首页> 外文期刊>Nuclear Engineering and Design >Optimum RCS depressurization strategy for effective severe accident management of station black out accident
【24h】

Optimum RCS depressurization strategy for effective severe accident management of station black out accident

机译:最佳RCS降压策略,可有效实现车站停电事故的严重事故管理

获取原文
获取原文并翻译 | 示例
           

摘要

Plant specific severe accident management guidelines (SAMG) for operating plants are developed and implemented in Korea as was required by government policy on severe accident. Korea Institute of Nuclear Safety (KINS) has recently reviewed feasibility of the developed SAMG for Ulchin unit 1 plant. Among the strategies referred in SAMG, we have intensively analyzed the reactor coolant system (RCS) depressurization strategy during station black out (SBO) accident scenario, which has a high probability of occurrence according to Ulchin unit 1 Probabilistic Safety Analysis (PSA). In depressurization strategy of the current SAMG, operators need to depressurize rapidly RCS pressure below 2.75 MPa using pres-surizer (PZR) pilot operated safety relief valves (POSRVs) for high pressure accident like SBO. The rapid depressurization is effective in allowing the water of safety injection tank (SIT) to be injected into the core, but an excessive discharge of the SIT water is not desirable for an economical use of SIT inventory. Lack of SIT water accelerates the core damage in case the failed electric power do not recover in due to time. The SIT inventory economy means here that we should not waste the water inventory of SIT and use it in the most efficient way to cool the core. In case we do not use it in an economical way, the SIT might be depleted too rapidly, thus leaving an insufficient reservoir for post-depressurization cooling. The quantification of this SIT inventory economy for plant specific situation is of interest to develop an optimum depressurization strategy. In this study we have analyzed an effectiveness of current depressurization strategy for SBO accident with the severe accident analysis code MELCOR1.8.5 which has been used for regulatory purpose in KINS. The entry time of severe accident management, a grace time gained by the current strategy, and the economy of the discharge mass flow rate for Ulchin plant were evaluated. Moreover, through a simple energy balance equation we could find an optimum strategy for RCS depressurization. The proposed strategy is based on finding an optimum discharge rate for an efficient use of the SIT inventory and it allows us to handle an SBO accident with higher confidence. The proposed strategy is yet a theoretical one, but possibilities of how to incorporate this strategy into engineered safety features are also discussed.
机译:根据政府关于严重事故的政策,在韩国制定并实施了针对运营工厂的特定于工厂的严重事故管理指南(SAMG)。韩国核安全研究所(KINS)最近审查了为Ulchin 1号机组开发的SAMG的可行性。在SAMG中提到的策略中,我们已经对站停电(SBO)事故场景中的反应堆冷却剂系统(RCS)降压策略进行了深入分析,根据Ulchin单元1概率安全分析(PSA),该策略很有可能发生。在当前SAMG的降压策略中,操作员需要使用压力补偿器(PZR)先导式安全泄压阀(POSRV)将SCS等高压事故迅速降压到2.75 MPa以下。快速降压可有效地将安全注入罐(SI​​T)的水注入​​岩心,但是对于SIT库存的经济使用,SIT水的过度排放是不希望的。如果由于时间未能及时恢复故障电源,则缺少SIT水会加速铁芯损坏。 SIT库存经济性在这里意味着我们不应浪费SIT的水库存,而应以最有效的方式使用它来冷却岩心。如果我们不以经济的方式使用它,则SIT可能会消耗得太快,从而为降压后的冷却留出了足够的储存空间。针对特定工厂情况对这种SIT库存经济进行量化对于开发最佳降压策略很重要。在这项研究中,我们已使用严重事故分析代码MELCOR1.8.5分析了SBO事故当前减压策略的有效性,该代码已在KINS中用于监管目的。评估了严重事故管理的进入时间,当前策略所获得的宽限时间以及Ulchin工厂的排放质量流量经济性。此外,通过一个简单的能量平衡方程,我们可以找到RCS降压的最佳策略。所提出的策略基于找到最佳排放率以有效利用SIT库存,并且使我们能够以更高的信心处理SBO事故。提出的策略仍然是一种理论上的策略,但是也讨论了如何将该策略纳入工程安全功能中的可能性。

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