首页> 外文期刊>Fusion Engineering and Design >Numerical analysis of sub-atmospheric steam condensation in suppression tank with SIMMER Ⅳ code
【24h】

Numerical analysis of sub-atmospheric steam condensation in suppression tank with SIMMER Ⅳ code

机译:用慢速钻罐抑制罐中大气压蒸汽凝结的数值分析

获取原文
获取原文并翻译 | 示例
           

摘要

One of the key safety components for nuclear fusion plants is the suppression tank, which is designed to protect the Vacuum Vessel (VV) against accidental pressurization events, e.g. Loss Of Coolant Accident (LOCA).In this framework the attention is focused on the Vacuum Vessel Pressure Suppression System (VVPSS), made of water tanks in which the pure steam, or eventually mixed with incondensable gases, is injected and consequently the overpressure is dumped profiting of Direct Contact Condensation (DCC). The design constraints of fusion reactor dictate that the pressure resulting (long-term) from any accidental or baking condition should be always kept lower than 0.15 MPa.The study of the phenomena evolving during DCC in LOCA conditions is the major novelty, especially in consideration of the lack of similar studies in the available literature. In this context, a wide series of experimental tests was carried out at Pisa University (UNIPI), Department of Civil and Industrial Engineering (DICI), in a Small Scale Test Facility (SSTF), designed and instrumented for investigating DCC at sub-atmospheric pressure, by varying water pool temperature, pressure and steam mass flow rate.The adoption and assessment of suitable numerical codes, to reliably simulate such a cutting-edge multiphase multicomponent scenario, have a crucial role for contributing to the phenomena understanding and for possible safety analysis of full-scale components. On this basis, a preliminary evaluation of the cartesian three-dimensional SIMMER IV code capabilities in simulating DCC at sub-atmospheric conditions was carried out, taking as reference one UNIPI test. SIMMER IV code was able to set up precise initial low-pressure boundary conditions and simulate superheated steam condensation in subcooled water pool, with condensation efficiency comparable to the experimental one. Moreover, SIMMER IV code predicted a longitudinal steam plume dimension and injected steam velocity consistent with experimental data.
机译:核聚变厂的关键安全部件之一是抑制罐,其旨在保护真空容器(VV)免受意外加压事件,例如抑制真空血管(VV)。冷却液事故(Loca)。在该框架上,注意力集中在真空血管压力抑制系统(VVPS)上,由水箱制成,其中纯蒸汽或最终与不可缩持的气体混合,并因此进行过压倾倒直接接触冷凝(DCC)的利润。融合反应器的设计约束决定,从任何意外或烘焙状况导致(长期)的压力应始终保持低于0.15 MPa。在基因座条件下的DCC中发展的现象是主要的新颖性,特别是考虑在可用文献中缺乏类似的研究。在这方面,在比萨大学(UNIPI),公民和工业工程系(DICI)中进行了广泛的实验测试,在小规模的测试设施(SSTF),设计和仪器用于在亚大气压下调查DCC通过改变水池温度,压力和蒸汽质量流量的压力。采用和评估合适的数值码,以可靠地模拟这种尖端的多相多相情景,具有对促进现象和可能的安全性的关键作用全尺寸组件分析。在此基础上,进行了笛卡尔三维煨IV代码能力在模拟亚大气条件下模拟DCC的初步评估,作为参考1 UNIPI测试。 Simmer IV代码能够设置精确的初始低压边界条件,并在过冷水池中模拟过热蒸汽冷凝,与实验一体化相当的冷凝效率。此外,Simmer IV代码预测了纵向蒸汽羽流尺寸,并注入与实验数据一致的蒸汽速度。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号