Evaluation of thermal hydraulic flow and enhancement of heat performance in different 3D dimpled tube configurations according to design of experiment analysis

被引:23
作者
Al-Obaidi, Ahmed Ramadhan [1 ]
机构
[1] Mustansiriyah Univ, Coll Engn, Mech Engn Dept, Baghdad, Iraq
关键词
Heat transfer Performance; dimpled tube; optimization; design of experiment; taguchi method; response surface method; PRESSURE-DROP; CONDENSATION; EXCHANGER; R-134A; NANOFLUID; JET;
D O I
10.1080/15567036.2023.2181466
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The existing numerical research is concentrated on studying pressure drop, various velocity components, and heat performance behavior of heat exchanger pipe fitted with dimple on the inner pipe wall. Three-dimensional computational calculations using the CFD technique are conducted to study the influence of four geometrical parameters, including the distance between dimples, number of dimples, dimple diameter, and dimple pitch on the enhancement of thermo-hydraulic heat transfer. Also, the effects of the following parameters are optimized using the design of experiments (DOE) approaches combined with both Taguchi and Response Surface Methods. The results revealed different patterns of flow field and heat performance due to the use of dimples on the inner pipe surface. Moreover, utilized dimples can rise heat performance due to the interactions between the dimpled wall surfaces and swirling flow; hence, that can rise in area of heat transfer. Detailed flow analysis between dimples and pipe wall is demonstrated to describe the mechanisms of heat performance and pressure drop change. The orthogonal experiment outcomes revealed that the optimal design of the dimpled pipe has improved by about 35.75% and 36.1%. The numerical outcomes indicate that high value for the overall evaluation factor (PEF) is higher than 1. Based on the above findings, it can be found that hydrodynamic analysis flow, enhancement of heat transfer performance, and dimple optimization are required for different design applications.
引用
收藏
页码:1710 / 1730
页数:21
相关论文
共 31 条
[1]   Thermal flow and heat performance analyses in circular pipe using different twisted tape parameters based on design of experiments [J].
Al-Obaidi, Ahmed Ramadhan .
HEAT TRANSFER, 2022, 51 (08) :7202-7232
[2]   Effect of different corrugation interruptions Parameters on thermohydrodynamic characteristics and heat transfer performance of 3D Three-dimensional corrugated tube [J].
Al-Obaidi, Ahmed Ramadhan ;
Alhamid, Jassim ;
Khalaf, Hussam Ali .
CASE STUDIES IN THERMAL ENGINEERING, 2022, 32
[3]   Characterization of internal thermohydraulic flow and heat transfer improvement in a three-dimensional circular corrugated tube surfaces based on numerical simulation and design of experiment [J].
Al-Obaidi, Ahmed Ramadhan .
HEAT TRANSFER, 2022, 51 (05) :4688-4713
[4]   Investigation of thermal flow structure and performance heat transfer in three-dimensional circular pipe using twisted tape based on Taguchi method analysis [J].
Al-Obaidi, Ahmed Ramadhan .
HEAT TRANSFER, 2022, 51 (02) :1649-1667
[5]   Analysis on flow structure and improvement of heat transfer in 3D circular tube with varying axial groove turbulator configurations [J].
Al-Obaidi, Ahmed Ramadhan ;
Alhamid, Jassim ;
Saleh, Qasim .
HEAT TRANSFER, 2021, 50 (07) :7333-7348
[6]   Flow Field Structure, Characteristics of Thermo-Hydraulic and Heat Transfer Performance Analysis in a Three Dimensions Circular Tube with Different Ball Turbulators Configurations [J].
Al-Obaidi, Ahmed Ramadhan ;
Chaer, Issa .
ARABIAN JOURNAL FOR SCIENCE AND ENGINEERING, 2021, 46 (12) :12253-12282
[7]  
Albanesi A. W., 2018, 21 AUSTRALASIAN FLUI
[8]  
Annaratone D., 2010, HDB HEAT EXCHANGERS
[9]  
[Anonymous], 2015, Compact Heat Exchangers for Energy Transfer Intensifification: Low Grade Heat and Fouling Mitigation
[10]   Experimental investigation of condensation heat transfer and pressure drop of R-134a flowing inside dimpled tubes with different dimpled depths [J].
Aroonrat, Kanit ;
Wongwises, Somchai .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2019, 128 :783-793