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NUCLEAR FUSION AND PLASMA PHYSICS ›› 2015, Vol. 35 ›› Issue (3): 253-258.DOI: 10.16568/j.0254-6086.201503011

• Nuclear Fusion Engineering and Technology • Previous Articles     Next Articles

Experimental study of heat transfer with hyper-vapotron for high heat flux components

CHU De-lin1, PAN Bao-guo1, MEI Luo-qin1, ZHANG Qiang-hua1,JIANG Hai-yan2, WANG Wei-hua1   

  1. (1. Army Officer Academy of PLA, Hefei 230031; 2. Hefei University of Technology, Hefei 230009)
  • Online:2015-09-15 Published:2015-09-15

聚变堆高热流部件超汽化换热实验研究

储德林1,潘保国1,梅洛勤1,张强华1,江海燕2,汪卫华*1   

  1. (1.陆军军官学院,合肥 230031;2.合肥工业大学,合肥 230009)
  • 作者简介:储德林(1972-),男,安徽怀宁人,硕士,讲师,主要研究方向为热工流体实验及分析。
  • 基金资助:

    国家磁约束核聚变能发展研究专项(2013GB113000,2013GB113004);国家自然科学基金(91326101,51076166)

Abstract:

An experimental study of heat transfer was carried out in the hyper-vapotron loop-Ⅰ(HVL-Ⅰ) test facility. Phenomena of subcooling were observed using the techniques of planar laser induced fluorescent (PLIF), high speed photography, particle image velocimetry, etc. The flow and condition parameters were as follows: (1) CuCrZr alloy material, (2) triangle and rectangle fin structures, (3) inlet subcooling temperature of 296K, (4) Rhodamine solution flow velocity of 0.3~0.5m•s−1. It was found that the heat transfer coefficient (HTC) of rectangle fin is 1.3~1.5 times higher than the triangle fin under the same tested conditions. Furthermore, the heat transfer efficiency is extraordinary dependent on the maintain time of vortex forming between the fins.

Key words: Hyper-vapotron structure, Planar laser induced fluorescence, Particle image velocimetry, Heat transfer

摘要:

搭建了常压水超汽化实验回路(HVL-Ⅰ),采用平面激光诱导荧光(PLIF)、高速摄影、微距摄影、粒子成像测速(PIV)等先进测量技术,开展聚变堆面对等离子体部件(第一壁、偏滤器)在高热流过冷沸腾工况下强化换热特性实验研究。选择三角形和矩形翅片的铬锆铜超汽化样件,实验工况为常压室温(296K),若丹明B 水溶液流速 0.3~0.5m•s−1 连续可调,热流密度~5MW•m−2。实验结果表明同等工况下,矩形翅片比三角形翅片换热效果显著增强,性能提升约30%~50%。微距摄影显示翅根涡流形态保持时间越短,越有利于小汽泡充分扩散,从而使换热得到强化。

关键词: 超汽化样件, 激光诱导荧光, 粒子示踪, 强化换热

CLC Number: