The CAESAR (Cellular Automaton Evolutionary Slope And River) model is used to simulate the Holocene development of a small upland catchment (4.2 km(2)) and the alluvial fan at its base. The model operates at a 3 m grid scale and simulates every flood over the last 9200 years. using a rainfall record reconstructed from peat bog wetness indices and land cover history derived from palynological sources. Model results show that the simulated catchment sediment discharge above the alluvial fan closely follows the climate signal, but with an increase in the amplitude of response after deforestation. The important effects of sediment storage and remobilization are shown, and findings suggest that soil creep rates may be an important control on lon...
Over the last decade several computational models, and several types of model, have been developed t...
Over the last decade several computational models, and several types of model, have been developed t...
An increasing number of studies have indicated that soil erosion, sediment redistribution and water ...
The CAESAR (Cellular Automaton Evolutionary Slope And River) model is used to simulate the Holocene ...
The CAESAR (Cellular Automaton Evolutionary Slope And River) model is used to simulate the Holocene ...
Simulated Holocene sediment discharges from a high-resolution cellular model of river evolution in n...
The CAESAR (Cellular Automaton Evolutionary Slope And River) model is used to demonstrate significan...
This paper describes the application of a hydrogeomorphological numerical model (CAESAR) to simulate...
Alluvial systems are complex, self-organizing and hierarchical in structure. They represent stored a...
Alluvial systems are complex, self-organizing and hierarchical in structure. They represent stored a...
We introduce a new computational model designed to simulate and investigate reach-scale alluvial dyn...
We introduce a new computational model designed to simulate and investigate reach-scale alluvial dyn...
The Congo River is the world's second largest river in terms of drainage area and water discharge. M...
Over the last decade several computational models, and several types of model, have been developed t...
Over the last decade several computational models, and several types of model, have been developed t...
An increasing number of studies have indicated that soil erosion, sediment redistribution and water ...
The CAESAR (Cellular Automaton Evolutionary Slope And River) model is used to simulate the Holocene ...
The CAESAR (Cellular Automaton Evolutionary Slope And River) model is used to simulate the Holocene ...
Simulated Holocene sediment discharges from a high-resolution cellular model of river evolution in n...
The CAESAR (Cellular Automaton Evolutionary Slope And River) model is used to demonstrate significan...
This paper describes the application of a hydrogeomorphological numerical model (CAESAR) to simulate...
Alluvial systems are complex, self-organizing and hierarchical in structure. They represent stored a...
Alluvial systems are complex, self-organizing and hierarchical in structure. They represent stored a...
We introduce a new computational model designed to simulate and investigate reach-scale alluvial dyn...
We introduce a new computational model designed to simulate and investigate reach-scale alluvial dyn...
The Congo River is the world's second largest river in terms of drainage area and water discharge. M...
Over the last decade several computational models, and several types of model, have been developed t...
Over the last decade several computational models, and several types of model, have been developed t...
An increasing number of studies have indicated that soil erosion, sediment redistribution and water ...