Optimal combination of converging and diverging minichannels in PCHE as precooler under diverse operating conditions of supercritical CO2

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초록

The performance of printed circuit heat exchangers (PCHEs) has been studied extensively in supercritical CO2 power cycles. However, no clear analysis has been conducted to investigate the impacts of converging and diverging flow path patterns on thermal and hydraulic characteristics of supercritical CO2 flowing inside PCHEs, particularly under the precooler operating conditions. Accordingly, 3D numerical simulations coupled with a segmental-averaged discretization technique are carried out and validated to cover the existing research gap and scrutinize the corresponding effects on the performance of water precoolers. All the proposed cases are examined under three different operating conditions of the supercritical CO2, namely far-, near, and trans-critical (F-C, N-C, and T-C). The findings approve that converging the cold side (H2O) minichannel and diverging the hot side (CO2) minichannel offer a great number of advantages in terms of increasing the thermal performance of pre-coolers. The pressure drop for the CO2 flow could be alleviated by about 60% through diverging the hot side minichannel along with converging the cold side minichannel. Meanwhile, this combination leads to the lowest CO2 outlet temperatures of the precooler, being about 310.2 K, 299.9 K, and 291.6 K under the F-C, N-C, and T-C operating conditions, respectively.

키워드

Power cyclePrinted circuit heat exchangerSupercritical carbon dioxideConverging and divergingFar- near- andtrans-criticalCIRCUIT HEAT-EXCHANGERSTHERMAL-HYDRAULIC PERFORMANCEZIGZAG CHANNELAIRFOILCYCLEFINSOPTIMIZATIONFLOW
제목
Optimal combination of converging and diverging minichannels in PCHE as precooler under diverse operating conditions of supercritical CO2
저자
Khoshvaght-Aliabadi, MortezaGhodrati, ParvanehKang, Yong Tae
DOI
10.1016/j.energy.2023.127158
발행일
2023-06-01
유형
Article
저널명
Energy
272