Details zur Publikation

Kategorie Textpublikation
Referenztyp Zeitschriften
DOI 10.1016/j.ejrh.2024.102025
Lizenz creative commons licence
Titel (primär) Spatiotemporal desynchronization in the propagation from meteorological to soil moisture drought in the Loess Plateau, China
Autor Nie, M.; Huang, S.; Zeng, X-M.; Peng, J. ORCID logo ; Bai, G.
Quelle Journal of Hydrology: Regional Studies
Erscheinungsjahr 2024
Department RS
Band/Volume 56
Seite von art. 102025
Sprache englisch
Topic T5 Future Landscapes
Supplements https://ars.els-cdn.com/content/image/1-s2.0-S2214581824003744-mmc1.doc
Keywords 3-dimensional construction; Drought propagation; Spatiotemporal desynchronization; Random forest model; The Loess Plateau
Abstract Study Region
The Loess Plateau (LP) of China
Study Focus
Meteorological drought (MD) would propagate to soil moisture drought (SMD) with spatiotemporal desynchronization. The spatial desynchronization between them has frequently been ignored in previous studies due to limitation of identified droughts, which did not consider their 3-dimensional (3D, i.e. longitude, latitude and time) properties. This study presents a 3D perspective on the spatiotemporal desynchronization in the propagation from meteorological to soil moisture drought in the the Loess Plateau (LP) of China, using an improved drought matching method. Event Synchronization (ES) is extended to determine temporal linkage of the two types of droughts and spatial connection is tested using overlapping area.
New Hydrological Insights for the Region
The results showed that: (1) the improved method is reasonable for identifying MDs that trigger SMDs, down to specific clusters; (2) 8 SMDs preceded MDs 1 month, while approximately 79 % of SMDs did not recover after the determination of MDs; (3) severity of MD is an impact factor on recovery lag, while antecedent soil moisture dominates onset lag with the relative importance of approximately 50 %; and (4) incompletely overlap in migration trajectory between the two types of droughts was mainly caused by temperature, followed by antecedent soil moisture and potential evapotranspiration, with relative importance of 55 %, 14 % and 12 %, respectively.
dauerhafte UFZ-Verlinkung https://www.ufz.de/index.php?en=20939&ufzPublicationIdentifier=29868
Nie, M., Huang, S., Zeng, X-M., Peng, J., Bai, G. (2024):
Spatiotemporal desynchronization in the propagation from meteorological to soil moisture drought in the Loess Plateau, China
J. Hydrol. Reg. Stud. 56 , art. 102025 10.1016/j.ejrh.2024.102025