Techno-Economic Analysis and Optimization of a Compressed-Air Energy Storage System Integrated with a Natural Gas Combined-Cycle Plant
Abstract
:1. Introduction
- What are the optimal design of CAES and operating conditions of the CAES and NGCC plant for a given LMP profile?
- Which region is favorable (i.e., has a positive NPV) for the integrated CAES and how do the optimal design and operation of the integrated CAES system differ from region to region?
- Which cost components have a high impact on NPV and what extent of reduction in a cost component can make the integrated CAES system favorable in an otherwise unfavorable region?
2. Model Development and Validation
2.1. NGCC Model Development
2.2. CAES Model Development
- i.
- Air is assumed to be an ideal gas. Given the pressure and temperature ranges of operation considered in this study (40–72 bar and 10–50 °C), the compressibility factor of air does not deviate much from 1.
- ii.
- The cavern is considered to be a well-mixed system and it is assumed to lose heat only through its wall. No other heat loss from the air is considered under the assumption that the incoming and existing air ducts are well-insulated.
2.3. CAES Model Validation
2.4. Reduced Order Model (ROM) Development
2.4.1. ROM Development for the NGCC Plant Integrated with Compressed Air Extraction/Injection
2.4.2. Linear MIMO State-Space Model for NGCC Plant Integrated with Air Extraction/Injection
3. Process Optimization
3.1. NPV Optimization Formulation
3.2. Optimization Strategy
4. Results and Discussion
4.1. NPV Optimization
4.2. Sensitivity Analysis
4.2.1. Impact of Specific LMP
4.2.2. Impact of CAPEX Reduction
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
CAISO | California Independent System Operator |
ERCOT | Electric Reliability Council of Texas |
MISO | Midcontinent Independent System Operator |
NYISO | New York Independent System Operator |
PJM | Pennsylvania—New Jersey Maryland |
CAPEX | Capital Expenditure |
OPEX | Operating Expenditure |
Nomenclature | |
Area of heat exchanger | |
Area of heat transfer between air and the cavern wall | |
Carbon tax | |
CO2 emissions rate | |
Cost of natural gas | |
Specific heat capacity of air | |
Specific heat capacity of water | |
Specific heat capacity of air | |
Air extraction flowrate at instant t | |
Air injection flowrate at instant t | |
Specific enthalpy of the incoming air | |
Specific enthalpy of the outgoing air | |
Specific ideal enthalpy | |
Effective heat transfer coefficient between air and cavern wall | |
k | Specific heat ratio |
Locational marginal price at time t | |
Molecular weight of air | |
Natural gas mass flowrate at time t | |
Air mass flowrate to heat exchanger | |
Cooling water flowrate to heat exchanger | |
Air inlet mass flowrate to cavern | |
Air outlet mass flowrate from cavern | |
Total mass of air inside cavern | |
Inlet air pressure to compressor | |
Outlet air pressure from compressor | |
Inlet air pressure to expander | |
Outlet air pressure to expander | |
Power requirement of compressor | |
Power output of expander | |
Net power sold to the grid at time t | |
Gross power at time t | |
Power consumption | |
Power generation by expander from CAES | |
CAES compressor power | |
CAES expander power | |
Deviation of power generation at time t | |
Cutoff power | |
Air mass flowrate to compressor | |
Air mass flowrate to expander | |
Cold fluid heat duty | |
Hot fluid heat duty | |
Q | heat transfer rate |
Specific gas constant | |
Universal gas constant | |
Air temperature to compressor | |
Air temperature from compressor | |
Inlet air temperature to expander | |
Outlet air temperature from expander | |
Inlet air temperature to heat exchanger | |
Output air temperature from heat exchanger | |
Inlet water temperature to heat exchanger | |
Output water temperature from heat exchanger | |
Log mean temperature difference | |
Air storage temperature | |
Cavern wall temperature | |
Reference temperature | |
Overall heat transfer coefficient from the wall to ambient air | |
Specific internal energy of the incoming air | |
Volume of the cavern | |
Greek Variables | |
Parameter | |
β | Compression/Expansion ratio |
Parameter | |
η | Isentropic efficiency |
Parameter | |
Air density inside cavern | |
Hydrogen density inside cavern | |
Density |
Appendix A
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(1) | |
(2) | |
(3) | |
(4) | |
(5) |
Compressor | |
(6) | |
(7) | |
Cooler: Hot Fluid—Air, Cold Fluid—Water | |
(8) | |
(9) | |
Heat transfer area calculation | |
(10) | |
Description | Value |
---|---|
Design & Operating Conditions | |
Inlet temperature (Tin), K | 330 |
Mass flowrate (), kg/s | 417 |
Volume of the cavern (m3) Ambient temperature (Twall), K | 3,000,000 330 |
Initial Conditions (discharge cycle) | |
Air storage density, kg/m3 | 76.24 |
Mass flowrate, kg/s | 417 |
Pressure, bar | 69 |
Temperature, °C | 33 |
Parameter | Extraction Sites | Injection Sites |
---|---|---|
GT-Air Compressor (Discharge site) | Extraction flowrate range: 50–86,000 kg/h | Injection flowrate range: 50–72,000 kg/h Injection temperature range: 424.5–530 °C |
Region | Cavern Storage | LCOS-Cavern ($/MWh) | |||
---|---|---|---|---|---|
NGCC Capacity Utilization (%) | NGCC-Only NPV ($MM) | NGCC–CAES NPV ($MM) | Cumulative Air Injection (kg) | ||
CAISO_100 | 71.57 | 687.72 | 710.84 | 128.60 × 106 | 136 |
CAISO_150 | 62.87 | 44.23 | 171.33 | 37.64 × 106 | 145 |
ERCOT_100 | 60.67 | −185.58 | −117.08 | 143.77 × 106 | 162 |
ERCOT_150 | 68.71 | −52.12 | 12.48 | 121.01 × 106 | 140 |
MISO_100 | 65.48 | 65.37 | 78.74 | 74.38 × 106 | 144 |
MISO_150 | 61.23 | −185.58 | −132.86 | 110.64 × 106 | 168 |
PJM_100 | 74.79 | 405.48 | 455.46 | 6.85 × 106 | 144 |
PJM_150 | 68.68 | 15.40 | 117.75 | 42.30 × 106 | 142 |
NYISO_100 | 59.56 | 335.11 | 345.43 | 57.41 × 106 | 144 |
NYISO_150 | 59.32 | −185.58 | −91.35 | 27.94 × 106 | 176 |
Base Case_60 | 88.45 | 322.50 | 376.00 | 142.29 × 106 | 142 |
High Solar_60 | 82.43 | 285.02 | 371.42 | 144.18 × 106 | 141 |
High Wind_60 | 83.09 | 288.17 | 369.21 | 142.62 × 106 | 141 |
Winter NYT_60 | 90.78 | 270.08 | 340.44 | 150.28 × 106 | 140 |
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Sengalani, P.S.; Haque, M.E.; Zantye, M.S.; Gandhi, A.; Li, M.; Hasan, M.M.F.; Bhattacharyya, D. Techno-Economic Analysis and Optimization of a Compressed-Air Energy Storage System Integrated with a Natural Gas Combined-Cycle Plant. Energies 2023, 16, 4867. https://doi.org/10.3390/en16134867
Sengalani PS, Haque ME, Zantye MS, Gandhi A, Li M, Hasan MMF, Bhattacharyya D. Techno-Economic Analysis and Optimization of a Compressed-Air Energy Storage System Integrated with a Natural Gas Combined-Cycle Plant. Energies. 2023; 16(13):4867. https://doi.org/10.3390/en16134867
Chicago/Turabian StyleSengalani, Pavitra Senthamilselvan, Md Emdadul Haque, Manali S. Zantye, Akhilesh Gandhi, Mengdi Li, M. M. Faruque Hasan, and Debangsu Bhattacharyya. 2023. "Techno-Economic Analysis and Optimization of a Compressed-Air Energy Storage System Integrated with a Natural Gas Combined-Cycle Plant" Energies 16, no. 13: 4867. https://doi.org/10.3390/en16134867
APA StyleSengalani, P. S., Haque, M. E., Zantye, M. S., Gandhi, A., Li, M., Hasan, M. M. F., & Bhattacharyya, D. (2023). Techno-Economic Analysis and Optimization of a Compressed-Air Energy Storage System Integrated with a Natural Gas Combined-Cycle Plant. Energies, 16(13), 4867. https://doi.org/10.3390/en16134867