Assessment of the RELAP5/MOD3.3 code for condensation in the presence of air using experimental data and theoretical model

被引:2
|
作者
Aglar, Fahri [1 ]
机构
[1] Turkish Atom Energy Commiss, Dept Technol, TR-06510 Ankara, Turkey
关键词
Condensation; Noncondensable; RELAP5/MOD3.3; Stagnant film theory; TURBULENT VAPOR CONDENSATION; CONTAINMENT COOLING SYSTEM; NONCONDENSABLE GASES; VERTICAL TUBE; HEAT-TRANSFER; STEAM CONDENSATION; REYNOLDS-NUMBER; CONVECTION; IMPLEMENTATION; DIFFUSION;
D O I
10.1016/j.anucene.2013.05.021
中图分类号
TL [原子能技术]; O571 [原子核物理学];
学科分类号
0827 ; 082701 ;
摘要
This study has been performed to assess the condensation module of RELAP5/MOD3.3 code, which is still widely used in the nuclear industry, for in-tube condensation in the presence on noncondensable gas under forced convection conditions. The experimental works, conducted at the Massachusetts Institute of Technology (MIT), the University of California-Berkeley (UCB), and the Middle East Technical University (METU), have been utilized in order to realize the assessment process in the wide range of parameters. To investigate the relationship between mixture Reynolds number and interface temperature, the theoretical model based on the energy balance at the interface has been developed and the results have been compared with the RELAP5/MOD3.3 findings. The entrance, interfacial waviness, suction and interfacial shear stress effects have been considered in the modeling to obtain accurate estimation of the heat transfer coefficient, particularly at the entrance region. The comparisons show that the proposed model predicts the heat transfer coefficient reasonably well with a maximum mean deviation of 17.3% for the simulated cases. On the other hand, RELAP5/Mod33 cannot evaluate the relationship between the mixture Reynolds number and the interface noncondensable gas concentration and predicts the heat transfer coefficients with the mean deviations around 150%, 85% and 50% for the METU, the UCB and the MIT databases, respectively. The findings reveal that the RELAP5/MOD3.3's capability to simulate the condensation with noncondensable gas phenomenon drastically decreases with increasing mixture Reynolds number. (C) 2013 Elsevier Ltd. All rights reserved.
引用
收藏
页码:329 / 340
页数:12
相关论文
共 50 条
  • [31] BEPU analysis of a passive decay heat removal system with RELAP5/ MOD3.3 and RELAP5-3D
    Alcaro, Fabio
    Bersano, Andrea
    Bertani, Cristina
    Mascari, Fulvio
    PROGRESS IN NUCLEAR ENERGY, 2021, 136
  • [32] Pre and Post Test Analysis of LBLOCA Late Reflood Phase in ATLAS Using RELAP5/MOD3.3
    Lee, Seok Ho
    Kim, Han Gon
    ICONE16: PROCEEDING OF THE 16TH INTERNATIONAL CONFERENCE ON NUCLEAR ENGINEERING - 2008, VOL 3, 2008, : 275 - 282
  • [33] Experimental and analytical natural circulation analysis of the Jordanian 5 MW research reactor using plate type fuel by RELAP5 MOD3.3
    Rawashdeh, Abdullah A. M.
    Cong, Tenglong
    Ali, Mohsen M. M.
    ANNALS OF NUCLEAR ENERGY, 2022, 175
  • [34] ANALYSIS OF EXPERIMENTS FOR STEAM CONDENSATION IN THE PRESENCE OF NONCONDENSABLE GASES USING THE RELAP5 MOD3 CODE
    HASSAN, YA
    RAJA, LL
    NUCLEAR TECHNOLOGY, 1993, 104 (01) : 76 - 88
  • [35] RELAP5/Mod3.3 MHD module development and validation: WCLL-TBM mock-up model
    Melchiorri, Lorenzo
    Siriano, Simone
    Tassone, Alessandro
    FUSION ENGINEERING AND DESIGN, 2024, 202
  • [36] RELAP5/MOD3.3 study on density wave instabilities in single channel and two parallel channels
    Colombo, Marco
    Cammi, Antonio
    Papini, Davide
    Ricotti, Marco E.
    PROGRESS IN NUCLEAR ENERGY, 2012, 56 : 15 - 23
  • [37] Simulation of Research Loop LOBI-MOD2 with RELAP5\MOD3.3 Code for LOBI Thermo Hydraulic Test A1-93
    Pesaran, Farshad
    Barati, Ramin
    ATW-INTERNATIONAL JOURNAL FOR NUCLEAR POWER, 2016, 61 (06): : 411 - 415
  • [38] Numerical Simulations with RELAP5-3D and RELAP5/mod3.3 of the Second Experimental Campaign on In-Box LOCA Transients for HCLL TBS
    Venturini, Alessandro
    Utili, Marco
    Forgione, Nicola
    ENERGIES, 2021, 14 (15)
  • [39] RELAP5/MOD3 code coupling model
    Martin, RP
    NUCLEAR SAFETY, 1995, 36 (02): : 290 - 299
  • [40] Success criteria time windows of operator actions using RELAP5/MOD3.3 within human reliability analysis
    Prosek, Andrej
    Cepin, Marko
    JOURNAL OF LOSS PREVENTION IN THE PROCESS INDUSTRIES, 2008, 21 (03) : 260 - 267