Javascript must be enabled to continue!
Scientific basis, engineering feasibility and system optimization of green sea dykes for temperate mud coasts: a brief overview
View through CrossRef
AbstractGreen sea dykes, also known as ecosystem-based sea dykes, represent a novel type of coastal defense consisting of both traditional structural engineering and coastal ecosystems, designed to cope with the future trends of sea level rise and intensified storms. Here we focus on the mid-latitude mud coasts (eastern China in particular), which face the most prominent risks of storm surge, storm-induced giant waves, and shoreline erosion, and summarizes the scientific basis of green sea dykes and the current status of engineering practices. We show that the basic mechanisms of nearshore wave energy dissipation include bottom friction, sediment transport, and form drag. These explain the wave damping capacity of oyster reefs and salt marshes on mud coasts. In tidal flat environments, oyster growth increases frictional resistance and even causes wave breaking; the resuspension and transport of fine-grained sediments on salt marsh beds and the movement or resistance to hydrodynamic forcing of salt marsh vegetation stems effectively dissipate wave kinetic energy, and their efficiency increases with the elevation of the bed surface. Based on the wave damping capacity of oyster reefs and salt marshes on mud coasts, ecosystem-based sea dykes are being built in combination with traditional structured sea dykes. By utilizing natural tidal flats outside the dykes or implementing artificial modification projects, a certain scale of salt marshes and/or oyster reefs can be maintained, which serve to protect the sea dykes and enhance their wave resistance functions. From the perspective of system optimization, it is necessary to further improve the efficiency and sustainability of green sea dykes under constraints such as regional environment characteristics, ecosystem health, investment capacity, and ecological resilience. Related scientific issues include the theorization of the wave damping process of salt marshes, the niche and scale control of oyster reef and salt marsh ecosystems, the establishment of engineering standards and the design of the optimal form of sea dykes.
Title: Scientific basis, engineering feasibility and system optimization of green sea dykes for temperate mud coasts: a brief overview
Description:
AbstractGreen sea dykes, also known as ecosystem-based sea dykes, represent a novel type of coastal defense consisting of both traditional structural engineering and coastal ecosystems, designed to cope with the future trends of sea level rise and intensified storms.
Here we focus on the mid-latitude mud coasts (eastern China in particular), which face the most prominent risks of storm surge, storm-induced giant waves, and shoreline erosion, and summarizes the scientific basis of green sea dykes and the current status of engineering practices.
We show that the basic mechanisms of nearshore wave energy dissipation include bottom friction, sediment transport, and form drag.
These explain the wave damping capacity of oyster reefs and salt marshes on mud coasts.
In tidal flat environments, oyster growth increases frictional resistance and even causes wave breaking; the resuspension and transport of fine-grained sediments on salt marsh beds and the movement or resistance to hydrodynamic forcing of salt marsh vegetation stems effectively dissipate wave kinetic energy, and their efficiency increases with the elevation of the bed surface.
Based on the wave damping capacity of oyster reefs and salt marshes on mud coasts, ecosystem-based sea dykes are being built in combination with traditional structured sea dykes.
By utilizing natural tidal flats outside the dykes or implementing artificial modification projects, a certain scale of salt marshes and/or oyster reefs can be maintained, which serve to protect the sea dykes and enhance their wave resistance functions.
From the perspective of system optimization, it is necessary to further improve the efficiency and sustainability of green sea dykes under constraints such as regional environment characteristics, ecosystem health, investment capacity, and ecological resilience.
Related scientific issues include the theorization of the wave damping process of salt marshes, the niche and scale control of oyster reef and salt marsh ecosystems, the establishment of engineering standards and the design of the optimal form of sea dykes.
Related Results
Volumetric changes of mud on Mars: Evidence from laboratory simulations
Volumetric changes of mud on Mars: Evidence from laboratory simulations
<p><strong>Introduction</strong>: The behavior and the rheology of mud during the emplacement of terrestrial sedimentary volcanism has bee...
Effect of different clay additions to concrete on its ultrasonic acoustic parameters and compressive strength
Effect of different clay additions to concrete on its ultrasonic acoustic parameters and compressive strength
Abstract
Concrete may have different levels of mud content due to various factors, which can lead to reduction in strength and changes in ultrasonic acoustic parameters. In...
Microstructural and Geochemical Evolution of Spherulitic Rhyolitic Dykes in Cheongsong, South Korea
Microstructural and Geochemical Evolution of Spherulitic Rhyolitic Dykes in Cheongsong, South Korea
Near Galpyeong Reservoir in northern Cheongsong County, mid-eastern Korean Peninsula, a rhyolitic stock with an elliptical shape is exposed, measuring about 2 km by 1 km. Surroundi...
Structural attributes of Pachmarhi Deccan dykes and Newer Dolerite dykes of Singhbhum Craton: implications in magma emplacement mechanism
Structural attributes of Pachmarhi Deccan dykes and Newer Dolerite dykes of Singhbhum Craton: implications in magma emplacement mechanism
The Deccan Continental flood basalts are associated with three major dyke swarms, namely the Narmada-Satpura-Tapi (N-S-T), the Western Coastal and the Nasik-Pune dyke swarm. The Pa...
Petrology of Mafic Dykes from the Njimom Area (West-Cameroon): A Contribution to the Characterization of Late Paleozoic and Mesozoic Magmatism in the Southern Continental Part of the Cameroon Volcanic Line
Petrology of Mafic Dykes from the Njimom Area (West-Cameroon): A Contribution to the Characterization of Late Paleozoic and Mesozoic Magmatism in the Southern Continental Part of the Cameroon Volcanic Line
In the western Cameroon, crop out several dyke swarms of Paleozoic–Mesozoic age. These dykes intrude the Precambrian basement in the southern continental part of the Cretaceous Cam...
Notes on the trap-dykes of Edinburgh and neighbourhood
Notes on the trap-dykes of Edinburgh and neighbourhood
The igneous rocks in and around Edinburgh have been faithfully and accurately described by many geologists. Good service was rendered in this work by our late President, Mr Charles...
Seismic Interpretation and Classification of Mud Volcanoes of the South Caspian Basin, Offshore Azerbaijan
Seismic Interpretation and Classification of Mud Volcanoes of the South Caspian Basin, Offshore Azerbaijan
Abstract
Understanding the nature of mud volcanism, mechanisms of formation, types of eruptions and their relationship to the hydrocarbon systems provides importa...
Studi Pengaruh Kontaminasi Properti Rheology Water Based Mud di Lapangan Sunyu
Studi Pengaruh Kontaminasi Properti Rheology Water Based Mud di Lapangan Sunyu
This project focuses on Investigation of effect of contaminants on the Rheological Properties of Water-based Drilling Mud. For any drilling operation to be termed successful, care ...

