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Thermal-fluid-structure coupling analysis for plate-type fuel assembly under irradiation. Part-I numerical methodology

  • Yuanming Li
  • , Pan Yuan
  • , Quan yao Ren
  • , Guanghui Su
  • , Hongxing Yu
  • , Haoyu Wang
  • , Meiyin Zheng
  • , Yingwei Wu
  • , Shurong Ding
  • Xi'an Jiaotong University
  • Science and Technology on Reactor System Design Technology Laboratory
  • Fudan University

Research output: Contribution to journalArticlepeer-review

10 Scopus citations

Abstract

The plate-type fuel assembly adopted in nuclear research reactor suffers from complicated effect induced by non-uniform irradiation, which might affect its stress conditions, mechanical behavior and thermal-hydraulic performance. A reliable numerical method is of great importance to reveal the complex evolution of mechanical deformation, flow redistribution and temperature field for the plate-type fuel assembly under non-uniform irradiation. This paper is the first part of a two-part study developing the numerical methodology for the thermal-fluid-structure coupling behaviors of plate-type fuel assembly under irradiation. In this paper, the thermal-fluid-structure coupling methodology has been developed for plate-type fuel assembly under non-uniform irradiation condition by exchanging thermal-hydraulic and mechanical deformation parameters between Finite Element Model (FEM) software and Computational Fluid Dynamic (CFD) software with Mesh-based parallel Code Coupling Interface (MpCCI), which has been validated with experimental results. Based on the established methodology, the effects of non-uniform irradiation and fluid were discussed, which demonstrated that the maximum mechanical deformation with irradiation was dozens of times larger than that without irradiation and the hydraulic load on fuel plates due to differential pressure played a dominant role in the mechanical deformation.

Original languageEnglish
Pages (from-to)1540-1555
Number of pages16
JournalNuclear Engineering and Technology
Volume53
Issue number5
DOIs
StatePublished - May 2021

Keywords

  • Deformation
  • Irradiation effect
  • Plate-type fuel assembly
  • Thermal-fluid-structure coupling methodology
  • Thermal-hydraulics

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