通过资源特性和环境考虑来确定潮汐能项目的选址

A. Copping, Lysel Garavelli, Zhaoqing Yang, Taiping Wang, Mithun Deb, Candace Briggs
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引用次数: 0

摘要

潮汐能技术的发展已经发展到可以部署、操作、维护和恢复设备,并在一定程度上保证它们将产生足够的电力。对潮汐能产业的进一步发展同样重要的是能够选址并获得监管机构的许可来部署和操作这些设备。本文提出了潮汐装置初步选址的框架,借鉴了美国三个地点的案例研究,这些研究提供了支持潮汐装置部署的信息。通过美国的TEAMER资助机会,潮汐能设备和项目开发商能够与美国能源部国家实验室的科学家和工程师合作,为调查美国水域内潜在的潮汐能部署地点提供技术援助。在项目开始时,支持者已经确定了感兴趣的水体,并检查了这些水体中的限制和机会,以优化开发商的选址能力。利用数值模型和现场观测,我们在一定规模上描述了潮汐资源,这将允许优化能源提取。我们检查了部署和操作潮汐设备和阵列的自然和人为基础设施限制,包括航道宽度、水深测量、船舶交通、渡轮通道和电网互连,以缩小选址选择。我们还研究了感兴趣的水体中的生物资源,重点关注濒危海洋哺乳动物和鱼类的种群,以及支持它们的关键栖息地。然后将生物资源与美国联邦和州法规中适用的法规要求联系起来,这些法规要求适用于潮汐申请人希望部署的地区。根据这些分析,划定了首选的部署地点,并制定了满足监管要求的流程,包括所需的安装后监测计划。对部署潮汐能技术的后勤、监管和环境条件的初步评估是实现潮汐能项目合规的第一步。在美国,有三个地点被考虑用于潮汐能开发。第一个项目包括华盛顿州北部靠近美加边境的群岛周围地区,目的是安装一个或多个浮动潮汐装置,以增加能源弹性和为孤岛服务的单一公用事业的独立性。第二个地点在缅因州的沿海水域,潮汐能将被添加到当地的电网中。第三个地点是在阿拉斯加的库克湾,申请人寻求在那里部署多个浮动潮汐装置,为安克雷奇市提供可再生能源,取代传统的发电方式。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Siting tidal energy projects through resource characterization and environmental considerations
The development of tidal energy technologies has progressed to where devices can be deployed, operated, maintained, and recovered with some level of assurance that they will and produce adequate levels of power. Equally important to further the tidal energy industry is the ability to site and gain regulatory permission to deploy and operate these devices. This paper sets out a framework for reaching preliminary siting of tidal devices, drawing from case studies from three locations in the US where research studies have provided information in support of tidal deployments. Through the TEAMER funding opportunity in the US, tidal energy device and project developers were able to engage US Department of Energy national laboratory scientists and engineers to provide technical assistance for investigating potential tidal deployment sites within US waters. The bodies of water of interest had already been determined by the proponents at the start of the project and constraints and opportunities within those bodies of water were examined to optimize siting capabilities for the developers. Using numerical models and field observations, we characterized tidal resources at a scale that will allow for optimization of energy extraction. We examined the natural and human infrastructure constraints for deploying and operating tidal devices and arrays including channel widths, bathymetry, vessel traffic, ferry lanes, and grid interconnects, in order to narrow siting options. We also examined the biological resources in the water bodies of interest, with a focus on populations of endangered marine mammals and fish, and the critical habitats that support them. The biological resources were then related to the applicable regulatory requirements in place in US for federal and state statutes in areas where the tidal applicants wish to deploy. Based on these analyses, preferred deployment locations were delineated and processes for meeting regulatory requirements laid out, including post-installation monitoring plans that will be needed. This initial assessment of logistical, regulatory, and environmental conditions for the deployment of a tidal technology is a first step toward the achievement of regulatory compliance for tidal energy projects. Three locations were considered for tidal energy development in the US. The first one included the area around an archipelago of islands in the northern portion of Washington State, near the US-Canada border, with the intent of installing one or more floating tidal devices to add energy resilience and independence for the single utility that services the isolated islands. The second location was in the coastal waters of Maine where tidal power would be added to the local electrical grid. The third location was in Cook Inlet, Alaska, where the applicant seeks to deploy multiple floating tidal devices to provide renewable energy in place of conventionally generated power for the city of Anchorage.
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