原子能科学技术2026,Vol.60Issue(8):1586-1595,10.DOI:10.7538/yzk.2025.youxian.0734
超临界CO2在正弦肋窄矩形通道内流动传热数值研究
Numerical Study on Flow and Heat Transfer of Supercritical CO2 in Narrow Rectangular Channel with Sinusoidal Rib
摘要
Abstract
The efficient heat transfer of supercritical CO2(SCO2)is crucial for the design and operation of compact heat exchangers in advanced energy systems,such as solar thermal power plants and nuclear reactors.Sinusoidal rib structures are promising for enhancing heat transfer in narrow rectangular channels,yet their comprehensive influence on the flow and heat transfer characteristics of SCO2 remains insufficiently explored.This study aims to investigate the effect of sinusoidal ribs and operating conditions on flow dynamics and heat transfer performance of SCO2 in narrow rectangular channels.A numerical simulation was conducted to analyze the flow and heat transfer processes of SCO2 in a narrow rectangular channel equipped with sinusoidal ribs.The SST k-ω turbulence model was adopted to accurately capture the turbulent flow features and near-wall heat transfer behaviors,considering the strong thermophysical property variations of SCO2 near the critical point.The parameters of the sinusoidal rib structure were analyzed,including amplitude A ranging from 2 mm to 4 mm,period p ranging from 20 mm to 60 mm and operating parameters,including mass flux G ranging from 300 kg/(m2·s)to 500 kg/(m2·s),inlet temperature Tin ranging from 300 K to 320 K,heat flux q ranging from 20 kW/m2 to 40 kW/m2 and operating pressure P ranging from 8 MPa to10 MPa.Detailed flow field and temperature distribution data were obtained through numerical simulations to evaluate key performance indicators,such as average heat transfer coefficient(have),average wall temperature(Tw,ave),maximum wall temperature(Tw,max),and performance evaluation criterion(PEC).Results indicate that the have increases with rising G due to stronger turbulent convection.In relation to Tin,have shows a non-monotonic trend,initially increasing as Tin approaches the pseudo-critical temperature(Tpc)and then decreasing.Both increased q and P generally lead to a reduction in have,attributed to the alteration of thermophysical properties.The sinusoidal rib structures enhance heat transfer performance primarily by intensifying near-wall turbulence and disrupting the thermal boundary layer,which promotes the convective heat transfer between SCO2 and the channel wall.Comparative analysis of different rib configurations reveals that the configuration with A=4 mm and p=40 mm achieves the optimal enhanced heat transfer performance in terms of Tw,ave and have.However,when considering Tw,max and PEC,the configuration A=2 mm and p=20 mm outperforms others,yielding the lowest Tw,max=342.29 K and the optimal PEC=1.20.These findings provide a crucial theoretical basis and practical design references for the application of sinusoidal rib structures in high-efficiency compact SCO2 heat exchangers,facilitating the optimization of energy conversion efficiency in advanced energy systems.关键词
正弦肋/窄矩形通道/超临界CO2/传热性能/数值模拟Key words
sinusoidal rib/narrow rectangular channel/supercritical CO2/heat transfer performance/numerical simulation分类
能源科技引用本文复制引用
毛赏,刘得赎,郭庆,吴学红,王燕令,刘勇,周涛..超临界CO2在正弦肋窄矩形通道内流动传热数值研究[J].原子能科学技术,2026,60(8):1586-1595,10.基金项目
国家资助博士后研究人员计划(GZC20250611) (GZC20250611)
河南省高等学校重点科研项目(26A470017) (26A470017)
河南省科技攻关项目(252102241001) (252102241001)
河南省重点研发计划(241111320900) (241111320900)
郑州轻工业大学博士科研基金(NYY20250018) (NYY20250018)