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Offshore Hydrogen Production in the North Sea Enables Far Offshore Wind Development

机译:北海的海上氢气生产可实现远海风力发展

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The North Sea area is in transition. While oil and gas production is in decline, the deployment of offshore wind turbines in large scale wind parks to produce offshore renewable energy is accelerating. The accelerated deployment of renewable wind increasingly far offshore creates challenges to transport large amounts of energy to shore. Traditional energy transport from offshore wind by means of HVAC power cables becomes uneconomic beyond 100 km from shore and energy losses are unacceptably high. Moving to HVDC cables reduces the power losses, but increases the cost of power conversion offshore. An alternative that currently is being considered is energy transport via molecules, in the form of hydrogen. The hydrogen is produced from seawater after desalinization by means of water electrolysis. The current pipeline infrastructure in the North Sea can be reused to transport the hydrogen at high pressure and low cost to shore. As large industry sectors are considering decarbonization by means of hydrogen, in particular for hydrotreatment. desulfurization and ammonia production, the so called 'green' hydrogen can directly be used onshore without reconversion to power. Half of the assets in the North Sea are approaching end of life and decommissioning in the coming decade, which means they become available for re-purposing. Most offshore trunk lines also operate under their maximum capacity. Prior and ongoing research projects are aimed at identifying win-win combinations from this situation: to re-use platforms for hydrogen production (P2G), pipelines for hydrogen transport and perhaps wells for hydrogen or CO_2 storage such that the variable nature of wind power can be exploited more efficiently. The objective of the PosHYdon project, the first offshore hydrogen production plant is not only to build up experience with the production of H_2 in an offshore environment, but it will also be a test center for innovative Power to Gas (P2G) technologies and integrated systems. The aim of the facility is to accommodate at least 1 MW of electrolyzer capacity, including its water treatment unit and auxiliary units. The objective of the project is to gain experience with the operation of a hydrogen production unit offshore, and the admixing of hydrogen in an multiphase flow pipeline carrying oil and gas towards a process separation and treatment hub located nearby. The pilot seeks to gain more detailed information on cost of installation and operation of an electrolyser unit in an offshore environment.
机译:北海地区正在过渡。虽然石油和天然气产量正在下降,但大型风电机的近海风力涡轮机部署,以生产海上可再生能源正在加速。加速部署可再生风的越来越远的海上越来越遥远地创造了将大量能量运输到岸边的挑战。通过HVAC电力电缆的传统能源运输通过HVAC电缆变得不经济,距离岸上超过100公里,能量损失是不可接受的。移动到HVDC电缆降低了功率损耗,但增加了电源转换近海的成本。目前被认为是通过分子的能量传输的替代方案,以氢的形式。通过水电解后从海水化后由海水生产氢。北海的目前的管道基础设施可以重复使用,以在高压下运送氢气和低成本到岸上。随着大型工业部门正在考虑通过氢气的脱碳,特别是用于加氢处理。脱硫和氨生产,所谓的“绿色”氢气可以直接在陆上使用,而无需重新转换到电力。北海的一半资产正在接近未来十年的生命结束,这意味着它们可用于重新制作。大多数海上行李箱线也在其最大容量下运行。先前和正在进行的研究项目旨在识别这种情况的双赢组合:重新使用氢气生产平台(P2G),氢气输送管道,也许是氢气或CO_2储存的井,使风力的可变性能可以被更有效地剥削。 Poshydon项目的目的是,第一个海上氢气生产工厂不仅可以在海上环境中生产H_2的经验,而且还将成为天然气(P2G)技术和集成系统的创新权力的测试中心。设施的目的是容纳至少1兆瓦的电解槽容量,包括其水处理单元和辅助单元。该项目的目的是获得近海氢生产单位的运作经验,以及在附近的过程分离和治疗中心的多相流动管道中的氢气和气体中的氢气混合。导频试图在海上环境中获得有关电解器单元的安装和操作成本的更详细信息。

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