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Experimental and numerical investigations of heat transfer in the first wall of Helium-Cooled-Pebble-Bed Test Blanket Module-Part 2: Presentation of results

机译:氦冷却卵石床试验毯模块第一壁传热的实验和数值研究,第2部分:结果表示

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摘要

This paper is the continuation of the first report on investigations of heat transfer in the first wall of Helium-Cooled-Pebble-Bed Test Blanket Module for ITER submitted to this Journal (see Ilic et al.). The investigations have been performed experimentally by manufacturing and testing of a mock-up and numerically through the development of corresponding 3 D CFD models. The experimental tests have been conducted for HCPB TBM relevant conditions - the test channel made of Eurofer steel, helium coolant at pressure of 8 MPa and inlet temperature of 300 ℃ and heat flux of 270kW/m~2 at the channel side representing plasma facing side of the first wall.In total six measuring series have been performed in which surface roughness, helium inlet temperature and heater power have been considered as parameters. For each measuring series corresponding 3D CFD computational scenarios have been conducted. By use of experimental data for Eurofer temperature it was possible to verify 3D CFD models. On the other side, 1D CFD approaches failed in comparison with experimental data. Further, a critical analysis of the use of microscopic surface roughness as a method for heat transfer improvement in the first wall has been presented. Finally, based on a detailed analysis of experimental and 3D CFD data obtained in the framework of these activities the main directions for an improvement of cooling channels in the first wall could be proposed.
机译:本文是向ITER提交的有关ITER的氦冷卵石床试验毯模块第一壁传热研究的第一份报告的延续(请参见Ilic等)。通过制造和测试模型进行实验研究,并通过开发相应的3D CFD模型进行数值研究。已针对HCPB TBM相关条件进行了实验测试-测试通道由Eurofer钢制成,压力为8 MPa的氦冷却液,入口温度为300℃,通道侧的热通量为270kW / m〜2,表示等离子体面向侧面总共进行了六个测量系列,其中将表面粗糙度,氦气入口温度和加热器功率视为参数。对于每个测量系列,都进行了相应的3D CFD计算方案。通过使用Eurofer温度的实验数据,可以验证3D CFD模型。另一方面,与实验数据相比,一维CFD方法失败了。此外,已经提出了对使用微观表面粗糙度作为第一壁中的传热改进方法的严格分析。最后,基于在这些活动框架下获得的实验和3D CFD数据的详细分析,可以提出改善第一壁冷却通道的主要方向。

著录项

  • 来源
    《Fusion Engineering and Design》 |2015年第1期|37-46|共10页
  • 作者单位

    Institute for Neutron Physics and Reactor Technology, Karlsruhe Institute of Technology, Germany;

    Institute for Neutron Physics and Reactor Technology, Karlsruhe Institute of Technology, Germany;

    Institute for Neutron Physics and Reactor Technology, Karlsruhe Institute of Technology, Germany;

    Institute for Neutron Physics and Reactor Technology, Karlsruhe Institute of Technology, Germany;

    Institute for Neutron Physics and Reactor Technology, Karlsruhe Institute of Technology, Germany;

    Institute of Nuclear Techniques, Budapest University of Technology and Economics, Hungary;

  • 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

    The first wall; Heat removal; Heat transfer enhancement; Measuring series; 3D CFD computations;

    机译:第一堵墙;散热;传热增强;测量系列;3D CFD计算;
  • 入库时间 2022-08-18 00:38:38

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