Effects of small marine energy deployments on oceanographic systems

Q3 Engineering
Jonathan Whiting, Lysel Garavelli, Hayley Farr, Andrea Copping
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Abstract

The placement and operation of marine energy deployments in the ocean have the potential to change flow patterns, decrease wave heights, and/or remove energy from the oceanographic system. Changes in oceanographic systems resulting from harvesting marine energy, particularly tidal and wave energy, may be of concern. These changes include alterations in nearfield and farfield physical processes, as well as potential secondary environmental effects such as changes in sediment transport patterns, biological processes, or coastal erosion. Knowledge of changes in oceanographic systems associated with marine energy is primarily available from numerical modeling studies, informed by some laboratory tests and very few field measurements. A literature review was conducted using the Tethys knowledge base and other online sources, building on conclusions from the Ocean Energy Systems-Environmental State of the Science report. Potential changes in oceanographic systems that may be caused by marine energy differ between tidal and wave devices because of different extraction mechanisms and siting locations. Numerical models show that tidal extraction on the order of hundreds of megawatts or with significant channel blockage is required to create changes in oceanographic processes that exceed natural variability. Effects from wave energy extraction in arrays are localized and dependent on array spacing and proximity to the shore. Available evidence supports the conclusion that the risk of significant environmental effects from such changes could be retired (i.e., less investigation required for every project) for small deployments—those representative of the state of the industry in 2021. Determining changes in oceanographic systems to be low risk for small deployments can thereby streamline environmental consenting by reducing monitoring needs at this early stage in the industry.
小型海洋能源部署对海洋系统的影响
在海洋中部署和运行海洋能有可能改变流动模式、降低波浪高度和/或从海洋系统中移除能量。采集海洋能(尤其是潮汐能和波浪能)导致的海洋系统变化可能会引起关注。这些变化包括近场和远场物理过程的改变,以及潜在的次生环境影响,如沉积物输 送模式、生物过程或海岸侵蚀的变化。与海洋能有关的海洋系统变化知识主要来自数值模拟研究,并辅以一些实验室测试和极少的实地测量。在《海洋能源系统--环境科学现状》报告结论的基础上,利用特提斯知识库和其他在线资料来源进行了文献综述。由于潮汐和波浪装置的提取机制和选址不同,海洋能源可能对海洋系统造成的潜在变化也不同。数字模型显示,数百兆瓦级的潮汐能提取或严重阻塞航道的潮汐能提取,需要在海洋学过程中产生超过自然变化的变化。阵列提取波浪能的影响是局部的,取决于阵列间距和与海岸的距离。现有证据支持这样的结论,即对于小型部署--代表 2021 年行业状况的部署--而言,这种变化造成重大环境影响的风险可以降低(即每个项目所需的调查较少)。确定海洋系统的变化对小型部署的风险较低,可在行业的早期阶段减少监测需求,从而简化环境同意程序。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
International Marine Energy Journal
International Marine Energy Journal Engineering-Ocean Engineering
CiteScore
1.70
自引率
0.00%
发文量
24
审稿时长
12 weeks
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