A new application study of liquefied natural gas in assisting in the start-up of the liquid air energy storage system without sufficient cold storage energy
Yufei Zhou,
Hanfei Zhang,
Shuo Liu,
Jin Huang,
Xingqi Ding,
Liqiang Duan and
Umberto Desideri
Applied Energy, 2025, vol. 401, issue PB, No S0306261925015247
Abstract:
Liquid air energy storage (LAES) is a highly promising large-scale energy storage technology, with the cold energy cycle being a key part. However, during the initial start-up of an LAES system or its restart after a prolonged maintenance, the system may face a cold storage energy deficiency, and how to establish the cold energy cycle under such conditions has not been adequately addressed in existing studies. Based on a dynamic model of an LAES system, this study first investigates the process and performance of air liquefaction without cold storage energy, relying solely on the throttling cooling effect of air. Subsequently, a novel scheme and evaluation metrics are proposed for using the additional cold energy from liquefied natural gas (LNG) to assist in the start-up of the LAES system without cold storage energy, and the performance of this process is analyzed. The results show that when cold storage energy is sufficient, the liquid air begins to form approximately 30 s after start-up. However, when cold storage energy is deficient, it takes about 844 s to generate liquid air, and the maximum liquid yield is only 2.71 %, leading to around a 30-fold increase in the time required to fill up the liquid air tank (LAT) compared to the rated charging duration. By introducing the LNG, the liquid air can be produced 92 s after start-up under optimal conditions, with a maximum liquid yield of 41.7 %. The time required to fill up the LAT is reduced to 1/15.2 of the required time of the LAES system not using external cold energy. Additionally, the lower the LNG operating pressure, the faster the air liquefaction process, and the less the total LNG consumption. The findings of this study provide a viable contingency strategy for cold storage energy deficiency in LAES systems caused by any possible factors, contributing to the development of robust start-up procedures and enhancing system reliability.
Keywords: Liquid air energy storage; Liquefied natural gas; Cold energy cycle; Cold storage energy; Dynamic performance (search for similar items in EconPapers)
Date: 2025
References: View references in EconPapers View complete reference list from CitEc
Citations: View citations in EconPapers (1)
Downloads: (external link)
http://www.sciencedirect.com/science/article/pii/S0306261925015247
Full text for ScienceDirect subscribers only
Related works:
This item may be available elsewhere in EconPapers: Search for items with the same title.
Export reference: BibTeX
RIS (EndNote, ProCite, RefMan)
HTML/Text
Persistent link: https://EconPapers.repec.org/RePEc:eee:appene:v:401:y:2025:i:pb:s0306261925015247
Ordering information: This journal article can be ordered from
http://www.elsevier.com/wps/find/journaldescription.cws_home/405891/bibliographic
http://www.elsevier. ... 405891/bibliographic
DOI: 10.1016/j.apenergy.2025.126794
Access Statistics for this article
Applied Energy is currently edited by J. Yan
More articles in Applied Energy from Elsevier
Bibliographic data for series maintained by Catherine Liu ().