首页> 外文会议>14th International Conference on Nuclear Engineering 2006(ICONE14) vol.3 >DEVELOPMENT OF TECHNOLOGIES ON INNOVATIVE-SIMPLIFIED NUCLEAR POWER PLANT USING HIGH-EFFICIENCY STEAM INJECTORS (12) EVALUATIONS OF SPATIAL DISTRIBUTIONS OF FLOW AND HEAT TRANSFER IN STEAM INJECTOR
【24h】

DEVELOPMENT OF TECHNOLOGIES ON INNOVATIVE-SIMPLIFIED NUCLEAR POWER PLANT USING HIGH-EFFICIENCY STEAM INJECTORS (12) EVALUATIONS OF SPATIAL DISTRIBUTIONS OF FLOW AND HEAT TRANSFER IN STEAM INJECTOR

机译:利用高效蒸汽喷射器开发创新简化的核电站技术的研究(12)蒸汽喷射器中流动和传热的空间分布评估

获取原文
获取原文并翻译 | 示例

摘要

Next-generation nuclear reactor systems have been under development aiming at simplified system and improvement of safety and credibility. One of the innovative technologies is the supersonic steam injector, which has been investigated as one of the most important component of the next-generation nuclear reactor. The steam injector has functions of a passive pump without large motor or turbo-machinery and a high efficiency heat exchanger. The performances of the supersonic steam injector as a pump and a heat exchanger are dependent on direct contact condensation phenomena between a supersonic steam and a sub-cooled water jet. In previous studies of the steam injector, there are studies about the operating characteristics of steam injector and about the direct contact condensation between static water pool and steam in atmosphere. However, there is a little study about the turbulent heat transfer and flow behavior under the great shear stress. In order to examine the heat transfer and flow behavior in supersonic steam injector, it is necessary to measure the spatial temperature distribution and velocity in detail. The present study, visible transparent supersonic steam injector is used to obtain the axial pressure distributions in the supersonic steam injector, as well as high speed visual observation of water jet and steam interface. The experiments are conducted with and without non-condensable gas. The experimental results of the interfacial flow behavior between steam and water jet are obtained. It is experimentally clarified that an entrainment exists on the water jet surface. It is also clarified that discharge pressure is depended on the steam supply pressure, the inlet water flow rate, the throat diameter and non-condensable flow rate. Finally a heat flux is estimated about 19MW/m~2 without non-condensable gas condition in steam.
机译:下一代核反应堆系统正在开发中,旨在简化系统并提高安全性和可信度。超音速蒸汽喷射器是创新技术之一,它已被研究为下一代核反应堆最重要的组成部分之一。蒸汽喷射器具有无大型马达或涡轮机械的被动泵和高效热交换器的功能。超音速蒸汽喷射器作为泵和热交换器的性能取决于超音速蒸汽和过冷喷水之间的直接接触冷凝现象。在蒸汽喷射器的先前研究中,已经研究了关于蒸汽喷射器的操作特性以及关于静态水池与大气中的蒸汽之间的直接接触冷凝的研究。但是,关于大剪切应力下的湍流传热和流动特性的研究很少。为了检查超音速蒸汽喷射器中的传热和流动特性,有必要详细测量空间温度分布和速度。本研究使用可见的透明超音速蒸汽喷射器来获得超音速蒸汽喷射器中的轴向压力分布,以及水喷射和蒸汽界面的高速目视观察。实验在有或没有不可凝气体的情况下进行。获得了蒸汽与水射流之间界面流动行为的实验结果。实验证明水喷射表面上存在夹带。还要明确的是,排出压力取决于蒸汽供应压力,入口水流量,喉管直径和非冷凝流量。最后,在蒸汽中没有不可凝结气体的条件下,估计的热通量约为19MW / m〜2。

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