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Upward-facing multi-nozzle spray cooling experiments for external cooling of reactor pressure vessels

机译:反应器压力容器外部冷却的向上朝上的多喷嘴喷雾冷却试验

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摘要

Cooling by water spray is a well-known technology that can reach significantly higher Critical Heat Flux (CHF) compared to other cooling methods. For the light water reactor safety, the in-vessel retention (IVR) by external reactor vessel cooling (ERVC) is a comprehensive severe accident management strategy to arrest and confine the corium in the lower head of the reactor pressure vessel. Heat fluxes up to 1.5 MW/m~2 have already been assumed attainable in low-power nuclear reactors while cooling required in high-power reactors is expected to reach 2.5 MW/m~2. Instead of reactor lower head flooding and relying on cooling due to natural convection, a viable and more efficient alternative is to spray the external surface of the vessel. Given all the advantages of spray cooling reported in the literature, a lab-scale experimental facility was built to validate the efficiency of multi-nozzle spray cooling of a downward-facing heated surface inclined at different angles up to 90°. The facility employed a 2 × 3 matrix of spray nozzles to cool the FeCrAl alloy foil with an effectively heated surface area of 96 cm~2 using water as the coolant. Heat loads and surface inclinations were varied parameters in the test matrix. The results show that no significant variations in spray cooling performance concerning the inclination of the heated surface. A surface heat flux of 2.5 MW/m~2 was achieved at every inclination of the downward-facing surface. The results also indicate that more uniform liquid film distribution could be obtained for some inclinations, which in turn leads to maintaining low surface temperature. The obtained surface heat flux margin by spray cooling indicates that it is feasible to adopt IVR-ERVC strategy for a large power reactor.
机译:通过喷水冷却是一种众所周知的技术,与其他冷却方法相比,可以达到显着更高的临界热通量(CHF)。对于轻型水反应堆安全性,外部反应器血管冷却(ERVC)的血管内保留(IVR)是一种综合的严重事故管理策略,以逮捕和限制反应器压力容器的下部头部的芯片。在低功率核反应堆中,已经假设高达1.5mW / m〜2的热量通量,同时预计高功率反应器所需的冷却将达到2.5mW / m〜2。代替反应器下部溢流并依赖于由于自然对流引起的冷却,可行且更高效的替代方案是喷洒容器的外表面。鉴于文献中报告的喷雾冷却的所有优点,建立了实验室规模的实验设施,以验证在不同角度倾斜的向下面向倾斜的向下的加热表面的多喷嘴喷射冷却效率。该设施采用了2×3矩阵的喷嘴,用水作为冷却剂将粪便合金箔冷却96cm〜2的有效加热的表面积。热负荷和表面倾斜在测试矩阵中是不同的参数。结果表明,关于加热表面倾斜的喷雾冷却性能没有显着变化。在向下表面的每一个倾斜度都倾斜地实现了2.5mW / m〜2的表面热通量。结果还表明,可以获得更均匀的液体膜分布对于一些倾斜,这又导致保持低表面温度。通过喷雾冷却所获得的表面热通量裕度表示采用大型电力反应堆采用IVR-ERVC策略是可行的。

著录项

  • 来源
    《International Journal of Heat and Mass Transfer》 |2020年第12期|120516.1-120516.14|共14页
  • 作者单位

    Division of Nuclear Power Safety Royal Institute of Technology (KTH) Roslagstullsbacken 21 10691 Stockholm Sweden;

    Division of Nuclear Power Safety Royal Institute of Technology (KTH) Roslagstullsbacken 21 10691 Stockholm Sweden;

    Division of Nuclear Power Safety Royal Institute of Technology (KTH) Roslagstullsbacken 21 10691 Stockholm Sweden;

    Division of Nuclear Power Safety Royal Institute of Technology (KTH) Roslagstullsbacken 21 10691 Stockholm Sweden;

    Division of Nuclear Power Safety Royal Institute of Technology (KTH) Roslagstullsbacken 21 10691 Stockholm Sweden;

    Division of Nuclear Power Safety Royal Institute of Technology (KTH) Roslagstullsbacken 21 10691 Stockholm Sweden;

    Division of Nuclear Power Safety Royal Institute of Technology (KTH) Roslagstullsbacken 21 10691 Stockholm Sweden;

  • 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
  • 中图分类
  • 关键词

    Downward-facing surface; Ex-vessel cooling; High surface heat flux; In-vessel retention; Multi-nozzle spray;

    机译:面向下表面;前血管冷却;高表面热通量;血管保留;多喷嘴喷雾;
  • 入库时间 2022-08-18 22:24:07

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