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张永海

教授

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  • 电子邮箱:
  • 所在单位: 化学工程与技术学院
  • 学历: 硕博连读
  • 办公地点: 西安交通大学创新港19-2184
  • 性别: 男
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  • 学位: 博士
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  • 博士生导师: 是
  • 硕士生导师: 是

论文成果

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Confined submerged jet impingement boiling of subcooled FC-72 over micro-pin-finned surfaces

发布时间:2025-04-30
点击次数:
发布时间:
2025-04-30
论文名称:
Confined submerged jet impingement boiling of subcooled FC-72 over micro-pin-finned surfaces
发表刊物:
Heat Transfer Engineering, 2016, 37(3-4): 269-278.
摘要:
Heat transfer characteristics of confined submerged jet impingement boiling of air-dissolved FC-72 on heated micro-pin-finned surfaces are presented. The dimension of the silicon chips is 10 × 10 × 0.5 mm3 (length × width × thickness) on micro-pin-fins with the four dimensions of 30 × 30 × 60 µm3,50 × 50 × 60 µm3,30 × 30 × 120 µm3, and 50 × 50 × 120 µm3 fabricated by using the dry etching technique. For comparison, experiments of jet impinging on a smooth surface were also conducted. The results have shown that submerged jet impingement boiling gives a large heat transfer enhancement compared with pool boiling, and all micro-pin-fins showed better heat transfer performance than a smooth surface. The effects of jet Reynolds number, jet inlet subcooling, micro-pin-fins, and nozzle-to-surface distance on jet impingement boiling heat transfer were explored. For micro-pin-fins, the maximum allowable heat flux increases with jet Reynolds number and subcooling. The largest value of the maximum allowable heat flux of micro-pin-fins by submerged jet impingement boiling is 157 W/cm2, which is about 8.3 times as large as that for the smooth surface in pool boiling. Also, Nusselt number has a strong dependence on Reynolds number.
合写作者:
Yonghai Zhang, Jinjia Wei*, Xin Kong, Ling Guo
卷号:
37(3-4)
页面范围:
269-278
是否译文:
发表时间:
2015-08-26