前沿侦察:将沉积物剖面图像与多波束回声测深仪结合使用,用于海上风电电缆路线和地点表征

D. Carey, D. Doolittle, Kevin H. Smith
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引用次数: 1

摘要

在北美大西洋沿岸地质复杂的海上能源项目中,电缆路线的选择和风力涡轮机场地的评估对开发商和政府机构来说都是非常高的风险:有限的桌面数据,关键或敏感栖息地的不均匀分布,以及使用冲突,这些都是遇到的风险的一个例子。在海洋哺乳动物过境窗口期间进行多学科地球物理扩散(包括天气延迟)所需的成本不支持探索多条或替代路线。Fugro和INSPIRE Environmental开发了一种新方法,以降低海上风电项目所需的地球物理和底栖评估调查的风险和成本。海洋能源管理局(BOEM)要求收集现场数据,作为海上风电开发现场评估计划(SAP)的一部分,以进行地球物理和生物学表征。在三个海上风电项目的调查活动中,沉积物剖面图像(SPI)和平面视图(PV)图像的收集与多波束回声测深仪(MBES)声学数据收集相结合,以优化路线选择,提供声学数据的地面真实性,并表征底栖生物栖息地。每天下载SPI/PV数据,并与船上处理的MBES数据相结合,为优化调查操作提供近乎实时的指导。BOEM需要绘制敏感栖息地的地图,如深水珊瑚、鳗草床和硬底环境,包括基岩、巨石和鹅卵石栖息地,以及栖息地特征,以进行全面的底栖生物评估。这三个项目使用Forward scout方法提供的数据说明了快速数据采集和解释在支持项目关键声学测量方面的实用性。SPI/PV数据将以一种创新的可视化方式呈现,该可视化方式集成了剖面和平面视图图像以及经过处理的MBES数据。具有景观尺度海底特征的地面和底栖生物评估数据可视化为考古、底栖生物、渔业和工程评估提供了有价值的决策支持。这些综合技术展示了电缆路线和现场特征的协作方法的成功,并导致了前瞻性侦察方法的发展,以进一步降低进度和资产的风险,降低现场调查成本,并在项目规划的早期阶段纳入多学科(工程和环境)现场数据,这有利于利益相关者的参与活动。在对大型资产进行全面的地球物理和岩土工程(G&G)调查之前,当工程和受限栖息地的限制最小化时,电缆布线和现场评估就会得到优化。SPI/PV Forward scout调查小组可以在不需要许可证或受保护物种观察员(pso)的小型船上部署高频(>200 kHz)声学侦察工具。用于侦察的声学数据收集可以利用更广泛的数据保留,而无需满足国际海道测量组织的标准,并且在确定可接受的中心线进行全面调查之前,可以“扫描”拟议的电缆路线。SPI/PV摄影数据为声学侦察提供了真实的基础,如果在遣散之前沿着公认的中心线收集,也将为底栖生物评估提供可接受的基线数据。Forward Scouting方法利用季节性调查窗口(通常无法使用完整的地球物理设备或船只),减少了基于桌面数据审查的调查计划范围,为海上风电行业提供了成本和时间上的关键优势。通过地球物理和SPI/PV供应商之间的密切合作,前方侦察的潜力得到了优化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Forward Scouting: Use of Sediment Profile Imagery in Conjunction with Multibeam Echosounder Mapping for Offshore Wind Cable Routes and Site Characterization
Selection of cable routes and wind turbine site assessments for offshore energy projects in the often-complex geology of the North American Atlantic coast entails very high risks for developers as well as state agencies: limited desktop data, patchy distribution of critical or sensitive habitats, and use conflicts, are a sampling of the risks encountered. The costs required to conduct multi-disciplined geophysical spreads including weather delays during marine mammal transit windows does not support exploring multiple or alternative routes. A novel approach was developed by Fugro and INSPIRE Environmental to reduce the risks and costs of required geophysical and benthic assessment surveys for offshore wind projects. Collection of field data is required by the Bureau of Ocean Energy Management (BOEM) as part of the Site Assessment Plan (SAP) for geophysical and biological characterization in offshore wind development. Collection of Sediment Profile Imagery (SPI) and Plan View (PV) imagery was integrated with multibeam echosounder (MBES) acoustic data collection to optimize route selection, provide ground-truth of acoustic data, and characterize benthic habitats in survey campaigns at three offshore wind projects. The SPI/PV data were downloaded daily and combined with on-board processed MBES data to provide near real-time guidance for optimizing survey operations. BOEM requires the mapping of sensitive habitats such as deepwater corals, eelgrass beds, and hard bottom environments including bedrock, boulder and cobble habitats as well as habitat characterization for a full benthic assessment. The data presented from these three projects using the Forward Scouting approach illustrates the utility of rapid data acquisition and interpretation to support project-critical acoustic surveys. The SPI/PV data will be presented in an innovative visualization that integrates the profile and plan view imagery and processed MBES data. The visualization of the ground-truthed and benthic assessment data with landscape-scale seabed features has provided valuable decision-making support for archeological, benthic, fisheries, and engineering assessments. These combined technologies demonstrated the success of a collaborative approach to cable route and site characterization and led to development of the Forward Scouting approach to further reduce risk to schedules and assets, reduce site investigation costs, and incorporate multi-discipline (engineering and environmental) site data during early stages of project planning that is beneficial to stake-holder engagement activities. Cable routing and site assessment is optimized when engineering and restricted-habitat constraints are minimized prior to full geophysical and geotechnical (G&G) survey operations with large assets. The SPI/PV Forward Scouting survey team can be deployed with high-frequency (>200 kHz) acoustic reconnaissance tools on small vessels that do not require permits or protected species observers (PSOs). The acoustic data collection for reconnaissance can utilize wider swath data retention without the requirement to meet International Hydrographic Organization standards and ‘sweep’ the proposed cable routes prior to defining the accepted centerline for full spread surveys. The SPI/PV photographic data provides ground-truth for the acoustic reconnaissance and if collected along the accepted centerline prior to demobilization will also provide baseline data acceptable for benthic assessment. The Forward Scouting approach offers the offshore wind industry critical advantages in cost and time by utilizing seasonal survey windows often inaccessible to the full-complement of geophysical equipment or vessels and reducing the scope of survey plans based on desktop data review. The potential for Forward Scouting is optimized with close collaboration between geophysical and SPI/PV providers.
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