Integrated and Adaptable Approach to Mapping Benthic Habitats to Support Offshore Wind Development off the Mid-Atlantic Outer Continental Shelf

D. Doolittle, Eric Swanson, Craig Scherschel, E. Revelas, Kathryn Rovang, Stephen Varnell
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Abstract

Offshore wind developers obtain extensive geophysical, geotechnical, and habitat data during Site Characterization activities. Integration and delivery of this information to a diverse group of stakeholders and Government agencies is required. We present an integrated benthic habitat mapping approach tailored to regional geology and ground conditions and discuss how various data was utilized to deliver multiple components of the permitting process. Multiple data sets were integrated and presented via a web-based GIS platform to aid delivery, visualization, and communication. Our unified approach to benthic habitat mapping and delivery of products to stakeholders was instrumental in successfully coalescing multiple performers to develop their individual deliverables in a cohesive and rapid manner. This approach reduced risk to schedule and budget, without sacrificing data density or quality. Four annual (2019–2022) benthic surveys were acquired to support Site Characterization and subsequent permitting processes. High-Resolution Geophysical data were collected concomitantly with the 2020 benthic survey data and used to refine subsequent 2021 and 2022 benthic survey designs. Benthic survey data consisted of grab sample tests (grain size), macrofaunal taxonomy, sediment profile and plan view imagery (SPI-PV), video imagery from each grab station, and towed video transects. Acoustic data products were processed and interpreted to create polygons of seafloor sediment coverage over the ASOW study area and ground-truthed with physical sampling, video, and digital still imagery to refine and validate acoustic data into a mappable model of essential fish and benthic habitats. Seafloor morphology and seabed sediment interpretations were coalesced into a benthic habitat model that displayed substrates consisting mostly of mobile sand sheets, with interspersed areas of gravelly sand and discrete patches of gravel. Overlying the substrate model was a range of benthic features and morphologies, including sand ridges, sand waves, megaripples, ripples, areas of depressional marks, hummocky seafloor, interbedded surficial sediments, irregular seafloor, and localized relief features. From these data, classified maps of Coastal Marine Ecological Standard (CMECS) substrates and fish habitats were made. Additional CMECS classification of benthic biotic components were mapped, showing the taxonomic communities that are present in each substrate. Seabed sediment modeling and morphological trends were dynamically studied and compiled into an interpreted and GIS-friendly dataset that enabled rapid online transfer to subject matter experts tasked with quantifying the benthic ecosystem across the development area. The methods and modeling that were produced by expert refinement of geophysical data to reflect the physically observed habitat structures allowed for dynamic minimum mapping unit variability while also isolating and identifying key areas of interest for benthic researchers and regulators. This mapping process led to an efficient and unified approach for all teams, saving project time and expense.
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测绘底栖生物栖息地以支持大西洋中部外大陆架海上风电开发的综合适应性方法
海上风电开发商在现场表征活动中获得了广泛的地球物理、岩土和栖息地数据。需要将这些信息整合并提供给不同的利益攸关方和政府机构。我们提出了一种针对区域地质和地面条件量身定制的综合底栖动物栖息地测绘方法,并讨论了如何利用各种数据来提供许可过程的多个组成部分。多个数据集通过基于网络的GIS平台集成和呈现,以帮助交付、可视化和交流。我们对底栖动物栖息地的测绘和向利益相关者交付产品的统一方法有助于成功地将多个参与者联合起来,以一种连贯和快速的方式开发各自的可交付成果。这种方法在不牺牲数据密度或质量的情况下降低了进度和预算的风险。获得了四次年度(2019-2022)底栖生物调查,以支持场地特征和随后的许可流程。高分辨率地球物理数据与2020年底栖生物调查数据一起收集,并用于完善随后的2021年和2022年底栖生物调查设计。底栖生物调查数据包括抓取样本测试(粒度)、大型动物分类、沉积物剖面和平面视图图像(SPI-PV)、每个抓取站的视频图像以及拖曳视频样带。声学数据产品被处理和解释,以创建ASOW研究区域海底沉积物覆盖的多边形,并通过物理采样、视频和数字静止图像进行地面处理,以将声学数据提炼和验证为基本鱼类和底栖动物栖息地的可测绘模型。海底形态和海底沉积物解释合并成一个底栖动物栖息地模型,该模型显示底物主要由流动沙片组成,其中散布着砾石砂和离散的砾石斑块。覆盖在底物模型上的是一系列底栖生物特征和形态,包括沙脊、沙波、巨波纹、涟漪、洼地标记区、丘状海底、互层表面沉积物、不规则海底和局部地形特征。根据这些数据,绘制了沿海海洋生态标准(CMECS)底物和鱼类生境分类图。绘制了其他底栖生物组分的CMECS分类图,显示了每种底栖生物中存在的分类群落。海底沉积物建模和形态趋势进行了动态研究,并编译成一个可解释的gis友好数据集,可以快速在线传输给负责量化整个开发区域底栖生态系统的主题专家。这些方法和模型是由专家对地球物理数据进行精化,以反映物理观察到的栖息地结构,从而允许动态最小映射单元变化,同时也隔离和确定底栖动物研究人员和监管者感兴趣的关键领域。这个映射过程为所有团队提供了一个高效和统一的方法,节省了项目的时间和费用。
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