional form (e.g., gamma). It also provides a method to derive any unknown moment plus an estimate of its uncertainty from one or more known moments, which is relevant to remote sensing retrievals and bulk microphysics schemes in weather and climate models. The approach is applied to a large dataset of disdrometer-observed and bin microphysics-modeled DSDs. As expected, the spread of normalized moments decreases as the number of reference moments is increased, quantified by the logarithmic standard deviation of the normalized moments, σ. Averaging σ for all combinations of reference moments and normalized moments of integer order 0-10, 42.9%, 81.3%, 93.7%, and 96.9% of spread are accounted for applying one-, two-, three-, and four-moment normalizations, respectively. Thus, DSDs can be well characterized overall using three reference moments, whereas adding a fourth reference moment contributes little independent information. The spread of disdrometer-observed DSD moments from uncertainty associated with drop count statistics generally lies between values of σ using two- and three-moment normalizations. However, this uncertainty has little impact on the derived DSD scaling relationships or σ when considered.

Original languageEnglish (US)
Pages (from-to)247-267
Number of pages21
JournalJournal of Applied Meteorology and Climatology
Volume58
Issue number2
DOIs
StatePublished - Feb 1 2019

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raindrop
normalisation
method
climate modeling
remote sensing
weather

All Science Journal Classification (ASJC) codes

  • Atmospheric Science

Cite this

Morrison, Hugh ; Kumjian, Matthew Robert ; Martinkus, Charlotte P. ; Prat, Olivier P. ; Van Lier-Walqui, Marcus. / A general N-moment normalization method for deriving raindrop size distribution scaling relationships. In: Journal of Applied Meteorology and Climatology. 2019 ; Vol. 58, No. 2. pp. 247-267.
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A general N-moment normalization method for deriving raindrop size distribution scaling relationships. / Morrison, Hugh; Kumjian, Matthew Robert; Martinkus, Charlotte P.; Prat, Olivier P.; Van Lier-Walqui, Marcus.

In: Journal of Applied Meteorology and Climatology, Vol. 58, No. 2, 01.02.2019, p. 247-267.

Research output: Contribution to journalArticle

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