TY - JOUR
T1 - Control of channel geometry on centennial morphological evolution of deltas
T2 - A numerical simulation perspective
AU - Zhang, Jiarui
AU - Wang, Qing
AU - Zhan, Chao
AU - Zhao, Kezi
AU - Cao, Yin
AU - Chen, Shenliang
N1 - Publisher Copyright:
© 2026 Elsevier B.V.
PY - 2026/6/1
Y1 - 2026/6/1
N2 - Delta morphological evolution, shaped by fluvial-sediment processes and human activities, is critical for estuarine-coastal ecological protection. While river discharge and sediment inflow are known to influence delta development, the century-scale effects of river morphological changes remain insufficiently understood. This study investigates the 350 years evolution of river deltas under runoff-tidal dynamics, using the Hydraulic Geometry Coefficient (HGC) to quantify river morphology and a Delft3D-based hydrodynamic-sediment-topography coupled model to assess HGC impacts. Validated against the Paraná and Danube deltas, results confirm HGC as a pivotal control on delta stability and channel configuration: high HGC (wide-shallow channels) facilitates complex multi-distributary deltas, while low HGC (narrow-deep channels) leads to simpler, narrower forms. HGC's influence on riverbed fluctuations is time-dependent—weak initially, nonlinearly enhanced in the medium term, and weakened over the long term—with braided river complexity positively correlating with HGC. A critical morphological threshold (HGC = 5–10) and an “system memory effect” are identified: early morphological differences (e.g., channel estuary count) persist for centuries, with high HGC deltas maintaining complexity and low HGC deltas degenerating into single-channel systems. These findings highlight the significance of channel characteristics in delta formation, offering critical insights for estuary management and delta conservation.
AB - Delta morphological evolution, shaped by fluvial-sediment processes and human activities, is critical for estuarine-coastal ecological protection. While river discharge and sediment inflow are known to influence delta development, the century-scale effects of river morphological changes remain insufficiently understood. This study investigates the 350 years evolution of river deltas under runoff-tidal dynamics, using the Hydraulic Geometry Coefficient (HGC) to quantify river morphology and a Delft3D-based hydrodynamic-sediment-topography coupled model to assess HGC impacts. Validated against the Paraná and Danube deltas, results confirm HGC as a pivotal control on delta stability and channel configuration: high HGC (wide-shallow channels) facilitates complex multi-distributary deltas, while low HGC (narrow-deep channels) leads to simpler, narrower forms. HGC's influence on riverbed fluctuations is time-dependent—weak initially, nonlinearly enhanced in the medium term, and weakened over the long term—with braided river complexity positively correlating with HGC. A critical morphological threshold (HGC = 5–10) and an “system memory effect” are identified: early morphological differences (e.g., channel estuary count) persist for centuries, with high HGC deltas maintaining complexity and low HGC deltas degenerating into single-channel systems. These findings highlight the significance of channel characteristics in delta formation, offering critical insights for estuary management and delta conservation.
KW - Delft3D
KW - Delta evolution
KW - Hydraulic geometry coefficient (HGC)
KW - Initial HGC memoryeffect
KW - Runoff-tidal interaction
UR - https://www.scopus.com/pages/publications/105032234541
U2 - 10.1016/j.catena.2026.109973
DO - 10.1016/j.catena.2026.109973
M3 - 文章
AN - SCOPUS:105032234541
SN - 0341-8162
VL - 267
JO - Catena
JF - Catena
M1 - 109973
ER -