Effect of Integrating Metal Wire Mesh with Spray Injection for Liquid Piston Gas Compression

被引:17
作者
Ahn, Barah [1 ]
Patil, Vikram C. [2 ]
Ro, Paul, I [1 ]
机构
[1] Baylor Univ, Dept Mech Engn, Waco, TX 76798 USA
[2] XALT Energy, Auburn Hills, MI 48326 USA
关键词
compressed air energy storage; liquid piston; spray cooling; heat transfer enhancement; isothermal gas compression; ENERGY-STORAGE; HEAT-TRANSFER; COMPRESSOR/EXPANDER; EFFICIENCY; DESIGN;
D O I
10.3390/en14133723
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
Heat transfer enhancement techniques used in liquid piston gas compression can contribute to improving the efficiency of compressed air energy storage systems by achieving a near-isothermal compression process. This work examines the effectiveness of a simultaneous use of two proven heat transfer enhancement techniques, metal wire mesh inserts and spray injection methods, in liquid piston gas compression. By varying the dimension of the inserts and the pressure of the spray, a comparative study was performed to explore the plausibility of additional improvement. The addition of an insert can help abating the temperature rise when the insert does not take much space or when the spray flowrate is low. At higher pressure, however, the addition of spacious inserts can lead to less efficient temperature abatement. This is because inserts can distract the free-fall of droplets and hinder their speed. In order to analytically account for the compromised cooling effects of droplets, Reynolds number, Nusselt number, and heat transfer coefficients of droplets are estimated under the test conditions. Reynolds number of a free-falling droplet can be more than 1000 times that of a stationary droplet, which results in 3.95 to 4.22 times differences in heat transfer coefficients.
引用
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页数:23
相关论文
共 43 条
[1]   Policy surveillance in the G-20 fossil fuel subsidies agreement: lessons for climate policy [J].
Aldy, Joseph E. .
CLIMATIC CHANGE, 2017, 144 (01) :97-110
[2]   Overview of energy storage in renewable energy systems [J].
Amrouche, S. Ould ;
Rekioua, D. ;
Rekioua, T. ;
Bacha, S. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2016, 41 (45) :20914-20927
[3]  
[Anonymous], 2003, ENG TOOLBOX AIR DENS
[4]  
[Anonymous], 2018, ENG TOOLBOX AIR PRAN
[5]  
[Anonymous], 2004, ENG TOOLBOX UNIVERSA
[6]  
[Anonymous], 2003, ENG TOOLBOX AIR DYNA
[7]  
[Anonymous], 2009, AIR THERM COND
[8]   Energy storage and its use with intermittent renewable energy [J].
Barton, JP ;
Infield, DG .
IEEE TRANSACTIONS ON ENERGY CONVERSION, 2004, 19 (02) :441-448
[9]   Controllable and affordable utility-scale electricity from intermittent wind resources and compressed air energy storage (CAES) [J].
Cavallo, Alfred .
ENERGY, 2007, 32 (02) :120-127
[10]   Advancements in power electronics and drives in interface with growing renewable energy resources [J].
Chakraborty, Arindam .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2011, 15 (04) :1816-1827