Dynamic connectivity in a fluvial network for identifying hotspots of geomorphic change

被引:108
作者
Czuba, Jonathan A. [1 ]
Foufoula-Georgiou, Efi [1 ]
机构
[1] Univ Minnesota, Dept Civil Environm & Geoengn, St Anthony Falls Lab, Natl Ctr Earth Surface Dynam, Minneapolis, MN 55455 USA
基金
美国国家科学基金会;
关键词
river network; connectivity; synchronization; persistence; sediment transport; cluster; UNIT-HYDROGRAPH; BASIN-SCALE; BAR PUSH; SEDIMENT; FRAMEWORK; MODEL; MIGRATION; PATTERNS; MEANDER;
D O I
10.1002/2014WR016139
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Dynamical processes occurring on the hierarchical branching structure of a river network tend to heterogeneously distribute fluxes on the network, often concentrating them into clusters, i.e., places of excess flux accumulation. Here, we put forward the hypothesis that places in the network predisposed (due to process dynamics and network topology) to accumulate excess sediment over a considerable river reach and over a considerable period of time reflect locations where a local imbalance in sediment flux may occur thereby highlighting a susceptibility to potential fluvial geomorphic change. We develop a dynamic connectivity framework which uses the river network structure and a simplified Lagrangian transport model to trace fluxes through the network and integrate emergent clusters through a cluster persistence index (CPI). The framework was applied to sand transport in the Greater Blue Earth River Network in the Minnesota River Basin. Three hotspots of fluvial geomorphic change were defined as locations where high rates of channel migration were observed and places of high CPI coincided with two of these hotspots of possibly sediment-driven change. The third hotspot was not identified by high CPI, but instead is believed to be a hotspot of streamflow-driven change based on additional information and the fact that high bed shear stress coincided with this hotspot. The proposed network-based dynamic connectivity framework has the potential to place dynamical processes occurring at small scales into a network context to understand how reach-scale changes cascade into network-scale effects, useful for informing the large-scale consequences of local management actions.
引用
收藏
页码:1401 / 1421
页数:21
相关论文
共 63 条
[31]   A REPRESENTATION OF AN INSTANTANEOUS UNIT-HYDROGRAPH FROM GEOMORPHOLOGY [J].
GUPTA, VK ;
WAYMIRE, E ;
WANG, CT .
WATER RESOURCES RESEARCH, 1980, 16 (05) :855-862
[32]   Graph theory-Recent developments of its application in geomorphology [J].
Heckmann, Tobias ;
Schwanghart, Wolfgang ;
Phillips, Jonathan D. .
GEOMORPHOLOGY, 2015, 243 :130-146
[33]  
Hobbs H. C., 1982, GEOLOGIC MAP MINNEST
[34]   Phytoplankton growth in relation to network topology: time-averaged catchment-scale modelling in a large lowland river [J].
Istvanovics, Vera ;
Honti, Mark ;
Kovacs, Adam ;
Kocsis, Gaborne ;
Stier, Izabella .
FRESHWATER BIOLOGY, 2014, 59 (09) :1856-1871
[35]   A comprehensive change detection method for updating the National Land Cover Database to circa 2011 [J].
Jin, Suming ;
Yang, Limin ;
Danielson, Patrick ;
Homer, Collin ;
Fry, Joyce ;
Xian, George .
REMOTE SENSING OF ENVIRONMENT, 2013, 132 :159-175
[36]   Historical sediment flux from three watersheds into Lake Pepin, Minnesota, USA [J].
Kelley, DW ;
Nater, EA .
JOURNAL OF ENVIRONMENTAL QUALITY, 2000, 29 (02) :561-568
[37]   TESTS OF RANDOM NETWORK MODEL, AND ITS APPLICATION TO BASIN HYDROLOGY [J].
KIRKBY, MJ .
EARTH SURFACE PROCESSES AND LANDFORMS, 1976, 1 (03) :197-212
[38]  
Lagasse P. F., 2004, NATL COOP HIGHWAY RE
[39]   Estimation of sediment yield during storms based on soil and watershed geomorphology characteristics [J].
Lee, Kwan Tun ;
Yang, Chi-Cheng .
JOURNAL OF HYDROLOGY, 2010, 382 (1-4) :145-153
[40]  
Leopold L.B., 1964, Fluvial Processes in Geomorphology