Large-Scale Pumped Thermal Electricity Storages—Converting Energy Using Shallow Lined Rock Caverns, Carbon Dioxide and Underground Pumped-Hydro
Abstract
:Featured Application
Abstract
1. Introduction
2. Methods
3. Results of Literature Review and Economic Assessment
3.1. Novel Use of Existing LRC Cavern for UPHES
3.1.1. History and Characteristics of LRC Caverns
3.1.2. Use of LRC Cavern for Hydro-Pneumatic UPHES
3.2. Replacing Air by CO2 at Liquid-Vapor Equilibrium in a Hydro-Pneumatic UPHES
3.2.1. Reaching Constant Pressure for a Hydro-Pneumatic UPHES
3.2.2. Operation as a Storage of Short or Medium Duration
3.2.3. Operation as Short-Duration or Medium-Duration Storage, plus as Heat-Pump
3.2.4. Economic Evaluation as a Storage of Short and Medium Duration, with or without the Heat-Pump Function. Comparison with Electrochemical Storage
3.3. A Novel Long-Duration Storage, Hybrid of Hydro-Pneumatic UPHES with PTES
3.3.1. Overall Considerations for Long Duration Storage
3.3.2. Moving the Storage Capacity outside of UPHES, toward Thermal Stores
3.3.3. Economic Targets of the UPHES-PTES Hybrid Long-Duration Storage
4. Discussion
5. Conclusions
6. Patents
Author Contributions
Funding
Conflicts of Interest
References
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Component of Energy Capacity | Volume in m3 | Cost in USD/m3 | Cost in USD |
---|---|---|---|
LRC cavern (400 MWh @ 1.750 kWh per m3) | 230,000 | 300 | 69,000,000 |
Receiving pond for Hydro water | 230,000 | 30 | 6,900,000 |
Total Capex | - | - | 75,900,000 |
Total with 5% provision for CO2 cost, etc. | - | - | 80,000,000 |
Total Capex per KWh of energy | - | - | 200 |
Components of Energy Capacity | Volume in m3 | Cost in USD/m3 | Cost in USD |
---|---|---|---|
Hot Store for 10 GWh Electrical (atmosph.) | 987,000 | 40 | 39,480,000 |
Cold Store for 10 GWh Electrical (atmosph.) | 525,000 | 100 | 52,500,000 |
Total Capex | - | - | 91,980,000 |
Total Capex with 9% ancillary provision | - | - | 100,000,000 |
Total Capex per KWh of energy | - | - | 10 |
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Lalanne, P.; Byrne, P. Large-Scale Pumped Thermal Electricity Storages—Converting Energy Using Shallow Lined Rock Caverns, Carbon Dioxide and Underground Pumped-Hydro. Appl. Sci. 2019, 9, 4150. https://doi.org/10.3390/app9194150
Lalanne P, Byrne P. Large-Scale Pumped Thermal Electricity Storages—Converting Energy Using Shallow Lined Rock Caverns, Carbon Dioxide and Underground Pumped-Hydro. Applied Sciences. 2019; 9(19):4150. https://doi.org/10.3390/app9194150
Chicago/Turabian StyleLalanne, Pascal, and Paul Byrne. 2019. "Large-Scale Pumped Thermal Electricity Storages—Converting Energy Using Shallow Lined Rock Caverns, Carbon Dioxide and Underground Pumped-Hydro" Applied Sciences 9, no. 19: 4150. https://doi.org/10.3390/app9194150
APA StyleLalanne, P., & Byrne, P. (2019). Large-Scale Pumped Thermal Electricity Storages—Converting Energy Using Shallow Lined Rock Caverns, Carbon Dioxide and Underground Pumped-Hydro. Applied Sciences, 9(19), 4150. https://doi.org/10.3390/app9194150