Effect of the Reynolds and Richardson numbers on thermal mixing characteristics

被引:10
作者
Evrim, Cenk [1 ]
Laurien, Eckart [1 ]
机构
[1] Univ Stuttgart, Inst Nucl Technol & Energy Syst IKE, D-70569 Stuttgart, Germany
关键词
T-junction; Large-eddy simulation; Buoyancy effects; Turbulent mixing flows; Heat transfer; LARGE-EDDY SIMULATION; DIRECT NUMERICAL-SIMULATION; T-JUNCTION; HEAT-TRANSFER; TURBULENT JETS; FLOW; TEMPERATURE; BEHAVIOR; FATIGUE; SQUARE;
D O I
10.1016/j.ijheatmasstransfer.2021.120917
中图分类号
O414.1 [热力学];
学科分类号
摘要
This paper presents a detailed numerical study regarding the influence of Reynolds and Richardson numbers in T-junctions with circular cross-section. The numerical investigation is based on the wall-resolved Large-Eddy Simulation (LES), which has been experimentally validated. The Reynolds number in the main pipe covers a range from Re = 78400 to Re = 235200, which is high enough to approach the engineering applications. This also belongs to the primary contribution of the current study. Furthermore, the temperature difference between the main pipe and branch pipe (T-m - T-b) is 180 K and the mass flow rate ratio ((m) over dot(m)/(m) over dot(b)) is 3. The primary focus is on thermal mixing characteristics in the downstream as well as on the evolution of the flow by consideration of gravity and buoyancy effects. Additionally, our study considers the thermal field and its corresponding fluctuations in the near-wall region. In addition, this paper also includes simulations with different T-junction configurations therefore we can examine the influence of the entrance orientation of the heavier cold branch pipe fluid on the mixing process and heat transfer. The analysis of our results indicates that gravity effects can be neglected in cases with increased Reynolds number and simultaneously decreased Richardson number. The area with high fluctuation intensities becomes larger by the higher Reynolds number and lower Richardson number of the mixing flow therefore they shows a higher potential for High Cycle Thermal Fatigue (HCTF). Furthermore, the highest near-wall thermal fluctuations are 40% of the temperature difference between the mixing flows. (C) 2021 Elsevier Ltd. All rights reserved.
引用
收藏
页数:13
相关论文
共 47 条
[31]   Subgrid-scale stress modelling based on the square of the velocity gradient tensor [J].
Nicoud, F ;
Ducros, F .
FLOW TURBULENCE AND COMBUSTION, 1999, 62 (03) :183-200
[32]   Buoyancy induced turbulence modulation in pipe flow at supercritical pressure under cooling conditions [J].
Pandey, Sandeep ;
Chu, Xu ;
Laurien, Eckart ;
Weigand, Bernhard .
PHYSICS OF FLUIDS, 2018, 30 (06)
[33]   Investigation of in-tube cooling of carbon dioxide at supercritical pressure by means of direct numerical simulation [J].
Pandey, Sandeep ;
Chu, Xu ;
Laurien, Eckart .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2017, 114 :944-957
[34]  
Piomelli U., 1996, TURBULENCE TRANSITIO, P269
[35]   Coherent structure dynamics in near-wall turbulence [J].
Schoppa, W ;
Hussain, F .
FLUID DYNAMICS RESEARCH, 2000, 26 (02) :119-139
[36]   Large eddy simulation on thermal mixing of fluids in a T-junction with conjugate heat transfer [J].
Selvam, P. Karthick ;
Kulenovic, Rudi ;
Laurien, Eckart .
NUCLEAR ENGINEERING AND DESIGN, 2015, 284 :238-246
[37]  
Sergent A, 2003, NUMER HEAT TR A-APPL, V44, P789, DOI [10.1080/716100524, 10.1080/0407780390220511]
[38]   Measurements of the Thermal Characteristics of Heated Turbulent Jets in Crossflow [J].
Sherif, S. A. ;
Pletcher, R. H. .
JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 1989, 111 (1-4) :897-903
[39]  
Smith B., 2011, Report of the OECD/NEA-Vattenfall T-Junction Benchmark Exercise
[40]   A CFD benchmarking exercise based on flow mixing in a T-junction [J].
Smith, B. L. ;
Mahaffy, J. H. ;
Angele, K. .
NUCLEAR ENGINEERING AND DESIGN, 2013, 264 :80-88