Performance analysis of vortex tube-thermoelectric system in gas stations

被引:6
|
作者
Nejad, Amir Qatarani [1 ]
Jahangiri, Ali [1 ]
Ameri, Mohammad [1 ]
Ahmadi, Gholamreza [1 ]
Dizaji, Alireza Karamzadeh [1 ]
Shahsavar, Amin [2 ]
机构
[1] Shahid Beheshti Univ, Fac Mech & Energy Engn, Tehran, Iran
[2] Kermanshah Univ Technol, Dept Mech Engn, Kermanshah, Iran
关键词
Exergy; Multi-objective optimization; Natural gas; Thermoelectric generation; Vortex tube; TURBOEXPANDER; RECOVERY; ENERGY;
D O I
10.1016/j.seta.2022.102522
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
At natural gas pressure reducing stations, gas first enters a water bath heater to boost its temperature slightly, and after leaving the heater, it enters the throttle valve to reduce its pressure. This method has two major drawbacks, which are the consumption of natural gas in the heater and the excessive loss of exergy in the throttle valve. The pressure of natural gas can be reduced by using a vortex tube and converting it into hot and cold currents, and then generating electricity by directing these currents to thermoelectric generators (TEGs). Investigation of energy, exergy and environmental performance of the hybrid vortex tube-TEG system and optimization of its performance for the working condition of Kermanshah pressure reducing station is the subject of the present study. The cold mass fraction (CF) and efficiency of vortex tube are considered as decision variables. Moreover, annual average first-law efficiency (eta(I-TEG)), annual average second-law efficiency (eta(II-TEG)) and annual total electric power generated by the TEGs (P-out) are considered as optimization target functions. The results of genetic algorithm based three-objective optimization revealed that the specifications of the optimal system are: vortex tube efficiency = 0.36967, CF=0.95598,eta(I-TEG)=0.03442,eta(II-TEG)=0.04544, P-out=42770.58 kW and amount of CO2 mitigation per annum = 8.55 tons.
引用
收藏
页数:7
相关论文
共 50 条
  • [21] Comparative Study of the Combined Supersonic Separator and Vortex Tube Performance for Hydrocarbon Gas Drying
    Yudakov, Alexandr
    Vlasenko, Victor
    Slesarenko, Vyacheslav
    CHEMICAL ENGINEERING & TECHNOLOGY, 2021, 44 (04) : 773 - 781
  • [22] Performance analysis of a power generation system for pressure energy recovery at natural gas city gate stations
    Xu, Wenpan
    Zhao, Pan
    Gou, Feifei
    Liu, Aijie
    Wu, Wenze
    Wang, Jiangfeng
    APPLIED THERMAL ENGINEERING, 2022, 213
  • [23] Energy and exergy analysis and multi-objective optimization of using combined vortex tube-photovoltaic/thermal system in city gate stations
    Shahsavar, Amin
    Jahangiri, Ali
    Nejad, Amir Qatarani
    Ahmadi, Gholamreza
    Dizaji, Alireza Karamzadeh
    RENEWABLE ENERGY, 2022, 196 : 1017 - 1028
  • [24] Improving vortex tube performance based on vortex generator design
    Farzaneh-Gord, Mahmood
    Sadi, Meisam
    ENERGY, 2014, 72 : 492 - 500
  • [25] Performance analysis of wet flue-gas thermoelectric generator
    Zhao, Yulong
    Wang, Shixue
    Liang, Zhaojun
    Ge, Minghui
    PROCEEDINGS OF THE 9TH INTERNATIONAL CONFERENCE ON APPLIED ENERGY, 2017, 142 : 148 - 153
  • [26] Exergy analysis of vortex tube expansion vapour compression refrigeration system
    Sarkar, Jahar
    INTERNATIONAL JOURNAL OF EXERGY, 2013, 13 (04) : 431 - 446
  • [27] Numerical study of a solar thermoelectric generator with vortex tube for hybrid vehicle
    Talawo, Roni-Claudin
    Fotso, Blaise Eugene Mtopi
    Fogue, Medard
    NUMERICAL HEAT TRANSFER PART A-APPLICATIONS, 2021, 80 (1-2) : 43 - 61
  • [28] An experimental study of a solar thermoelectric generator with vortex tube for hybrid vehicle
    Talawo R.-C.
    Fotso B.E.M.
    Fogue M.
    International Journal of Thermofluids, 2021, 10
  • [29] Performance assessment of vortex tube and vertical ground heat exchanger in reducing fuel consumption of conventional pressure drop stations
    Ghezelbash, Reza
    Farzaneh-Gord, Mahmood
    Sadi, Meisam
    APPLIED THERMAL ENGINEERING, 2016, 102 : 213 - 226
  • [30] Simulation of vortex tube performance and three-dimensional flow with strong swirl in vortex tube
    He, Lijuan
    Wu, Xinwei
    Wang, Di
    Tian, Baoyun
    Wang, Zheng
    Wang, Meng
    Taiyangneng Xuebao/Acta Energiae Solaris Sinica, 2020, 41 (11): : 143 - 148