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Techno-economic optimisation of battery storage for grid-level energy services using curtailed energy from wind

机译:从风中缩减能量的电网电池电池储存技术经济优化

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The increasing integration of renewable energy sources makes balancing an electricity grid challenging due to their intermittency. Renewable energy can be curtailed especially when production exceeds demand or when there are transmission and/or distribution network congestions within a grid. However, curtailment would become unnecessary with battery storage, provided the battery storage has enough available storage capacity, which can store energy during the time of excess generation and in turn discharge it to the grid once the demand is high during peak times. Hence, stored energy from batteries can potentially offset supply from expensive and environmentally harmful peak plants e.g. open/combined cycle gas turbine. We investigated the techno-economic prospects of the utilisation of curtailed energy from the wind with bulk battery storage to replace open and combined cycle gas turbine power plants, by taking the UK as a case study. A techno-economic model to size and optimise a Li-ion type battery was developed. The optimisation aimed to determine at what cost and size the storage can be commercially viable for grid-level energy applications. Results show that under base case assumptions of a 15% day to day curtailment from wind and 200 pound/kWh battery cost, an optimised battery size of 1.25 GWh could supply 285 GWh peak demand per annum and its corresponding net present value of 22.4m pound, internal rate of return of 1.7% and a payback period of 14 years could be achieved. However, to achieve the internal rate of return of 8%, a minimum hurdle rate for investment, the cost of battery would need to be below 150 pound/kWh. Sensitivity analysis with parameters such as curtailed wind, depth of discharge, battery efficiency, and cost and income of battery shows that all techno-economic parameters considered in this research have a significant impact on the commercial viability of battery storage for grid applications.
机译:可再生能源的越来越多的整合使得由于他们间歇性而挑战电网。当生产超过需求或网格内的传输和/或分配网络拥塞时,尤其可能会限制可再生能源。但是,由于电池存储器具有足够的可用存储容量,缩减会使电池存储可能会产生足够的可用存储容量,这可以在多余的时间内存储能量,并且在高峰时需求较高,又将其放电到电网。因此,来自电池的存储能量可能潜在地抵消来自昂贵和无害的峰值植物的供应。开放式/联合循环燃气轮机。我们调查了利用风险利用折扣能量的技术经济前景,通过将英国作为案例研究,通过散装电池储存来取代开放和联合循环燃气轮机发电厂。开发了一种技术经济模式,尺寸和优化锂离子型电池。优化旨在确定存储在什么成本和尺寸可以在商业上可行的电网级能量应用。结果表明,根据风电和200磅/千瓦时缩减的基本情况下的15%折扣,优化的电池尺寸为1.25 GWH,每年的峰值需求为285 GWH峰值需求,其相应的净值为22.4m磅,可以实现1.7%的内部返回率和14年的投资回收期。然而,为了实现8%的内部返回率,投资最少的障碍率,电池的成本需要低于150磅/千瓦时。诸如缩减风,放电深度,电池效率和电池成本和收入等参数的敏感性分析表明,该研究中考虑的所有技术经济参数对电池应用的电池储存的商业活力产生了重大影响。

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