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Electrification of offshore petroleum installations with offshore wind integration

机译:海上风电一体化为海上石油装置提供电气化

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Electric power supply to oil and gas platforms is conventionally provided by gas turbines located on the platforms. As these gas turbines emit considerable amounts of CO_2 and NOX, it is desirable to find alternative solutions. One alternative is to feed the platforms from the onshore power system via subsea power cables, which already have been implemented on some platforms in the Norwegian part of the North Sea. The paper studies a cluster of petroleum installations in this geographic area, connected to the Norwegian onshore power system through an HVDC voltage link. In the study, an offshore wind farm is also connected to the offshore AC power system. The main focus is investigation of transient stability in the offshore power system, and several fault cases have been studied for different levels of wind power generation. Simulations show that faults on the offshore converter platform can be critical due to the dependency of the reactive power delivered by the HVDC link to the offshore AC system. However, it is shown that local wind power production matching the offshore power demand will improve both voltage- and frequency-stability. Further on, it is indicated that offshore reactive power injections or alternative wind farm control topologies could improve voltage stability offshore.
机译:常规上,石油和天然气平台的电力供应是由位于平台上的燃气轮机提供的。由于这些燃气轮机排放大量的CO_2和NOX,因此希望找到替代解决方案。一种选择是通过海底电缆从陆上电力系统为平台供电,该电缆已在北海挪威部分地区的某些平台上实施。本文研究了在该地理区域内通过HVDC电压链路连接到挪威陆上电力系统的一系列石油设施。在研究中,海上风电场也连接到海上交流电源系统。重点是研究海上电力系统的暂态稳定性,并针对不同水平的风力发电研究了几种故障案例。仿真表明,由于HVDC链路向海上AC系统输送的无功功率的依赖性,海上转换器平台上的故障可能非常关键。然而,事实表明,与海上电力需求相匹配的本地风力发电将提高电压和频率稳定性。进一步地,表明海上无功注入或替代的风电场控制拓扑可以改善海上的电压稳定性。

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