Thermo-economic assessments of pumped-thermal electricity storage systems employing sensible heat storage materials
Технико-экономическая оценка систем аккумулирования электроэнергии с термическим насосом, использующих материалы для аккумулирования явной теплоты
2022-01-10
SCID: 54.1/u7n4hrg5
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pumped-thermal electricity storageroundtrip efficiencysensible heat storagethermo-economic assessmenttranscritical Rankine cycle
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Abstract (AI)
Three distinct pumped-thermal electricity storage (PTES) system variants based on currently available sensible heat storage materials are presented: (i) Joule-Brayton PTES systems with solid thermal reservoirs; (ii) Joule-Brayton PTES systems with liquid thermal stores; and (iii) transcritical Rankine PTES systems with liquid thermal stores. Parametric design optimisation is performed for each PTES system variant considering various system configurations, working fluids and storage media from a thermodynamic perspective. The results show that amongst the investigated systems, the recuperative transcritical Rankine PTES system with CO2 as the working fluid and Therminol VP-1 as the storage material achieves the highest roundtrip efficiency of 68%. Further to the optimal thermodynamic performance of these system, their corresponding capital costs are also evaluated. The economic performance comparisons of selected optimal PTES designs reveal that the recuperative transcritical Rankine PTES system with CO2 and Therminol VP-1 exhibits the lowest capital cost of 209 M$ for the given power capacity (50 MW) and discharge duration (6 h). The influences of the power capacity and discharge duration are also investigated, with results showing that the lowest power and energy capital costs are 3790 $/kW (discharge duration of 2 h) and 396 $/kWh (discharge duration of 12 h), respectively.
Key Findings
1
Across investigated capacities and durations, minimum power and energy capital costs are 3790 $/kW at 2-hour discharge and 396 $/kWh at 12-hour discharge, respectively.
2
For a 50 MW system with 6-hour discharge, the optimized CO2/Therminol VP-1 transcritical Rankine design has the lowest capital cost, 209 M$.
3
Parametric thermodynamic optimization examines system configurations, working fluids, and storage materials across the three PTES variants.
4
The recuperative transcritical Rankine PTES system using CO2 and Therminol VP-1 achieves the highest reported roundtrip efficiency, reaching 68%.
5
The study evaluates three PTES variants using sensible heat storage: solid-reservoir Joule–Brayton, liquid-store Joule–Brayton, and liquid-store transcritical Rankine systems.
Research Object
pumped-thermal electricity storage (PTES) systems using sensible heat storage materials, including Joule-Brayton systems with solid or liquid thermal stores and transcritical Rankine systems with liquid thermal stores
Research Subject
thermodynamic efficiency, capital cost, and the effects of system configuration, working fluid, storage medium, power capacity, and discharge duration
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2022-01-10
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