西安交通大学动力工程多相流国家重点实验室,西安,710049
网络首发:2017-02-10,
纸质出版:2017
移动端阅览
康蕊, 厉彦忠, 杨宇杰, 等. 轴向导热对板翅式换热器传热性能的影响[J]. 西安交通大学学报, 2017,51(2):140-148.
Performance Evaluation of Plate-Fin Heat Exchanger Considering Effect of Axial Heat Conduction[J]. 2017, 51(2): 140-148.
康蕊, 厉彦忠, 杨宇杰, 等. 轴向导热对板翅式换热器传热性能的影响[J]. 西安交通大学学报, 2017,51(2):140-148. DOI: 10.7652/xjtuxb201702022.
Performance Evaluation of Plate-Fin Heat Exchanger Considering Effect of Axial Heat Conduction[J]. 2017, 51(2): 140-148. DOI: 10.7652/xjtuxb201702022.
为了降低轴向导热对板翅式换热器传热性能的影响
利用计算流体力学软件Fluent
分别计算了考虑轴向导热模型和不考虑轴向导热模型的换热因子
引入无量纲参数传热恶化率(η)来评价轴向导热对板翅式换热器传热性能的影响程度
讨论了流体工况下翅片类型(平直翅片和锯齿翅片)、翅片结构、流体种类、翅片材料等因素对η的影响。计算结果表明
轴向导热对板翅式换热器传热性能的影响程度较大
流体工况下翅片类型、流体种类、翅片结构、翅片材料等因素对η均有所影响。其中
对于不同流体工况
当Re小于等于600时
η较大
此时在翅片的设计和选型时需要考虑轴向导热对其传热性能的影响; 对于不同的翅片类型
在Re小于等于600时
锯齿型翅片的η低于平直翅片; 对于不同翅片结构
无量纲参数β为70、翅片密度为4.1的此类平直翅片的η最大
在翅片选型时应尽量少选此类平直翅片; 对于低温流体
Pr越大
其η越大; 对于不同翅片材料
在综合考虑强化换热和减小轴向导热影响两方面因素下
并非高导热系数材料的传热性能最佳
而是在不同Re下
最大换热因子均对应一个最佳的导热系数。
To reduce the influence of axial heat conduction(AHC)on the thermal performance of plate-fin heat exchanger(PFHE)
the models with/without consideration of axial heat conduction are analyzed by CFD technique. A dimensionless parameter η is introduced to confirm the influence of AHC on PFHE. The factors influencing dimensionless parameter η
such as type of fin
working condition
structure of fins
cryogenic fluid and material
are evaluated. The results show that the thermal performance of the PFHE is greatly affected by AHC. Type of fin
working condition
structure of fins
kind of fluid and material are the key factors affecting η. Specifically
AHC aggravates the thermal performance of PFHE when the Reynolds number is less than 600
in this case the effect of AHC should be considered for selection of fins. The η of plain fins is higher than that of offset strip fins. Calculating three groups of plain fins
it is also revealed quantitatively that for plain fins the dimensionless parameter η gets the maximum when the dimensionless parameter β is 70 and the fin density γ is 4.1. η increases with Prandlt number for different cryogenic fluids. Considering enhancing heat transfer and reducing the effect of axial heat conduction
every optimum thermal conductivity corresponds with a best conducting coefficient at different Reynolds number.
RANGANAYAKULU C, SEETHARUMU K N. The effects of longitudinal conduction in compact plate-fin and tube-fin heat exchangers using a finite element method [J]. International Journal of Heat and Mass Transfer, 1996, 40(6): 1261-1277.
RANGANAYAKULU C, SEETHARUMU K N. The combined effects of longitudinal heat conduction flow nonuniformity and temperature nonuniformity in cross flow plate-fin heat exchangers [J]. International Communication of Heat Mass Transfer, 1999, 26(5): 669-678.
PRADEEP N S, VENKATARATHNAME G. Performance of a counter flow heat exchanger with heat loss through the wall at the cold end [J]. Cryogenics, 1999, 39: 43-52.
PRABHAT G, ATREY M D. Performance evaluation of counter flow heat exchangers considering the effect of heat in leak and axial conduction for low-temperature applications [J]. Cryogenics, 2000, 40: 469-474.
PING Yuan, KOU Hongsen. The comparison of axial wall conduction effect on the cross flow heat exchangers including three fluid streams with different arrangements [J]. Applied Thermal Engineering, 2001, 21(6): 1891-1907.
PING Yuan, KOU Hongsen. The optimal aspect ratio on the thermal performance in a cross flow heat exchanger with longitudinal wall conduction [J]. Heat Transfer Engineering, 2015, 27(10): 36-43.
米廷灿, 厉彦忠. 轴向导热对逆流式板翅换热器传热性能的影响 [J]. 西安交通大学学报, 2003, 37(11): 1142-1145.
MI Tingcan, LI Yanzhong. Influence of longitudinal heat conduction on a counter flow plate-fin heat exchanger [J]. Journal of Xi'an Jiaotong University, 2003, 37(11): 1142-1145.
MICHELE C. Local effects of axial heat conduction in plate heat exchangers [J]. International Journal of Heat and Mass Transfer, 2007, 50: 3019-3025.
DOO J H, HA M Y. Theoretical prediction of axial heat conduction effect in cross-corrugated heat exchanger [J]. International Journal of Heat and Mass Transfer, 2012, 35(22): 3084-3096.
GUO Zengyuan, LI Zhixin. Size effect on single-phase channel flow and heat transfer at micro scale [J]. International Journal of Heat and Fluid Flow, 2003, 24: 284-298.
王玮, 葛峰, 过增元. 壁面轴向导热对微细管内对流换热的影响 [J]. 工程热物理学报, 2003, 24(5): 846-848.
WANG Wei, GE Feng, GUO Zengyuan. Effects of axial heat conduction in the wall on convective heat transfer in micro tubes [J]. Journal of Engineering Thermophysics, 2003, 24(5): 846-848.
甘云华, 杨泽亮. 轴向导热对微通道内传热特性的影响 [J]. 化工学报, 2008, 59(10): 2437-2441.
GAN Yunhua, YANG Zeliang. Effect of axial heat conduction on heat transfer in micro channels [J]. Journal of Chemical Industry and Engineering, 2008, 59(10): 2437-2441.
HUANG Chih-Yung, WU Chengmin. The experimental investigation of axial heat conduction effect on the heat transfer analysis in micro channel flow [J]. International Journal of Heat and Mass Transfer, 2014, 70: 169-173.
KAYS W M, LONDON A L. Compact heat exchangers [M]. New York, USA: McGraw-Hill, 1984: 168-174.
YANG Yujie, LI Yanzhong. General prediction of the thermal hydraulic performance for plate-fin heat exchanger with offset strip fins [J]. International Journal of Heat and Mass Transfer, 2014, 78: 860-870.
0
浏览量
6
下载量
8
CSCD
关联资源
相关文章
相关作者
相关机构
京公网安备11010802024621