The hydrodynamics of microbial landscapes
The hydrodynamics of microbial landscapes
批准号:
NE/K012819/1
负责人:
Gregory Sambrook Smith
金额:
$51.16万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2014
资助国家:
英国
项目状态:
已结题
起止时间:
2014 至 --
中文摘要
水在表面上的流动方式是环境中最复杂的建模和预测现象之一。理解进出河床卵石和砾石的复杂流动尤其具有挑战性,而在这种环境中,很大程度上忽略了另一种复杂程度,即附着在表面的微生物,如藻类(统称为生物膜)对流动过程的影响。鉴于生物膜存在于所有自然环境和许多工程环境中,如废水系统,这代表着一个巨大的知识鸿沟。但是为什么我们需要了解流-生物膜的相互作用呢?首先,河流生态学家认识到,河床是各种物种的重要栖息地。从海床上方流入地下的水流方式在很大程度上决定了向这个栖息地提供多少氧气和营养物质。其次,渔业管理者早就明白,鲑鱼卵在河床上孵化的可能性将取决于向产卵的砾石沉积物持续供应含氧水。第三,了解生物膜如何影响废水系统内的流动或导致饮用水变色是水资源管理者的一个重要考虑因素。因此,有一系列非常重要的环境和工程背景需要对水如何运动进行详细的预测,但没有办法准确地测量或模拟这一点,因为生物膜可能必须影响这些过程。这项建议的总体目标是发展一个定量的数值表示的微尺度水力响应的生物膜强迫。这将通过使用开创性的新的实验和数值方法来应对这一挑战来实现。第一个任务是准确地测量床上的流量,以及床本身的生物膜和孔隙空间内的流量。通过在一系列包含完整生物膜培养的小通道中使用实验室PIV(粒子成像测速)技术,这一重大问题将被克服。这项技术的工作原理是在流动中播撒微小的反射颗粒,并提供激光的高强度照明,然后相机记录它们如何在流动中围绕生物膜和在实验通道的孔隙空间内移动。使用一种特殊的处理器,这些数字图像可以转换成数字数据,准确地记录水流如何穿过河床,然后进入河床。这样的测量以前从来都不可能。该项目的第二阶段是利用这一独特的数据集带来的新的理解来开发和测试一个三维数值模型,该模型可用于在更广泛的环境和工程背景下进一步了解和探索生物膜对床上和床内流动过程的影响。这将使用一种特别修改的计算流体动力学(CFD)模型来实现,该模型将被开发,以便它能够解释生活在更稳定的沟道表面上的生物膜的动态性质(即它们随着水流移动的事实)。本项目中将使用的测量和建模方法的进步代表着真正的突破,将揭开从最具挑战性的环境之一获得有用数据的内在问题。同时,开发一个可广泛使用的数值模型将确保这一新的理解能够被应用和调整,以应对各种现实世界的环境挑战,并与废水工业等领域相关。
英文摘要
The way in which water flows across a surface is one of the most complex phenomena to model and predict accurately in the environment. Understanding complex flows moving into and from pebbles and gravels on river beds is especially challenging An additional level of complexity that has been largely overlooked in this environment is the effect that microorganisms such as algae, (collectively known as biofilms), attached to surfaces have on the flow processes. Given that biofilms occur in all natural environments and many engineered contexts such as wastewater systems this represents a significant knowledge gap. But why do we need to understand flow-biofilm interactions? Firstly, stream ecologists recognise that the bed of the river is an important habitat for a diverse range of species. The way flow from above the bed makes its way into the subsurface largely dictates how much oxygen and nutrients are supplied to this habitat. Secondly, fisheries managers have long understood that the probability of salmon eggs hatching in river beds will be dependent on a continuous supply of oxygenated water to the gravelly sediments in which they are laid. Thirdly, knowledge of how biofilms can affect the conveyance of flow within wastewater systems or lead to discolouration of potable waters is an important consideration for water managers. There are thus a broad range of highly important environmental and engineered contexts that require detailed predictions of how water moves, yet there is no way of measuring or modelling this accurately which takes into account the effect that biofilms may have to influence these processes. The overall aim of this proposal is to develop a quantitative numerical representation of micro-scale hydraulic response to biofilm forcing. This will be achieved by using pioneering new experimental and numerical approaches to meet this challenge. The first task is to accurately measure flow both right at the bed and within the biofilms and pore spaces of the bed themselves. This significant problem will be overcome by using laboratory PIV (particle imaging velocimetry) techniques in a range of small channels containing intact biofilm cultures. The technique works by seeding the flow with tiny reflective particles, and providing high intensity illumination from a laser, a camera then records how they move within the flow around the biofilms and within the pore spaces of the experimental channel. Using a special processor, these digital images can be turned into numerical data that accurately records how flow moves across and then into the river bed. Such measurements have never been possible before. The second phase of the project is to use the new understanding made possible by this unique dataset to develop and test a 3-D numerical model that can be used to further understand and explore the influence of biofilms on the flow processes at and within the bed over a much broader range of environmental and engineered contexts. This will be achieved using a specially modified computational fluid dynamics (CFD) model which will be developed so that it can account for the dynamic nature of the biofilms (i.e. the fact that they move with the flow) that live on the more stable channel surface.The advances in measurement and modelling approach that will be used in this project represent real breakthroughs that will unlock the inherent problem of gaining useful data from one of the most challenging of environments. Meanwhile, the development of a numerical model that can be widely used will ensure that this new understanding can be applied and adapted to meet a variety of real world environmental challenges as well as being of relevance to areas such as the wastewater industry.
期刊论文(3)
专著(0)
科研奖励(0)
会议论文
DOI:
10.1002/2016wr019662
发表时间:
2017-04
期刊:
Water Resources Research
影响因子:
5.4
作者:
[S. Sinha;R. Hardy;G. Blois;J. Best;G. S. Sambrook Smith]
通讯作者:
S. Sinha;R. Hardy;G. Blois;J. Best;G. S. Sambrook Smith
DOI:
10.1016/j.scitotenv.2021.146067
发表时间:
2021-02
期刊:
The Science of the total environment
影响因子:
--
作者:
[Raquel Arias Font;K. Khamis;A. Milner;G. S. Sambrook Smith;M. Ledger]
通讯作者:
Raquel Arias Font;K. Khamis;A. Milner;G. S. Sambrook Smith;M. Ledger
DOI:
10.1029/2019wr026032
发表时间:
2020-12
期刊:
Water Resources Research
影响因子:
5.4
作者:
[F. Kazemifar;G. Blois;M. Aybar;Patricia Perez Calleja;R. Nerenberg;S. Sinha;R. Hardy;J. Best;G. S. Sambrook Smith;K. Christensen]
通讯作者:
F. Kazemifar;G. Blois;M. Aybar;Patricia Perez Calleja;R. Nerenberg;S. Sinha;R. Hardy;J. Best;G. S. Sambrook Smith;K. Christensen
THE EVOLUTION OF GLOBAL FLOOD HAZARD AND RISK [EVOFLOOD]
-
批准号:NE/S015736/1
-
项目类别:Research Grant
-
资助金额:$25.09万
-
财政年份:2021
-
负责人:Gregory Sambrook Smith
-
依托单位:
International Freshwater Microplastics Network
-
批准号:NE/T004533/1
-
项目类别:Research Grant
-
资助金额:$9.88万
-
财政年份:2019
-
负责人:Gregory Sambrook Smith
-
依托单位:
Modelling how sediment suspension controls the morphology and evolution of sand-bed rivers
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批准号:NE/L005441/1
-
项目类别:Research Grant
-
资助金额:$8.16万
-
财政年份:2015
-
负责人:Gregory Sambrook Smith
-
依托单位:
The sedimentology of fluvial megascours
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批准号:NE/I023228/1
-
项目类别:Research Grant
-
资助金额:$37.37万
-
财政年份:2012
-
负责人:Gregory Sambrook Smith
-
依托单位:
The sedimentary dynamics of fine-grained rivers: a novel application of marine geophysics to develop new fluvial facies models
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批准号:NE/I015876/1
-
项目类别:Research Grant
-
资助金额:$4.79万
-
财政年份:2011
-
负责人:Gregory Sambrook Smith
-
依托单位:
Do floods matter? Bridging the gap between fluvial morphodynamics and alluvial architecture
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批准号:NE/H007288/1
-
项目类别:Research Grant
-
资助金额:$6.37万
-
财政年份:2010
-
负责人:Gregory Sambrook Smith
-
依托单位:
Morphodynamics and sedimentology of the tidally-influenced fluvial zone (TIFZ)
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批准号:NE/H007261/1
-
项目类别:Research Grant
-
资助金额:$6.85万
-
财政年份:2010
-
负责人:Gregory Sambrook Smith
-
依托单位:
Fluid dynamics across the interface in gravel-bed rivers; quantification and numerical modelling of flow in the hyporheic zone
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批准号:NE/E003494/1
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项目类别:Research Grant
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资助金额:$3.84万
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财政年份:2007
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负责人:Gregory Sambrook Smith
-
依托单位:
Fluid dynamics across the interface in gravel-bed rivers; quantification and numerical modelling of flow in the hyporheic zone
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批准号:NE/E006884/1
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项目类别:Research Grant
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资助金额:$43.69万
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财政年份:2007
-
负责人:Gregory Sambrook Smith
-
依托单位:
国内基金
海外基金
碳-铁-微生物对滩涂围垦稻田土壤团聚体形成和稳定的调控机制
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批准号:41977088
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项目类别:面上项目
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资助金额:61.0万元
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批准年份:2019
-
负责人:刘亚龙
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依托单位:
水热炭的微生物陈化(Microbial-aged Hydrochar)及其对稻田氨挥发的影响机制
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批准号:41877090
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项目类别:面上项目
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资助金额:61.0万元
-
批准年份:2018
-
负责人:冯彦房
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依托单位:
微生物发酵过程的自组织建模与优化控制
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批准号:60704036
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项目类别:青年科学基金项目
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资助金额:21.0万元
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批准年份:2007
-
负责人:高学金
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依托单位: