The experimental investigation and thermodynamic analysis of vortex tubes

被引:0
作者
Adem Celik
Mehmet Yilmaz
Mehmet Kaya
Sendogan Karagoz
机构
[1] Erzincan University,Department of Mechanical Engineering, Faculty of Engineering
[2] VIIIth Regional Directorate of State Hydraulic Works,Department of Mechanical Engineering, Faculty of Engineering
[3] Atattürk University,undefined
来源
Heat and Mass Transfer | 2017年 / 53卷
关键词
Inlet Pressure; Vortex Tube; Energy Separation; Increase Temperature Difference; Exergy Consumption;
D O I
暂无
中图分类号
学科分类号
摘要
In the present study, it was aimed to produce a fundamental i nformation and to investigate the effects of various design parameters on tube performance characteristics by setting up vortex tube experimental system in order to study the parameters predetermined for the design of vortex tubes and by conducting thermodynamic analysis. According to the findings of experiments, as the mass flow rate of cold flow increases (yc) temperature of cold flow also increases, while the temperature of warm flow increases approximately to yc = 0.6 and then decreases. Increases in inlet pressure, inlet nozzle surface and diameter of the cold outlet orifice increased temperature differences between cold and warm flows. Tube with L/D = 10 showed better performance than with L/D = 20. The finding that irreversibility parameter is very close to critical threshold of irreversibility proved that process in vortex tube is considerably irreversible. Coefficient of performance (COP) values in vortex tube were much lower than other heating and cooling systems. This situation may show that vortex tubes are convenient in the processes where productivity is at the second rate compared to other factors.
引用
收藏
页码:395 / 405
页数:10
相关论文
共 104 条
[1]  
Hilsch R(1947)The use of the expansion of gases in a centrifugal field as cooling process Rev Sci Inst 18 108-113
[2]  
Fulton CD(1950)Ranque’s tube J ASRE Refrig Eng 58 473-479
[3]  
Yılmaz M(2006)Vortex tubes:1 technological development (in Turkish) Eng Mach 47 46-54
[4]  
Çomaklı Ö(2009)A revive on design criteria for vortex tubes Heat Mass Transf 45 613-632
[5]  
Kaya M(1999)Numerical investigations of the compressible flow and the energy separation in the Ranque–Hilsch vortex tube Int J 42 415-422
[6]  
Karslı S(1982)The vortex tube: a violation of the second law Eur J Phys 3 88-92
[7]  
Yilmaz M(1984)A similarity relation for energy separation in a vortex tube Int J Heat Mass Transf 27 911-920
[8]  
Kaya M(1988)Pressure-driven Ranque–Hilsch temperature separation in liquids Trans ASME J Fluids Eng 110 161-164
[9]  
Karagoz S(1996)An experimental study for cold end orifice of vortex tube Trans KSME B 20 1061-1073
[10]  
Erdogan S(1999)Exergy model of a vortex tube system with experimental results Energy 24 625-632