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On the Use of Thermal Energy Storage for Flexible Baseload Power Plants: Thermodynamic Analysis of Options for a Nuclear Rankine Cycle

机译:关于柔性BaseLoad发电厂的热能储存的使用:核兰骑兵循环的热力学分析

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摘要

The intermittency of wind and solar energy can disrupt the dynamic balance utilities must maintain to meet fluctuating demand. This work examines the use of thermal energy storage (TES) to increase the operational flexibility of a baseload power plant and thus incentivize renewable energy and decarbonize the grid. A first and second law thermodynamic model of a nuclear power plant establishes the impacts of TES on the capacity factor and thermal efficiency of the plant. Four storage options, which are distinguished by the location within the cycle where steam is diverted for charging and whether discharge of the TES is via the primary or a secondary Rankine cycle, are considered. TES is compared to steam bypass, which is an alternative to provide baseload flexibility. TES is significantly better than steam bypass. The storage option with the greatest thermodynamic benefit is charged by diverting superheated steam at the outlet of the moisture separator/ reheater (MSR) to the TES. The TES is discharged for peaking power through an optimized secondary cycle. TES increases the capacity factor as much as 15% compared to steam bypass at representative charging mass flowrates. The storage option that diverts steam from the steam generator to charge the TES and discharges the TES to the primary cycle extends the discharge power to a lower range and does not require a secondary cycle. In this case, the capacity factor and efficiency are as much as 8% greater than that of steam bypass.
机译:风和太阳能的间歇性会破坏动态平衡公用事业必须维持以满足波动的需求。这项工作探讨了热能储能(TES)的使用,以提高BaseLoad电厂的运行灵活性,从而激励可再生能源和脱碳栅格。核电厂的第一和第二律热力学模型建立了TES对植物容量因子和热效率的影响。四个存储选项,其区别于循环内的位置,其中蒸汽被转移用于充电,并且考虑了TES的排出是通过主要的还是二次朗肯循环。将TES与蒸汽旁路进行比较,这是提供基准灵活性的替代方案。 TES明显优于蒸汽旁路。通过在水分分离器/再热器(MSR)的出口处将过热的蒸汽转移到TES的出口时,通过热力学效益的存储选项充电。通过优化的二次循环,将TES放电以用于达到峰值功率。与代表性充电质量流量的蒸汽旁路相比,TES增加到15%的容量系数。将来自蒸汽发生器的蒸汽转移到TES的存储选项并将TES放电到主循环将放电功率扩展到较低范围,并且不需要次要循环。在这种情况下,容量系数和效率高于蒸汽旁路的8%。

著录项

  • 来源
    《Journal of Heat Transfer》 |2020年第5期|052904.1-052904.12|共12页
  • 作者单位

    Department of Mechanical Engineering University of Minnesota 111 Church Street SE Minneapolis MN 55455;

    Department of Mechanical Engineering University of Minnesota 111 Church Street SE Minneapolis MN 55455;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
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