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Sedimentology of a tidal point-bar within the fluvial-tidal transition: River Severn Estuary, UK

机译:氟潮转型内潮汐点栏的沉积学:英国河河河河河

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5.1 INTRODUCTION Published studies of marine-dominated outer estuaries in the geological record are legion, but the identification of sediment sequences characteristic of the fluvial to tidal (F-T) transition remains difficult (e.g., Ashour et al., 2012; Bhattacharya et al, 2012; Bose and Chakraborty, 1994; Corbett et al., 2011; Flaig et al, 2011; Ghosh et al., 2005; Shanley and McCabe, 1995; Shanley et al., 1992; Van den Berg et al., 2007; Yoshida, 2000). This difficulty is due in part to a relative paucity of studies of modern process-based analogs that link the hydrodynamic processes and the associated sedimentology and stratigraphy of fluvial-influenced tidal deposits (Billy et al., 2012; Chaumillon et al., 2013; Choi et al., 2004; Gingras et al., 1999; Johnson and Dashtgard, 2013; Lambiase, 2013; Nanson et al., 2013; Sisulak and Dashtgard, 2.012; Smith, 1985, 1987, 1988; Vakarelov and Ainsworth, 2013). The zone of the fluvial to tidal transition is subject to the interaction of fluvial, tidal, and wind-wave activity and thus, as a transitional environment, may differ in the sedimentary response when compared with predominantly fluvial or predominantly marine estuarine systems (Dalrymple and Choi, 2007). Identifying the stratigraphic associations of these F-T transitions has economic relevance, as estuary-head locations in the geological record may be favorable for oil and gas reservoirs (Hubbard et al., 2002; Zaitlin et al., 1994). For example, the facies and reservoir models of the Lower Cretaceous McMurray Formation in Alberta, arguably one of the most important hydrocarbon reservoirs worldwide, indicate a marine-influenced, fluvial depositional setting (Fustic et al., 2012; Hubbard et al, 2011; Martinius et al., 2015; Musial et al., 2012). The objective of this study is to use shallow sedimentological borehole data and hydrodynamic data to (i) develop a point-bar conceptual depositional model in the F-T transitional zone of the estuary of the river Severn, UK and (ii) to contrast this deposit to borehole logs within the fluvial zone upstream and the marine zone downstream. The use of pollen (Loboziak et al., 2005) and diatoms (Vos and de Wolf, 1993) as diagnostic tools discriminating terrestrial, transitional, and fully marine deposits is increasingly important in studies of both modern and ancient deposits (Czarnecki et al., 2014) and so a pilot study of these components was included in this investigation. Thus, the study provides a modern example of a fluvial-tidal transitional zone depositional setting.
机译:5.1引言地质记录中海洋主导的外部河口的出版研究是军团的,但探测河流到潮汐(FT)转型的沉积物序列的鉴定仍然困难(例如,Ashour等,2012; Bhattacharya等,2012 ; Bose和Chakraborty,1994; Corbett等人,2011; Flaig等,2011; Ghosh等,2005; Shanley和McCabe,1995; Shanley等,1992; Van den Berg等,2007;吉田,2000)。这种困难是部分原因是与现代过程的基于过程的类似性的相对缺乏,这些类似物将流体动力过程和相关沉积学和氟氏湿沉积物的相关沉积学和地层性(Billy等,2012; Chaumillon等,2013; Choi等人,2004; Gingras等,1999; Johnson和Dashtgard,2013; 2013; Nanson等,2013; Sisulak和Dashtgard,2.012;史密斯,1985,1987,1988; Vakarelov和Ainsworth,2013年)。潮流转变的区域受氟,潮汐和风波活动的相互作用,因此,作为过渡环境,与主要氟尿或主要海洋河口系统(达尔里氏植物和Choi,2007)。确定这些F-T过渡的地层关联具有经济相关性,因为地质记录中的河口部门可能有利于石油和天然气储层(Hubbard等,2002; Zaitlin等,1994)。例如,艾伯塔省下白垩纪MCMurray形成的相片和储层模型,可以说是全世界最重要的碳氢化合物储层之一,表明了海洋影响的氟尿沉积设置(FustiC等,2012; Hubbard等,2011; Martinius等,2015年; Musial等,2012)。本研究的目的是使用浅沉积物钻孔数据和流体动力学数据至(i)在弗洛恩(II)河道河口河口的FT过渡区中发出点栏概念性沉积模型,以将这押金对比钻孔原木在河上游和海洋区域下游。使用花粉(Loboziak等,2005)和硅藻(VOS和De Wolf,1993)作为鉴别陆地,过渡和全海洋存款的诊断工具在现代和古代存款的研究中越来越重要(Czarnecki等人。但是,在这项调查中包含了对这些组件的试验研究。因此,该研究提供了氟潮过渡区沉积设置的现代示例。

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