Analysis of Liquid Air Energy Storage System with Organic Rankine Cycle and Heat Regeneration System

被引:0
|
作者
Umyshev, Dias Raybekovich [1 ]
Osipov, Eduard Vladislavovich [2 ]
Kibarin, Andrey Anatolievich [1 ]
Korobkov, Maxim Sergeyevich [1 ]
Petukhov, Yuriy Viktorovich [3 ]
机构
[1] Energo Univ, Inst Energy & Green Technol, Dept Thermal Engn, Alma Ata 050013, Kazakhstan
[2] Kazan Natl Res Technol Univ, Inst Mech Engn Chem & Petrochem Ind, Mech Engn Chem Ind, Kazan 420015, Russia
[3] Tien Shan Engn LLP, Engn Dept, Timiryazev Str 42, Alma Ata 050013, Kazakhstan
关键词
liquid air energy storage; thermal; electrical; air; compressor; expander; THERMODYNAMIC ANALYSIS; WORKING FLUID; EFFICIENCY; SELECTION; ORC;
D O I
10.3390/su16135434
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Liquid air energy storage (LAES) is one of the most promising technologies for power generation and storage, enabling power generation during peak hours. This article presents the results of a study of a new type of LAES, taking into account thermal and electrical loads. The following three variants of the scheme are being considered: with single-stage air compression and the use of compression heat for regasification (Case 1); with single-stage compression and the organic Rankine cycle (Case 2); and with three-stage air compression/expansion and the organic Rankine cycle (Case 3). To analyze the proposed schemes, the Aspen HYSYS v.12 software package was used to compile models of the studied cycles. The analysis shows that round-trip efficiency (RTE) can be as high as 54%. The cost of 1 kg of liquid air is USD 7-8. Moreover, it is shown that the generation of electrical energy largely depends on the operation of the expander plant, followed by the organic Rankine cycle (ORC).
引用
收藏
页数:16
相关论文
共 50 条
  • [21] Organic Rankine Cycle for Energy Recovery System
    De Pascale, Andrea
    ENERGIES, 2021, 14 (17)
  • [22] Organic Rankine Energy Storage (ORES) system
    de Oliveira Junior, Maury M.
    Maia, Antonio A. T.
    Porto, Matheus P.
    ENERGY, 2020, 204 (204)
  • [23] Unsteady analysis of the cold energy storage heat exchanger in a liquid air energy storage system
    Chen, Jiaxiang
    Yang, Luwei
    An, Baolin
    Hu, Jianying
    Wang, Junjie
    ENERGY, 2022, 242
  • [24] Performance analysis of an integrated pumped-hydro and compressed-air energy storage system and solar organic Rankine cycle
    Marefati, Mohammad
    Mehrpooya, Mehdi
    Pourfayaz, Fathollah
    JOURNAL OF ENERGY STORAGE, 2021, 44
  • [25] ENERGY AND EXERGY ANALYSIS OF A COMBINED REFRIGERATION AND WASTE HEAT DRIVEN ORGANIC RANKINE CYCLE SYSTEM
    Cihan, Ertugrul
    Kavasogullari, Baris
    THERMAL SCIENCE, 2017, 21 (06): : 2621 - 2631
  • [26] Liquid Air Energy Storage performance enhancement by means of Organic Rankine Cycle and Absorption Chiller
    Tafone, Alessio
    Borri, Emiliano
    Comodi, Gabriele
    van den Broek, Martijn
    Romagnoli, Alessandro
    APPLIED ENERGY, 2018, 228 : 1810 - 1821
  • [27] EXERGY ANALYSIS OF LIQUID AIR ENERGY STORAGE SYSTEM BASED ON LINDE CYCLE
    Ionita, Claudia
    Vasilescu, Elena Eugenia
    Popa, Lucretia
    Pop, Horatiu
    Alqaisy, Saleh Jassim Saleh
    Uta, Iulian
    INMATEH-AGRICULTURAL ENGINEERING, 2022, 67 (02): : 543 - 552
  • [28] Organic Rankine cycle combined heat and power system
    Pei, Gang
    Wang, Dongyue
    Li, Jing
    Li, Yunzhu
    Ji, Jie
    Huagong Xuebao/CIESC Journal, 2013, 64 (06): : 1993 - 2000
  • [29] Energy benefits of organic Rankine cycle in a liquid desiccant and evaporative cooling-assisted air conditioning system
    Dong, Hye-Won
    Jeong, Jae-Weon
    RENEWABLE ENERGY, 2020, 147 : 2358 - 2373
  • [30] 3E analyses of a cogeneration system based on compressed air energy storage system, solar collector and organic Rankine cycle
    Li, Yuquan
    Teng, Shiyang
    Xi, Huan
    CASE STUDIES IN THERMAL ENGINEERING, 2023, 42