Numerical Study on Fracture Behavior of Printed Circuit Heat Exchanger Core Based on Elasto-Plastic Phase Field Method

Author:

Shi Qianyu1,Zhang Mingbao23,Li Qi1,Wang Zhijian1,Ji Pengzhen1

Affiliation:

1. Harbin Boiler Company Limited , Harbin 150040, China

2. Harbin Boiler Company Limited , Harbin 150040, China ; , Harbin 150040, China

3. State Key Laboratory of Low-carbon Thermal Power Generation Technology and Equipments , Harbin 150040, China ; , Harbin 150040, China

Abstract

Abstract Printed circuit heat exchanger (PCHE) is a type of compact heat exchanger with high thermal efficiency, more compact, and suitable for high pressure and high temperature conditions. The safety assessment of PCHE is very important, especially for PCHE core. Because PHCE core is different from the PCHE headers which are typical pressure vessel components. However, there is no standard design method to ensure the structural integrity for PCHE core. Some failure modes of PCHE core are studied in recent years, but seldom researches have been conducted concerning the fracture behavior of PCHE core. In addition, the phase field method for fracture has developed rapidly in recent years with its advantages in predicting crack initiation, bifurcation, and merging. In this work, the fracture behavior of PCHE core with and without defects is investigated based on elasto-plastic phase field method. The model parameter of Ni-based Alloy for elasto-plastic phase field method is first calibrated by comparing the numerical results with tensile test data of diffusion-bonded PHCE core specimen. Then, the influence of loading directions, defect locations, and defect sizes on the fracture behavior of PCHE core with semicircular and semicircular-rectangular channels are analyzed. Some conclusions are discussed.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Safety, Risk, Reliability and Quality

Reference41 articles.

1. Thermal and Hydraulic Performance of sCO2 PCHE With Different Fin Configurations;Appl. Therm. Eng.,2017

2. Experimental Study on Heat Transfer Performance of sCO2 Near Pseudo-Critical Point in Airfoil-Fin PCHE From Viewpoint of Average Thermal-Resistance Ratio;Int. J. Heat Mass Transfer,2022

3. Finite Element Analysis of Printed Circuit Heat Exchanger Core for High Temperature Creep and Burst Responses,2018

4. Advances Towards Elastic-Perfectly Plastic Simulation of the Core of Printed Circuit Heat Exchangers,2019

5. A Review on the Thermal-Hydraulic Performance and Optimization of Printed Circuit Heat Exchangers for Supercritical CO2 in Advanced Nuclear Power Systems;Renewable Sustainable Energy Rev.,2020

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