Realistic Sedimentary Bedform Prediction: Incorporating Physical and Biological Cohesion (COHBED)
Realistic Sedimentary Bedform Prediction: Incorporating Physical and Biological Cohesion (COHBED)
批准号:
NE/I026863/1
负责人:
Sarah Bass
金额:
$22.85万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2011
资助国家:
英国
项目状态:
已结题
起止时间:
2011 至 --
中文摘要
英国是一个沿海国家,大多数人口居住在离河口或大海几英里的范围内。海岸线的性质取决于当地的地质和水流条件。在海水能量高的地方发现岩石海岸线,而在能量较低的地方发现泥沙,这些沉积物可以沉积。这些低能量的泥泞和沙质(沉积)生境对英国的生态和经济非常重要。它们为许多鸟类和鱼类提供食物,但也保护海岸线免受海洋侵蚀。此外,它们还起到“过滤器”的作用,将河流中的污染物捕获并最终降解。由于这些系统的重要性,它们的自然行为和稳定性越来越令人担忧,因为海平面上升,风暴事件随着气候变化而增加。泥沙在英国海岸的移动带来了巨大的经济和生态后果,但令人惊讶的是,我们几乎没有科学信息来帮助我们预测天然泥滩和海滩将如何应对潮汐、风和海浪的变化。当水流过海底时,水流的能量将沉积物塑造成波浪状的特征,称为河床(如涟漪)。这些床型有助于控制沙、泥、营养物质和污染物的侵蚀和输送。信息使我们能够预测河床的形状、大小和运动,对于环境管理、水利工程、海底生境生物学、颗粒运输的计算机模拟、沉积地质学和许多其他科学学科是必不可少的。然而,几乎完全缺乏关于由沙和泥的混合物组成的床型的知识。沙质沉积物是众所周知的“无粘性”,因为沙粒不会粘在一起,而泥浆是由粘在一起的较小颗粒组成的,因此被称为“粘性”沉积物。这个名为COHBED的项目将利用测量技术的最新发展,产生关于由沙子和泥浆的自然混合物组成的河床的生长、移动和稳定性的信息,这是一种非常常见的自然条件,但以前很少被研究。在新的起点上,这项工作包括一个多学科团队,将这些系统的物理、数学、沉积学和生物学结合起来,因为我们认识到,栖息在自然系统中的生物(从细菌到海草)也会改变侵蚀特征和河床行为。这就是为什么COHBED将包括实验室实验和实地调查。实验室流道中的一系列实验将研究控制河床行为和特性的关键因素,例如:系统能量:水流速度、床面摩擦和水流深度的影响-河床特性:颗粒大小、泥沙比例和生物效应-时间:河床生长的速度和变化率随着水流能量的变化-颗粒侵蚀:随着较小颗粒被侵蚀,河床形态的变化实验室研究的结果将与自然系统的行为进行比较。将进行实地调查,以验证实验室研究得出的预测,使用新技术,首次允许对水流、泥沙和河床性质进行必要的同时测量。COHBED项目将保持英国在这一研究领域的领先地位,并将帮助我们在面对气候变化时管理我们的海岸。
英文摘要
The United Kingdom is a coastal nation with the majority of the population living within a few miles of an estuary or the sea. The nature of the coastline depends on the local conditions of geology and water flow. Rocky coastlines are found where the energy of the sea is high, while mud and sand are found where the energy is lower and these sediments can be deposited. These low energy muddy and sandy (depositional) habitats, are very important for the ecology and economy of the UK. They provide food for many species of birds and fish, but also protect the coastline from the erosive forces of the sea. In addition, they act as a "filter", where pollutants from the rivers are captured and eventually degraded. Because of the importance of these systems, their natural behaviour and stability is of increasing concern as sea levels rise and storm events increase in frequency with climate change. The movement of sediment around the coast of Britain has vast economic and ecological consequences, but surprisingly we have very little scientific information that helps us to predict how natural mudflats and beaches will respond to the changing forces of the tides, wind and waves. When water flows over the sea bottom, the energy of the flow shapes the sediment into wavy features called bedforms (such as ripples). These bedforms help control the erosion and transport of sand, mud, nutrients and pollutants. Information allowing us to predict the shape, size and movement of bedforms is essential for environmental management, hydraulic engineering, benthic habitat biology, computer modelling of particle transport, sedimentary geology, and many other scientific disciplines. However, there is an almost complete lack of knowledge concerning bedforms consisting of mixtures of sand and mud. Sandy sediments are known to be "non-cohesive", because the sand particles do not stick together, whereas muds are made up of smaller particles that do stick together and so are called "cohesive" sediments. This project, COHBED, will take advantage of the latest developments in measurement technologies to produce information about the growth, movement and stability of bedforms that consist of natural mixtures of sands and muds, a natural condition that is very common but has rarely been studied before. In a new departure, this work includes a multidisciplinary team to combine the physics, mathematics, sedimentology, and biology of these systems, since we recognise that the organisms (from bacteria to sea grasses) that inhabit natural systems also change the erosional characteristics and bedform behaviour. This is why COHBED will include laboratory experiments and field surveys. A series of experiments in laboratory flow channels will investigate key factors that control the behaviour and properties of bedforms, such as: - System energy: effects of flow velocity, bed friction and flow depth- Bed properties: particle size, proportion of mud and sand, and biological effects- Time: the speed of bedform growth and rate of change as flow energy changes- Particle erosion: changes in the bedforms as smaller particles are eroded awayThe results of the laboratory studies will be compared with the behaviour of natural systems. Field surveys will be conducted to validate the predictions derived from the laboratory studies, using new techniques that for the first time allow essential simultaneous measurements of flow, sediment and bedform properties. The COHBED project will maintain the UK at the forefront of this research area and will help us to manage our coasts in the face of climate change.
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Validating Experimental Bedform Dynamics on Cohesive Sand-Mud Beds in the Dee Estuary
验证迪伊河口粘性砂泥床的实验床型动力学
DOI:
--
发表时间:
2014
期刊:
EGU General Assembly Conference Abstracts
影响因子:
--
作者:
[Baas Jaco H.]
通讯作者:
Baas Jaco H.
Bathymetry evolution of bedform scales over a spring-neap cycle in the Dee Estuary
迪伊河口春季-小潮周期内河床形态尺度的测深演化
DOI:
--
发表时间:
期刊:
影响因子:
--
作者:
[Jeremiah, S. C.]
通讯作者:
Jeremiah, S. C.
An investigation of boundary layer sediment dynamics over an intertidal estuary, the Dee Estaury, England.
英国迪伊河口潮间带河口边界层沉积物动力学研究。
DOI:
--
发表时间:
期刊:
影响因子:
--
作者:
[Eccles, H. S.]
通讯作者:
Eccles, H. S.
Dependence of ripple dimensions on cohesive and non-cohesive bed properties in the intertidal Dee Estuary
潮间带迪伊河口波纹尺寸对粘性和非粘性河床特性的依赖性
DOI:
--
发表时间:
2014
期刊:
EGU General Assembly Conference Abstracts
影响因子:
--
作者:
[Lichtman Ian]
通讯作者:
Lichtman Ian
Physical and biogenic influences on sediment dynamics in a mixed sediment intertidal environment.
混合沉积物潮间带环境中沉积物动力学的物理和生物影响。
DOI:
--
发表时间:
2015
期刊:
影响因子:
--
作者:
[Bass, S. J.]
通讯作者:
Bass, S. J.
共 9 条
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