Experimental investigation of the hydrodynamics in pockmarks using particle tracking velocimetry

被引:0
作者
Mauro Pau
Galen Gisler
Øyvind Hammer
机构
[1] University of Oslo,Physics of Geological Processes
来源
Geo-Marine Letters | 2014年 / 34卷
关键词
Vertical Velocity; Settling Velocity; Volume Transport; Particle Tracking Velocimetry; Cohesive Sediment;
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中图分类号
学科分类号
摘要
Water tank experiments were performed in order to investigate the behaviour of currents in pockmarks. A particle-seeded flow was visualised and quantified with the aid of the particle tracking velocimetry technique. The employed analogue pockmark is a 1:100 idealised scale model of a natural pockmark, while the highest Reynolds number in the experiments was one order of magnitude smaller than in nature. Interaction of the flow with the pockmark geometry resulted in an upwelling current downstream of the pockmark centre, along with enhanced water turbulence in the depression. Scaling-up the experimental measurements, it is found that the upwelling would be capable of preventing the settling of particles as large as very fine sand. Furthermore, the increased turbulence would support the suspended fine material, which can thus be transported away before settling. The net effect for a variable-direction near-bed current over long periods of time would be to winnow the settling sediments and reduce the sedimentation rate in pockmarks. These mechanisms may be responsible for the observed lack of sediment infill and the typical presence of relatively coarser sediments inside pockmarks compared to the surrounding bed. In contrast, sediments transported as bedload are likely to be deposited in pockmarks because of the weakening of near-bed currents as well as lateral flow convergence associated with the upwelling. Bedload, however, may not be the dominant mode of sediment transport in areas covered by cohesive sediments, where pockmarks are found.
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页码:11 / 19
页数:8
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[1]  
Bøe R(1998)Elongate depressions on the southern slope of the Norwegian Trench (Skagerrak): morphology and evolution Mar Geol 146 191-203
[2]  
Rise L(2011)More than a century of bathymetric observations and present-day shallow sediment characterization in Belfast Bay, Maine, USA: implications for pockmark field longevity Geo-Mar Lett 31 237-248
[3]  
Ottesen D(2009)Pockmark-like depressions near the Goliat hydrocarbon field, Barents Sea: morphology and genesis Mar Pet Geol 26 1035-1042
[4]  
Brothers LL(2010)Morphology of pockmarks along the western continental margin of India: employing multibeam bathymetry and backscatter data Mar Pet Geol 27 2107-2117
[5]  
Kelley JT(1976)The influence of suspended cohesive sediments on boundary-layer structure and erosive activity of turbulent sea-water Mar Geol 22 189-206
[6]  
Belknap DF(2009)Numerical simulation of upwelling currents in pockmarks, and data from the Inner Oslofjord, Norway Geo-Mar Lett 29 269-275
[7]  
Barnhardt WA(1985)Formation of pockmarks by pore-water escape Geo-Mar Lett 5 193-197
[8]  
Andrews BD(1998)Gas seepage as an indicator of deeper prospective reservoirs. A study based on exploration 3D seismic data Mar Pet Geol 15 1-9
[9]  
Maynard ML(1983)Elongated depressions associated with pockmarks in the Western Slope of the Norwegian Trench Mar Geol 51 35-46
[10]  
Chand S(1984)Gas-induced erosion features in the North Sea Earth Surf Process Landf 9 209-228