通过创新技术与储能相结合,利用可再生能源减少海上平台二氧化碳排放的案例研究

Epoupa Mengou Joseph, G. Chiara, Alessi Andrea, Terenzi Andrea, Vecchione Michela, Binaschi Marco, Di Salvo Salvatore R, N. Anglani
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引用次数: 1

摘要

由于在人类活动中实现碳中和的全球目标,特别是与能源生产相关的活动,储能正在进入能源分配供应链。与储能相结合的可再生能源在这一框架中发挥着重要作用。这项研究的目的是通过模拟来评估新的可再生能源技术对微电网的影响,以尽量减少化石燃料的消耗。案例研究考虑了一个混合微电网,包括:一个燃气微型涡轮机,有机光伏板(OPV),一个点吸收波能转换器,一个钒氧化还原液流电池和一个负载。微电网位于澳大利亚北部海岸附近的一个海上碳氢化合物工厂。首先,研究了澳大利亚的气象资料,确定了三个季节(命名为ST1、ST2和ST3)。通过对安装在opv面板上收集的数据进行分析,建立了气象数据与opv性能之间的相关性。这种关系已被用于评估感兴趣地点的opv潜在产量。放置在亚得里亚海的波浪能转换器的性能与波浪能矩阵之间也有类似的相关性,以确定一个合适的功率数据参考,用于潜在的波浪能转换器生产到澳大利亚海岸。最后,对微电网的行为进行了建模。考虑了不同的情景,在最佳气象条件下的最佳情景可以大幅减少燃气微型涡轮机的使用,从而实现最低的二氧化碳排放。事实上,天然气的消耗可以总结如下:第一季节(ST1):在这个季节,负荷完全由可再生能源和电池供电,因此天然气的日常消耗为零。第二季(ST2):从上午09:00到晚上07:00对电池充电,剩余电量来自可再生能源。该配置每日天然气消耗量为10.73 Sm3/d,相当于987.16 Sm3/ ST2(占92天)。第三季(ST3):上午09:00至晚上07:00对电池充电,剩余电量来自可再生能源。该配置每日天然气消耗量为6.58 Sm3/d,相当于1006.74 Sm3/ ST3(占120天)。避免二氧化碳排放2062吨/年。该案例研究展示了新的可再生能源技术,如有机光伏发电和波浪能转换器,以及长时间的存储系统,如何方便地应用于有限空间的海上平台脱碳目的。
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A Case-Study for the Reduction of CO2 Emissions in an Offshore Platform by the Exploitation of Renewable Energy Sources Through Innovative Technologies Coupled with Energy Storage
Energy storage is entering in the energy distribution supply chain due to the global goal of achieving carbon neutrality in human activities, especially those related to energy production. Renewable energies integrated with energy storage play an important role in this framework [1]. The purpose of the study is to evaluate through simulations the impact of new renewable energy technologies in a microgrid to minimize fossil fuels consumption. The case study considers a hybrid microgrid including: a gas microturbine, organic photovoltaic panels (OPV), a point absorber wave energy converter, a vanadium redox flow battery and a load. The microgrid is placed in an offshore hydrocarbon plant near the northern coast of Australia. Firstly, Australian meteorological data have been studied and three seasons identified (named ST1, ST2 and ST3). Then a correlation has been established between meteorological data and OPVs performances, analyzing data collected on OPVs panels installed. This relationship has been used to assess OPVs potential production at the site of interest. Similar correlation was made between the performances of a wave energy converter placed in the Adriatic Sea and the wave power matrix, to determine a suitable power data reference for the potential production of a wave energy converter to the Australian coast. Finally, the behavior of the microgrid was modeled. Different scenarios have been considered and the best one with optimal meteorological conditions enables lead to drastically decrease of the use of gas micro turbine resulting in lowest CO2 emissions. In fact, the consumption of natural gas has been summarized as follow: Season 1 (ST1): during this season the load is entirely fed by the renewable sources and by the battery, with consequent zeroing of the daily consumption of natural gas. Season 2(ST2): the battery is charged from 09:00am to 07:00pm with the exceeding power from the renewable sources. This configuration involves a daily natural gas consumption of 10.73 Sm3/d, which is equivalent to 987.16 Sm3/ ST2 (accounting for 92 days). Season 3(ST3): the battery is charged from 09:00am to 07:00pm with the exceeding power from the renewable sources. This configuration involves a daily natural gas consumption of 6.58 Sm3/d, which is equivalent to 1006.74 Sm3/ ST3 (accounting for 120 days). The avoided CO2 emissions are 2062 tons/year. This case study showed how the new renewable technologies, such as organic photovoltaics and wave energy converter, coupled with a long duration storage system, can be conveniently applied in sites with limited space for the decarbonization purpose of an offshore platform.
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