Numerical Simulation of Flow Distribution and Transient Thermal Stratification Characteristics of Passive Residual Heat Removal Heat Exchangers

The passive residual heat removal heat exchanger (PRHR HX) is a key component of the third-generation advanced pressurized water reactor (PWR) nuclear power plant’s passive safety systems. The PRHR HX has numerous heat transfer tubes with varying lengths and arrangements on the primary side, leading...

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Main Author: HE Shaopeng1, 2, WANG Mingjun1, 2, TIAN Wenxi1, 2, QIU Suizheng1, 2, SU Guanghui1, 2
Format: Article
Language:English
Published: Editorial Board of Atomic Energy Science and Technology 2025-05-01
Series:Yuanzineng kexue jishu
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Online Access:https://yznkxjs.xml-journal.net/article/doi/10.7538/yzk.2024.youxian.0669
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author HE Shaopeng1, 2, WANG Mingjun1, 2, TIAN Wenxi1, 2, QIU Suizheng1, 2, SU Guanghui1, 2
author_facet HE Shaopeng1, 2, WANG Mingjun1, 2, TIAN Wenxi1, 2, QIU Suizheng1, 2, SU Guanghui1, 2
author_sort HE Shaopeng1, 2, WANG Mingjun1, 2, TIAN Wenxi1, 2, QIU Suizheng1, 2, SU Guanghui1, 2
collection DOAJ
description The passive residual heat removal heat exchanger (PRHR HX) is a key component of the third-generation advanced pressurized water reactor (PWR) nuclear power plant’s passive safety systems. The PRHR HX has numerous heat transfer tubes with varying lengths and arrangements on the primary side, leading to different flow distributions and resistance characteristics. The secondary side experiences various physical processes, including natural convection, mixed convection, and boiling heat transfer, significantly impacting the heat exchanger’s natural circulation and residual heat removal capacity. Current numerical analysis methods for PRHR HX inadequately consider flow distribution and resistance characteristics on the primary side. A porous medium-pipe-level coupling calculation method was established, introducing a parallel C-shaped pipe-level flow distribution and resistance iterative solution model. A matching strategy for grid control volumes on both sides and physical field communication was proposed, and a mathematical-physical model suitable for natural circulation and two-phase boiling conditions was developed for the PRHR HX, enabling coupling analysis between the primary side’s pipe-level resolution physical field and the secondary side’s porous medium computational domain. Based on data from Japan’s ROSA test facility, program validation was conducted, comparing heat transfer amounts, primary side outlet temperatures, and temperature profiles under single-phase and two-phase conditions, with good agreement between calculated and experimental values. Flow distribution and resistance characteristics on the primary side under coupled conditions of the AP1000 reactor’s PRHR HX was explored. The variation of secondary side thermal stratification with different operational parameters was analyzed. Results indicate that when the total flow rate on the primary side increases, the proportion of frictional pressure drop in the total pressure drop increases, diminishing the gravitational pressure drop’s dominant role in flow distribution, leading to flow distribution unevenness reduce. Additionally, heat transfer at the upper section increases, enhancing natural convection, resulting in faster thermal stratification on the secondary side, though with a lower Strouhal number peak. When the primary side inlet temperature rises, heat transfer intensifies on both sides, increasing the density difference at the inlet and outlet of the heat transfer tubes, thereby enhancing the gravitational pressure drop’s role in flow distribution unevenness. Consequently, flow distribution unevenness increases, with significant increasing in upper section heat transfer and faster thermal stratification formation, while natural convection does not significantly enhance, resulting in a higher Strouhal number peak. When the secondary side’s initial temperature rises, heat transfer decreases on both sides, reducing the density difference at the inlet and outlet of the heat transfer tubes, weakening the gravitational pressure drop’s dominant influence on flow distribution unevenness, though the impact is relatively small. Additionally, the theoretical maximum temperature gradient decreases, slightly weakening the lower section heat transfer and natural convection mixing effects, leading to faster thermal stratification formation with a higher Strouhal number peak. This study can provide a reference for the numerical simulation analysis and optimization design of PRHR HX.
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spelling doaj-art-535e4d1e3aa148169162a31cb658f0a32025-08-20T01:52:38ZengEditorial Board of Atomic Energy Science and TechnologyYuanzineng kexue jishu1000-69312025-05-015951006101510.7538/yzk.2024.youxian.0669 Numerical Simulation of Flow Distribution and Transient Thermal Stratification Characteristics of Passive Residual Heat Removal Heat ExchangersHE Shaopeng1, 2, WANG Mingjun1, 2, TIAN Wenxi1, 2, QIU Suizheng1, 2, SU Guanghui1, 201. State Key Laboratory of Multiphase Flow in Power Engineering, Xi’an Jiaotong University, Xi’an 710049, China 2. Nuclear Thermal-hydraulic Laboratory, Xi’an Jiaotong University, Xi’an 710049, ChinaThe passive residual heat removal heat exchanger (PRHR HX) is a key component of the third-generation advanced pressurized water reactor (PWR) nuclear power plant’s passive safety systems. The PRHR HX has numerous heat transfer tubes with varying lengths and arrangements on the primary side, leading to different flow distributions and resistance characteristics. The secondary side experiences various physical processes, including natural convection, mixed convection, and boiling heat transfer, significantly impacting the heat exchanger’s natural circulation and residual heat removal capacity. Current numerical analysis methods for PRHR HX inadequately consider flow distribution and resistance characteristics on the primary side. A porous medium-pipe-level coupling calculation method was established, introducing a parallel C-shaped pipe-level flow distribution and resistance iterative solution model. A matching strategy for grid control volumes on both sides and physical field communication was proposed, and a mathematical-physical model suitable for natural circulation and two-phase boiling conditions was developed for the PRHR HX, enabling coupling analysis between the primary side’s pipe-level resolution physical field and the secondary side’s porous medium computational domain. Based on data from Japan’s ROSA test facility, program validation was conducted, comparing heat transfer amounts, primary side outlet temperatures, and temperature profiles under single-phase and two-phase conditions, with good agreement between calculated and experimental values. Flow distribution and resistance characteristics on the primary side under coupled conditions of the AP1000 reactor’s PRHR HX was explored. The variation of secondary side thermal stratification with different operational parameters was analyzed. Results indicate that when the total flow rate on the primary side increases, the proportion of frictional pressure drop in the total pressure drop increases, diminishing the gravitational pressure drop’s dominant role in flow distribution, leading to flow distribution unevenness reduce. Additionally, heat transfer at the upper section increases, enhancing natural convection, resulting in faster thermal stratification on the secondary side, though with a lower Strouhal number peak. When the primary side inlet temperature rises, heat transfer intensifies on both sides, increasing the density difference at the inlet and outlet of the heat transfer tubes, thereby enhancing the gravitational pressure drop’s role in flow distribution unevenness. Consequently, flow distribution unevenness increases, with significant increasing in upper section heat transfer and faster thermal stratification formation, while natural convection does not significantly enhance, resulting in a higher Strouhal number peak. When the secondary side’s initial temperature rises, heat transfer decreases on both sides, reducing the density difference at the inlet and outlet of the heat transfer tubes, weakening the gravitational pressure drop’s dominant influence on flow distribution unevenness, though the impact is relatively small. Additionally, the theoretical maximum temperature gradient decreases, slightly weakening the lower section heat transfer and natural convection mixing effects, leading to faster thermal stratification formation with a higher Strouhal number peak. This study can provide a reference for the numerical simulation analysis and optimization design of PRHR HX.https://yznkxjs.xml-journal.net/article/doi/10.7538/yzk.2024.youxian.0669prhr hxflow distributionthermal stratificationnumerical simulation
spellingShingle HE Shaopeng1, 2, WANG Mingjun1, 2, TIAN Wenxi1, 2, QIU Suizheng1, 2, SU Guanghui1, 2
Numerical Simulation of Flow Distribution and Transient Thermal Stratification Characteristics of Passive Residual Heat Removal Heat Exchangers
Yuanzineng kexue jishu
prhr hx
flow distribution
thermal stratification
numerical simulation
title Numerical Simulation of Flow Distribution and Transient Thermal Stratification Characteristics of Passive Residual Heat Removal Heat Exchangers
title_full Numerical Simulation of Flow Distribution and Transient Thermal Stratification Characteristics of Passive Residual Heat Removal Heat Exchangers
title_fullStr Numerical Simulation of Flow Distribution and Transient Thermal Stratification Characteristics of Passive Residual Heat Removal Heat Exchangers
title_full_unstemmed Numerical Simulation of Flow Distribution and Transient Thermal Stratification Characteristics of Passive Residual Heat Removal Heat Exchangers
title_short Numerical Simulation of Flow Distribution and Transient Thermal Stratification Characteristics of Passive Residual Heat Removal Heat Exchangers
title_sort numerical simulation of flow distribution and transient thermal stratification characteristics of passive residual heat removal heat exchangers
topic prhr hx
flow distribution
thermal stratification
numerical simulation
url https://yznkxjs.xml-journal.net/article/doi/10.7538/yzk.2024.youxian.0669
work_keys_str_mv AT heshaopeng12wangmingjun12tianwenxi12qiusuizheng12suguanghui12 numericalsimulationofflowdistributionandtransientthermalstratificationcharacteristicsofpassiveresidualheatremovalheatexchangers