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    Multicriteria Optimization and Comparison of ACAES and PTES for Long Duration Energy Storage Market

    Source: Journal of Engineering for Gas Turbines and Power:;2026:;volume( 148 ):;issue:006::page 38
    Author:
    Shamsi, Syed Safeer Mehdi
    ,
    Barberis, Stefano
    ,
    Lancini, Cesare
    ,
    Maffulli, Gianfranco
    ,
    Biliotti, Davide
    ,
    Traverso, Alberto
    DOI: 10.1115/1.4070247
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Abstract. With the penetration of renewable energy sources into the market, energy arbitrage, i.e., to store energy from the grid at the time of low demand (thus at lower or negative cost) and release it into the grid at the time of high demand (at higher cost), is becoming common practice. To better harness the price curves in expanding renewable energy markets, large scale energy storage solutions with GWh of storage capacities, hundreds of MWs with flexible charging and discharging rates are required; utility scale storages should feature approximate charging time of 6 h–10 h, shaving peak renewable energy production load from the grid in the daytime and 10+ h discharging time at the night to meet the consumer electricity demands. Adiabatic compressed air energy storage (ACAES) is an high-efficient thermomechanical energy storage solution able to provide such large scale arbitrage services, which is currently close to commercialization thanks to the work of startups and companies around the world and that is laying its capabilities on already demonstrated potential by compressed air energy storage systems in terms of high lifetime scalability, low self-discharge, long discharge times, relatively low capital costs, and high durability. On the other hand, pumped thermal energy storage (PTES), although still at a more infant technological development level, aims for the same category of storage solutions while providing additional benefits of no geographical constraints and no pressurized storage equipment in contrast to ACAES. This study compares the more technologically ready ACAES technology with emerging PTES technology for multiple technoeconomic criteria with industrial constraints on commercially available turbomachinery. Both ACAES and PTES are modeled for providing 100 MW of discharging power for 12 h with 6 h of charging targeting a round-trip efficiency of 70%. These constraints are then used to optimize the thermodynamic operating parameters of both technologies for analyzing the specific cost of charging, storage and discharging equipment and performance parameters in terms of energy density and levelized cost of electricity (LCOS). The study shows that when compared to basic and advanced configurations, PTES shows lower LCOS than ACAES while the energy density is comparable. However, if looked at the specific cost of charging and discharging, ACAES is currently cheaper than PTES for both configurations. However, that may change with the presence of hot temperature compressors, which may eliminate the need for an electric heater to reach the required operating temperature in PTES.
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      Multicriteria Optimization and Comparison of ACAES and PTES for Long Duration Energy Storage Market

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    https://yetl.yabesh.ir/yetl1/handle/yetl/4316935
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    • Journal of Engineering for Gas Turbines and Power

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    contributor authorShamsi, Syed Safeer Mehdi
    contributor authorBarberis, Stefano
    contributor authorLancini, Cesare
    contributor authorMaffulli, Gianfranco
    contributor authorBiliotti, Davide
    contributor authorTraverso, Alberto
    date accessioned2026-08-23T08:42:59Z
    date available2026-08-23T08:42:59Z
    date copyright2026/06/01
    date issued2026
    identifier issn0742-4795
    identifier othergtp-25-1500.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4316935
    description abstractAbstract. With the penetration of renewable energy sources into the market, energy arbitrage, i.e., to store energy from the grid at the time of low demand (thus at lower or negative cost) and release it into the grid at the time of high demand (at higher cost), is becoming common practice. To better harness the price curves in expanding renewable energy markets, large scale energy storage solutions with GWh of storage capacities, hundreds of MWs with flexible charging and discharging rates are required; utility scale storages should feature approximate charging time of 6 h–10 h, shaving peak renewable energy production load from the grid in the daytime and 10+ h discharging time at the night to meet the consumer electricity demands. Adiabatic compressed air energy storage (ACAES) is an high-efficient thermomechanical energy storage solution able to provide such large scale arbitrage services, which is currently close to commercialization thanks to the work of startups and companies around the world and that is laying its capabilities on already demonstrated potential by compressed air energy storage systems in terms of high lifetime scalability, low self-discharge, long discharge times, relatively low capital costs, and high durability. On the other hand, pumped thermal energy storage (PTES), although still at a more infant technological development level, aims for the same category of storage solutions while providing additional benefits of no geographical constraints and no pressurized storage equipment in contrast to ACAES. This study compares the more technologically ready ACAES technology with emerging PTES technology for multiple technoeconomic criteria with industrial constraints on commercially available turbomachinery. Both ACAES and PTES are modeled for providing 100 MW of discharging power for 12 h with 6 h of charging targeting a round-trip efficiency of 70%. These constraints are then used to optimize the thermodynamic operating parameters of both technologies for analyzing the specific cost of charging, storage and discharging equipment and performance parameters in terms of energy density and levelized cost of electricity (LCOS). The study shows that when compared to basic and advanced configurations, PTES shows lower LCOS than ACAES while the energy density is comparable. However, if looked at the specific cost of charging and discharging, ACAES is currently cheaper than PTES for both configurations. However, that may change with the presence of hot temperature compressors, which may eliminate the need for an electric heater to reach the required operating temperature in PTES.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleMulticriteria Optimization and Comparison of ACAES and PTES for Long Duration Energy Storage Market
    typeJournal Paper
    journal volume148
    journal issue6
    journal titleJournal of Engineering for Gas Turbines and Power
    identifier doi10.1115/1.4070247
    journal fristpage38
    journal lastpage50
    page13
    treeJournal of Engineering for Gas Turbines and Power:;2026:;volume( 148 ):;issue:006
    contenttypeFulltext
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