Startup scheme optimization and flow instability of natural circulation lead-cooled fast reactor SNCLFR-100

2021 ◽  
Vol 32 (11) ◽  
Author(s):  
Wen-Shun Duan ◽  
Ze-Ren Zou ◽  
Xiao Luo ◽  
Hong-Li Chen
2000 ◽  
Vol 37 (1-4) ◽  
pp. 211-216 ◽  
Author(s):  
Jong-Eun Chang ◽  
Kune Y. Suh ◽  
Il Soon Hwang

2011 ◽  
Vol 53 (6) ◽  
pp. 775-779 ◽  
Author(s):  
Jiyang Yu ◽  
Shuwei Che ◽  
Ran Li ◽  
Bingxue Qi

2017 ◽  
Vol 98 ◽  
pp. 321-328 ◽  
Author(s):  
Shi Qi ◽  
Tao Zhou ◽  
Bing Li ◽  
Muhammad Ali Shahzad ◽  
Yaxiong Zou ◽  
...  

Author(s):  
Hae-Yong Jeong ◽  
Kwi-Seok Ha ◽  
Won-Pyo Chang ◽  
Yong-Bum Lee ◽  
Dohee Hahn ◽  
...  

The Korea Atomic Energy Research Institute (KAERI) is developing a Generation IV sodium-cooled fast reactor design equipped with a passive decay heat removal circuit (PDRC), which is a unique safety system in the design. The performance of the PDRC system is quite important for the safety in a simple system transient and also in an accident condition. In those situations, the heat generated in the core is transported to the ambient atmosphere by natural circulation of the PDRC loop. It is essential to investigate the performance of its heat removal capability through experiments for various operational conditions. Before the main experiments, KAERI is performing numerical studies for an evaluation of the performance of the PDRC system. First, the formation of a stable natural circulation is numerically simulated in a sodium test loop. Further, the performance of its heat removal at a steady state condition and at a transient condition is evaluated with the real design configuration in the KALIMER-600. The MARS-LMR code, which is developed for the system analysis of a liquid metal-cooled fast reactor, is applied to the analysis. In the present study, it is validated that the performance of natural circulation loop is enough to achieve the required passive heat removal for the PDRC. The most optimized modeling methodology is also searched for using various modeling approaches.


Author(s):  
Xiaoyan Wang ◽  
Siyang Huang ◽  
Wenxi Tian ◽  
Lie Chen ◽  
Suizheng Qiu ◽  
...  

In order to study the effect of rolling motion on flow instability of parallel rectangular channels of natural circulation, the natural circulation reactor simulation system is used for physical prototype. And theory analysis model of parallel rectangular channels of natural circulation system under rolling motion is established and coded by Fortran. The results of the program are verified to the experiments, and the results are in good agreement. The flow instability boundaries of different pressure under static and rolling motion are calculated respectively. The results show that: 1) under static condition, with the increase of the pressure, the instability boundary line changes, and the system becomes more stable; 2) under rolling conditions, the heating power of instability boundary decreases comparing to the stable conditions. The instability occurs earlier; 3) the stability of the system decreases with the increasing of rolling amplitude and frequency.


Author(s):  
Kun Cheng ◽  
Sichao Tan ◽  
Zheng Liu ◽  
Tao Meng

An experimental investigation was conducted in a natural circulation (NC) loop to study the characteristics of two-phase flow instability under low pressure condition. A 3 × 3 rod bundle channel was used as the test section. The effects of heating power, inlet subcooling degree and system pressure on the two-phase NC flow instability types and stable boundaries were studied. The experimental results show that three typical flow conditions can occur in rod bundle channel under NC condition, which are single-phase NC flow, subcooled boiling NC flow oscillation and density wave oscillations (DWO). The oscillation amplitude and period of DWO can be enlarged by increasing the heat flux. Increasing the inlet subcooling degree can increase the marginal heating power of flow instability in NC system. The occurrence of DWO can be suppressed by increasing the system pressure. The flow instability boundary presented by the subcooling number and phase change number was also obtained in present work.


Sign in / Sign up

Export Citation Format

Share Document