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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Development and validation of Nusselt number and friction factor correlations for laminar flow in semi-circular zigzag channel of printed circuit heat exchanger
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Development and validation of Nusselt number and friction factor correlations for laminar flow in semi-circular zigzag channel of printed circuit heat exchanger

机译:印刷电路热交换器半圆形曲折通道中露珠流量的开发与验证篮板流量及摩擦因子相关性

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Friction factor and heat transfer correlations have been developed for printed circuit heat exchangers (PCHEs) as a function of geometric parameters. These correlations summarize the thermal hydraulic performance of PCHEs and allow for accurate determination of their cost and effectiveness. Although there have been previous studies of the thermal-hydraulic performance of zigzag channel PCHEs, explicit correlations for friction factor or Nusselt number as a function of geometric parameters have not yet been reported. In this study, computational fluid dynamic (CFD) predictions were used to aid in the development of friction factor and Nusselt number correlations for laminar flow in semicircular zigzag-channel PCHEs. Two CFD models were developed to investigate the thermal-hydraulic characteristics of fluid flow in zigzag channels. A single-channel isothermal CFD model was used to investigate friction factors in PCHE zigzag channels. A two-channel CFD model was used to investigate the Nusselt number in zigzag channels and the effect of temperature-dependent fluid properties on the pressure loss. The effects of geometric parameters such as relative length ratio, zigzag angle and radius of curvature of bend were investigated. From the extensive CFD analysis database, friction factor and Nusselt number correlations were developed by implementing a least squares method with a non-linear Generalized Reduced Gradient algorithm. The friction factor correlation is valid for 50 <= Re <= 2000, 5 degrees <= alpha <= 45 and 4.09 <= l(R)/D-h <= 32.73. The Nusselt number correlations are valid for 200 Re <= 2000, Pr <= 1.0, 5 degrees <= alpha <= 45 degrees and 4.09 <= I-R/D-h <= 12.27. The correlations were validated against experimental data from The Ohio State University (OSU) and Korea Advanced Institute of Science and Technology (KAIST). The friction factor for zigzag-channel PCHEs is mainly influenced by the zigzag channel geometry while the Nusselt number is influenced by the overall heat exchanger design including the plenum sections. Published by Elsevier Ltd.
机译:已经为印刷电路热交换器(PCHE)开发了摩擦系数和传热相关性作为几何参数的函数。这些相关性总结了PCHE的热液压性能,并允许精确测定其成本和有效性。尽管先前已经研究了Zigzag通道PCH的热液压性能,但尚未报道作为几何参数的函数的摩擦因子或泡沫数的明确相关性。在该研究中,使用计算流体动态(CFD)预测来帮助开发半圆形曲线通道PCHE中的流体流动的摩擦因子和露珠数相关性。开发了两个CFD模型以研究锯齿形通道中的流体流动的热液压特性。单通道等温CFD模型用于调查PCHE之字形通道中的摩擦因子。使用双通道CFD模型来研究Z字形通道中的露珠数和温度依赖性流体性质对压力损失的影响。研究了诸如相对长度比,曲折角度和弯曲曲率半径的几何参数的影响。根据广泛的CFD分析数据库,通过实现具有非线性广义的减少梯度算法的最小二乘法开发摩擦因子和泡沫编号相关性。摩擦因子相关是有效的50 <= RE <= 2000,5度<=α<= 45和4.09 <= L(R)/ D-H <= 32.73。 NUSERET号码相关性对于200 RE <= 2000,PR <= 1.0,5度<=α<= 45度,4.09 <= I-R / D-H <= 12.27有效。验证了来自俄亥俄州州立大学(OSU)和韩国先进科学与技术研究所(KAIST)的实验数据的相关性。 Z字形通道PCHE的摩擦因子主要受到Z字形通道几何形状的影响,而NURSETLE数受到包括增压部分的整体热交换器设计的影响。 elsevier有限公司出版

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