Analysis of natural circulation frictional resistance characteristics in rod bundle channel

2019 ◽  
Vol 127 ◽  
pp. 79-86 ◽  
Author(s):  
Yinxing Zhang ◽  
Puzhen Gao ◽  
W. Wayne Kinnison ◽  
Peng Ji ◽  
Jian Zhou ◽  
...  
2019 ◽  
Vol 103 ◽  
pp. 295-303 ◽  
Author(s):  
Yinxing Zhang ◽  
Puzhen Gao ◽  
W. Wayne Kinnison ◽  
Chong Chen ◽  
Jian Zhou ◽  
...  

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.


2021 ◽  
Author(s):  
Kun Cheng ◽  
RONG CAI ◽  
Peiyao Qi ◽  
Bingzheng Ke ◽  
deng jian ◽  
...  

2005 ◽  
Author(s):  
Luiz F. Echeverri ◽  
Sumanta Acharya ◽  
Peter W. Rein

Various evaporative-crystallization systems rely on the natural circulation generated by boiling as the only driving force for the fluid flow. The circulation resulting from the balance between the buoyancy forces of the vapor bubbles and the frictional resistance plays an important role in the convective-boiling heat transfer, and it is desired that this circulation be as high as practically possible to maximize the capacity of the equipment and to lead to high-quality product yield. Although the basic mechanisms that govern the individual processes of boiling, buoyancy, and two-phase interactions have been extensively studied in simpler geometries, their combined behavior in the complex geometry of evaporative-crystallizers and the interaction of numerous physical and chemical variables make it difficult to understand and optimize the key parameters leading to improved product yield. In the present study measurements and computations have been reported both in a lab-scale test rig and in a full-scale crystallizer in order to obtain a better understanding of the physical processes. It is observed that one of the key physical parameters that influence the circulation rate is the drag coefficient, and that, existing correlations have to be corrected for flow contamination and high void fractions to obtain reasonable agreement with measurements.


Author(s):  
Kun Cheng ◽  
Jian Deng ◽  
Rong Cai ◽  
Libo Qian ◽  
Peiyao Qi ◽  
...  

Abstract The effects of rolling condition on the flow instability characteristics of natural circulation (NC) in rod bundle channel were experimentally studied. A 3 × 3 rod bundle channel is used as the testing section. The experimental system pressure range is 0.2 to 0.6 MPa, and the range of inlet subcooling is 10 to 70 °C. The ranges of rolling motion amplitude and period are 10 ∼ 20° and 10 ∼ 30s, respectively. Two typical two-phase flow instabilities in rod bundle channel under rolling condition were found in experiments: (a) the trough-type oscillation caused by the vapor generation at the minimum point of flow fluctuation and (b) the compound oscillation formed by the superposition of the trough-type oscillation and DWOI. Experimental results show that the rolling motion can reduce the threshold heating power of trough-type oscillation and cause the occurrence of NC flow instability in advance. But the rolling motion cannot affect the dimensionless boundary of DWOI in rod bundle channel.


2020 ◽  
Vol 52 (4) ◽  
pp. 721-733
Author(s):  
Siyang Huang ◽  
Wenxi Tian ◽  
Xiaoyang Wang ◽  
Ronghua Chen ◽  
Nina Yue ◽  
...  

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