The optimization for the straight-channel PCHE size for supercritical CO 2 Brayton cycle

Printed Circuit Heat Exchanger (PCHE) is a widely used heat exchanger in the supercritical carbon dioxide (sCO2) Brayton cycle because it can work under high temperature and pressure, and has been a hot topic in Next Generation Nuclear Plant (NGNP) projects for use as recuperators and condensers. Mo...

Full description

Saved in:
Bibliographic Details
Published inNuclear engineering and technology Vol. 53; no. 6; pp. 1786 - 1795
Main Authors Xu, Hong, Duan, Chengjie, Ding, Hao, Li, Wenhuai, Zhang, Yaoli, Hong, Gang, Gong, Houjun
Format Journal Article
LanguageKorean
Published 2021
Subjects
Online AccessGet full text

Cover

Loading…
More Information
Summary:Printed Circuit Heat Exchanger (PCHE) is a widely used heat exchanger in the supercritical carbon dioxide (sCO2) Brayton cycle because it can work under high temperature and pressure, and has been a hot topic in Next Generation Nuclear Plant (NGNP) projects for use as recuperators and condensers. Most previous studies focused on channel structures or shapes. However, no clear advancement has so far been seen in the allover size of the PCHE. In this paper, we proposed an optimal size of the PCHE with a fixed volume. Two boundary conditions of PCHE were simulated, respectively. When the volume of PCHE was fixed, the heat transfer rate and pressure loss were picked as the optimization objectives. The Pareto front was obtained by the Multi-objective optimization procedure. We got the optimized number of PCHE channels under two different boundary conditions from the Pareto front. The comprehensive performance can be increased by 5.3% while holding in the same volume. The numerical results from this study can be used to improve the design of PCHE with straight channels.
Bibliography:KISTI1.1003/JNL.JAKO202124452848556
ISSN:1738-5733
2234-358X