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Optimisation in operating strategies for concentrating solar power plants

机译:优化太阳能发电厂的运营策略

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This research paper emanates from a directive of Eskom, South Africa's power utility, to acquire a more full understanding of the technical, financial, and operational aspects of running a plant that is built on concentrating solar central receiver technology. Eskom owns the supply chain of electricity, this includes generation, transmission, distribution and management of the electric grid. The power utility identified the need to understand the operating capabilities of such plants within the South African electric grid. Therefore, to demonstrate the role and value Concentrated Solar Power (CSP) with storage offers to the electric grid, an array of operating strategies was identified during the design phase of Eskom's Solar-1 project. These operating strategies explored in this paper are; Maximising Power Generation, Maximise Plant Revenue, Minimise Energy Dumping and Optimise Electric Grid (base load, peaking and auxiliary services). A Typical Meteorological Year (TMY) data set for the case study plant situated in Upington, South Africa is used to obtain the annual performance of the plant. In the 'Maximise Power Generation' operating strategy the developed model increases the power block efficiency by 1.8% utilising part-load operational optimisation instead of running the turbine at full load until depletion of the hot storage tank. This is achieved by reducing the total annual turbine stops by 50% to only 176 stops. The thermal energy saved from start-up of the power block is utilised for power generation instead. Results from the 'Base Load' operating strategy reduces the turbine stops by 85% to only 52 stops annually. Therefore, increasing the turbine online hours to 94.5%. The results from the 'Minimise Energy Dumping' operating strategy shows that it is possible to reduce energy dumping from 4.0% to 2.7% by effectively optimising the dispatch from the hot storage tank at selected times and increasing the power block output to 110%. As a result, an additional 7.4% of electric energy is generated from this saving. Under the 'Optimise Electric Grid' operating strategies, the complementary services of CSP to other non-dispatchable power generation technologies such as wind and photovoltaics are investigated. CSP with storage has the potential to increase the utilisation factor of distribution substations in grid constrained areas within the grid. This opportunity greatly increases the market of CSP and emphasises the value of thermal storage. However, plant design optimisation is required for this operating strategy as it greatly affects the plant performance of the case study plant. Although CSP with storage demonstrates continuous reliable power delivery to the electric grid it also provides complementary services to non dispatchable generating technologies.
机译:本研究论文源于南非电力公司Eskom的指令,以更全面地了解运营以集中式太阳能中央接收器技术为基础的电厂的技术,财务和运营方面。 Eskom拥有电力供应链,其中包括电网的发电,输电,配电和管理。电力公司确定需要了解南非电网内此类电厂的运行能力。因此,为了展示储能为电网带来的集中式太阳能(CSP)的作用和价值,在Eskom的Solar-1项目的设计阶段确定了一系列运行策略。本文探讨的这些操作策略是:最大化发电量,最大化工厂收入,最小化能源倾销并优化电网(基本负荷,调峰和辅助服务)。位于南非阿平顿的案例研究工厂的典型气象年(TMY)数据集用于获得工厂的年度绩效。在“最大发电量”运行策略中,开发的模型利用部分负荷运行优化而不是使涡轮机在满负荷运行直至耗尽热能储存箱之前,将动力块效率提高了1.8%。这可以通过将每年的涡轮机总停机次数减少50%至仅176次停机来实现。功率块启动后节省的热能被用于发电。 “基本负荷”运行策略的结果使涡轮机停机次数减少了85%,每年仅为52次。因此,涡轮机的在线小时数增加到94.5%。 “最小化能量倾倒”运行策略的结果表明,可以通过在选定的时间有效优化热储罐的调度并将功率模块的输出提高到110%,将能量倾倒从4.0%降低到2.7%。结果,通过这种节省产生了额外的7.4%的电能。在“优化电网”运营策略下,研究了CSP与其他不可调度发电技术(例如风能和光伏发电)的互补服务。具有存储功能的CSP可能会提高电网内电网受限区域的配电变电站的利用率。这个机会极大地增加了CSP的市场,并强调了蓄热的价值。但是,此操作策略需要优化工厂设计,因为它会极大地影响案例研究工厂的工厂性能。尽管具有存储功能的CSP可以向电网持续可靠地供电,但它还可以为不可调度的发电技术提供补充服务。

著录项

  • 来源
    《Refocus》 |2019年第9期|78-91|共14页
  • 作者单位

    Eskom Sandton South Africa STERG Stellenbosch University South Africa;

    STERG Stellenbosch University South Africa;

    Eskom Sandton South Africa;

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