Raindrop Size Distribution Characteristics of the Precipitation Process of 2216 Typhoon “Noru” in the Xisha Region
Abstract
:1. Introduction
2. Materials and Methods
3. Reliability of Raindrop Spectra Data
4. Typhoon Overview and Weather Background
5. Analysis of Raindrop Spectral Variations in Typhoon “Noru”
5.1. Temporal Variation in Raindrop Spectra
5.2. Mean Raindrop Size Distribution Characteristics and Gamma Fitting Analysis
5.3. Analysis of the Z-R Relationship and μ-Λ Relationship in Raindrop Size Distribution
6. Conclusions
- When precipitation is primarily composed of small- and medium-sized raindrops, the rainfall intensity is relatively low. When larger raindrops increase in number, the rainfall intensity grows. Stronger precipitation corresponds to a higher number of large raindrops. There is no significant correlation between raindrop size and quantity and the intensity of the typhoon. The rainfall intensity () is primarily proportional to the mean number concentration () and the mean raindrop mass diameter (). The influence of the mean raindrop mass diameter () on the rainfall intensity () is greater than that of the mean number concentration ().
- Due to the interaction of cold and warm air masses, the precipitation during Typhoon “Noru” features high raindrop concentrations and large diameters. While the raindrop diameters suggest characteristics of a temperate typhoon, the overall composition consisting mainly of small- to medium-sized raindrops indicates tropical typhoon features, with a lower proportion of large raindrops. Additionally, the presence of more raindrops and larger raindrop diameters may be associated with the underlying surface being oceanic rather than terrestrial.
- The inner and outer rainbands of Typhoon “Noru” exhibit similar precipitation types, characterized by a unimodal raindrop spectrum with a narrow width. The precipitation process is dominated by small- and medium-sized raindrops, indicative of stratiform-mixed cloud precipitation, with a significant proportion of stratiform cloud precipitation that fits poorly with the Gamma distribution. Strong echo intensities often correlate with high raindrop concentrations and larger particle sizes.
- The Z-R relationship for Typhoon Noru’s precipitation shows a lower coefficient compared to the standard Z-R relationship, with a consistent exponent, resulting in the radar underestimation of precipitation. Based on previous studies, comparative analysis suggests that variations in raindrop diameter under different precipitation characteristics of typhoons significantly influence the Z-R relationship, with the contribution of raindrop diameter being greater than that of raindrop quantity. The - relationship is , which can be integrated into forecasting models to refine the Z-R relationship, making it essential to conduct comparative studies on the Z-R relationship for similar path typhoons to improve radar estimates of typhoon precipitation accuracy.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Typhoon | Intensity at Landfall (Through) | Different Stages | Mean Concentration (Nt/mm−1·m−3) | Mean Raindrop Diameter (Dm/mm) | Rainfall Intensity (R/mm·h−1) |
---|---|---|---|---|---|
Noru | Level 17, Super typhoon | S2 (heavy precipitation) | 1457.2 | 1.56 | 19.07 |
S1, S3 (weak precipitation) | 1240.7 | 1.15 | 14.98 | ||
LEKIMA | Level 16, Super typhoon | Heavy precipitation | 686.0 | 0.98 | 13.10 |
Weak precipitation | 259.8 | 0.80 | 2.60 | ||
RUMBIA | Level 10, Severe tropical storm | Heavy precipitation | 931.0 | 0.92 | 13.76 |
Weak precipitation | 1161.0 | 0.60 | 2.52 |
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Wang, G.; Li, L.; Huang, C.; Zhang, L. Raindrop Size Distribution Characteristics of the Precipitation Process of 2216 Typhoon “Noru” in the Xisha Region. Water 2024, 16, 2630. https://doi.org/10.3390/w16182630
Wang G, Li L, Huang C, Zhang L. Raindrop Size Distribution Characteristics of the Precipitation Process of 2216 Typhoon “Noru” in the Xisha Region. Water. 2024; 16(18):2630. https://doi.org/10.3390/w16182630
Chicago/Turabian StyleWang, Guozhang, Lei Li, Chaoying Huang, and Lili Zhang. 2024. "Raindrop Size Distribution Characteristics of the Precipitation Process of 2216 Typhoon “Noru” in the Xisha Region" Water 16, no. 18: 2630. https://doi.org/10.3390/w16182630
APA StyleWang, G., Li, L., Huang, C., & Zhang, L. (2024). Raindrop Size Distribution Characteristics of the Precipitation Process of 2216 Typhoon “Noru” in the Xisha Region. Water, 16(18), 2630. https://doi.org/10.3390/w16182630