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Thermal performance analysis of a nuclear heated gas turbine with nitrogen coolant

机译:氮气冷却剂核加热燃气轮机的热性能分析

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摘要

This paper investigates the comparative performance of nitrogen and helium as primary coolants for prismatic High Temperature Gas-cooled Reactors (HTGRs) operating with direct cycles coupled to a gas turbine. The attraction of using a nitrogen coolant is to enable the coupling of two proven technologies; prismatic HTGRs, and commercially-available combustion gas turbines with a working fluid that is compatible with both components. The investigation was performed using a bespoke model incorporating the turbine performance at design point, core pressure drop and core heat transport mechanisms enabling an interrogation of the comparative effects of different coolants on the whole system performance. Where inlet core temperatures are maintained consistent between a comparable helium and nitrogen cooled design with an atmospheric compressor inlet pressure, the overall cycle performance was shown to be comparable. Although the cycle performance was comparable, coolant to fuel temperature differences were shown to be larger in the nitrogen cooled design, although this design was also shown to be less sensitive to coolant pressure drops. The larger temperature differential was shown to be due to significantly poorer heat transport in the fuel to fuel hole gap and lower convective heat transport. The differences in the convective heat transport were shown to less significant that might be implied from the differences in thermal conductivity as with nitrogen the higher mass flow rates improve the Nusselt number largely offsetting the differences in thermal conduction. Furthermore, through optimisation of fuel block design or incorporation of multi-pass core concepts comparable performance was shown to be possible with nitrogen cooled reactor design. Overall, no fundamental core thermal hydraulic impediment was discovered which is expected to inhibit development of the nitrogen cooled direct cycle concept.
机译:本文研究了施用施用高温气体冷却反应器(HTGRS)的初级冷却剂的比较性能,其与燃气轮机连接的直接循环操作。使用氮气冷却剂的吸引力是实现两种经过验证的技术的耦合;具有与两个部件兼容的工作流体的棱柱形HTGR和市售的燃烧燃气涡轮机。使用包含在设计点的涡轮机性能的定制模型进行研究,核心压降和核心热传输机制能够询问不同冷却剂对整个系统性能的比较效果。在具有大气压缩机入口压力的可比较氦气和氮气冷却设计之间保持一致的入口核心温度,总循环性能显示为可比性。虽然循环性能相当,但在氮气冷却设计中显示出燃料温度差异的冷却剂,尽管这种设计也显示对冷却剂压力降低敏感。较大的温度差异被示出为由于燃料中的热传输明显较差,以燃料孔间隙和更低的对流热传输。对流热传输的差异显示出不太重要的,这可能暗示从导热率的差异,与氮的差异较高的质量流速,提高了诸多偏离热传导的差异的豆浆数。此外,通过优化燃料块的设计或多通芯概念的掺入,氮气冷却反应器设计可以进行相当的性能。总的来说,发现没有发现基本核心热液压障碍,预计将抑制氮气冷却的直接循环概念的发展。

著录项

  • 来源
    《Nuclear Engineering and Design》 |2021年第7期|111193.1-111193.11|共11页
  • 作者

    Owston Jeremy Henry;

  • 作者单位

    Univ Manchester Oxford Rd Manchester M13 9PL Lancs England;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-19 02:29:27

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