The drag reduction performance of low Reynolds number pulsating flow in flexible rectangular channels

被引:6
作者
Huang, Qi [1 ]
Si, Chao [1 ]
Zhao, Chuang-Yao [2 ]
Zhong, Ying-Jie [1 ]
Deng, Kai [1 ]
Hu, Yan-Jun [1 ]
机构
[1] Zhejiang Univ Technol, Inst Energy & Power Engn, Hangzhou 310023, Zhejiang, Peoples R China
[2] Xian Univ Architecture & Technol, Sch Bldg Serv Sci & Engn, Xian 710055, Shaanxi, Peoples R China
关键词
HEAT-TRANSFER; TURBULENT-FLOW; FLEXURAL RIGIDITY; PRESSURE-DROP; LAMINAR-FLOW; SHEAR; RESISTANCE; SURFACE;
D O I
10.1063/1.5092301
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
This work employed theoretical and experimental methods to study the drag reduction performance of flexible channels for low Reynolds number pulsating flow. A novel theoretical model was proposed to describe flow in a flexible rectangular channel. According to the model, the drag reduction of the flexible channel was speculated. Subsequently, experiments were carried out to verify the theoretical results and to illuminate the drag reduction performance of the flexible channel in detail under the impacts of pulsating frequency, nondimensional velocity amplitude, average Reynolds number, and the thickness of the flexible wall. The results indicated that the flexible channel exhibited superior drag reduction performance for pulsating flow as compared to that for steady flow. Meanwhile, the drag reduction rate increased with the increase of pulsating frequency, nondimensional velocity amplitude, and average Reynolds number, and smaller thickness of the flexible wall was in favor of drag reduction at the same flow parameters. Moreover, the current experimental data were utilized to establish a correlation Predicting the drag reduction rate of the flexible channel for pulsating flow, which fits 76.4% of 195 data within 25%. Published under license by AIP Publishing.
引用
收藏
页数:13
相关论文
共 46 条
[1]   INFLUENCE OF YOUNG'S MODULUS ON DRAG-REDUCTION IN TURBULENT FLOW USING FLEXIBLE TUBES [J].
Cai Shu-peng .
JOURNAL OF HYDRODYNAMICS, 2010, 22 (05) :657-661
[2]  
Cai SP, 2008, J HYDRODYN, V20, P96, DOI 10.1016/S1001-6058(08)60033-5
[3]  
Carpenter PW, 2000, CURR SCI INDIA, V79, P758
[4]   Turbulent drag reduction using compliant surfaces [J].
Choi, KS ;
Yang, X ;
Clayton, BR ;
Glover, EJ ;
Atlar, M ;
Semenov, BN ;
Kulik, VM .
PROCEEDINGS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 1997, 453 (1965) :2229-2240
[5]   Flow characteristics around a deformable stenosis under pulsatile flow condition [J].
Choi, Woorak ;
Park, Jun Hong ;
Byeon, Hyeokjun ;
Lee, Sang Joon .
PHYSICS OF FLUIDS, 2018, 30 (01)
[6]  
COPE FREEMAN W., 1960, BULL MATH BIOPHYS, V22, P19, DOI 10.1007/BF02477969
[7]   The nonlinear theory of elastic shells with phase transitions [J].
Eremeyev, VA ;
Pietraszkiewicz, W .
JOURNAL OF ELASTICITY, 2004, 74 (01) :67-86
[8]   Influence of chemical refining process and oil type on bound 3-chloro-1,2-propanediol contents in palm oil and rapeseed oil [J].
Franke, K. ;
Strijowski, U. ;
Fleck, G. ;
Pudel, F. .
LWT-FOOD SCIENCE AND TECHNOLOGY, 2009, 42 (10) :1751-1754
[9]   Compliant coatings for drag reduction [J].
Gad-el-Hak, M .
PROGRESS IN AEROSPACE SCIENCES, 2002, 38 (01) :77-99
[10]   THE RESPONSE OF ELASTIC AND VISCOELASTIC SURFACES TO A TURBULENT BOUNDARY-LAYER [J].
GADELHAK, M .
JOURNAL OF APPLIED MECHANICS-TRANSACTIONS OF THE ASME, 1986, 53 (01) :206-212