Advancements in Energy-Storage Technologies: A Review of Current Developments and Applications
Abstract
1. Introduction
2. Types of Energy-Storage Technologies
2.1. Mechanical Energy Storage
2.1.1. Pumped Hydro Storage
2.1.2. Compressed Air Energy Storage
2.1.3. Flywheel Energy Storage
2.2. Electrochemical Energy Storage
2.2.1. Lithium-Ion Batteries
2.2.2. Flow Batteries
2.2.3. Sodium-Sulfur Batteries
2.3. Thermal Energy Storage
2.3.1. Sensible Heat Storage
2.3.2. Latent Heat Storage
2.3.3. Thermochemical Energy Storage
2.4. Electromagnetic Energy Storage
2.4.1. Supercapacitors
2.4.2. Superconducting Magnetic Energy Storage
2.5. Chemical Energy Storage
3. Current Development Status of Technical Characteristics of Energy-Storage Technology
3.1. Characterization of Energy-Storage Technologies
3.2. Comparison of Application Characteristics of Energy-Storage Technologies
4. Economic Feasibility of Energy-Storage Technologies
4.1. Lifecycle Cost
4.1.1. Capital Expenditure
4.1.2. Operation and Maintenance Cost
4.1.3. Replacement Cost
4.1.4. Charging Cost
4.1.5. Recycling Cost
4.1.6. Net Present Value of Total Lifecycle Cost
4.1.7. Net Present Value of Total Discharged Energy
4.1.8. Levelized Cost of Electricity (LCOE)
4.2. Benefit Analysis of Energy-Storage Technologies
4.2.1. User-Side Time-of-Use Peak-Valley Arbitrage
4.2.2. Auxiliary Services Market Revenues
4.2.3. Energy-Storage Capacity Revenue
5. Application of Energy-Storage Technologies
5.1. Enhancing Power System Stability
5.1.1. Generation Side
5.1.2. Generation Side
5.1.3. Grid Side
5.1.4. User Side
5.2. Improving the Reliability of Renewable Energy Integration
5.3. Transportation
5.3.1. Electric Vehicles
5.3.2. Urban Rail Transit
5.3.3. Ships
5.4. Domestic Energy-Storage Projects in China
5.5. Domestic Energy-Storage Projects in China
6. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Energy Storage Type | Energy Storage Type | Response Time | Cycle Life (Times) | Power Density (kW/m3) |
---|---|---|---|---|
Mechanical Energy Storage | Pumped Hydro Storage | Minute-level | ≥50 years | 0.5–1.5 |
Compressed Air Energy Storage | Minute-level | 30–50 years | 0.5–2 | |
Flywheel Energy Storage | 10 ms range | ≥20 years | 1000–2000 | |
Electrical Storage | Superconducting Magnetic | Millisecond-level | 10,000–100,000 | 300–4000 |
Supercapacitor | Millisecond-level | ≥50,000 | >100,000 | |
Electrochemical Energy Storage | Lead-Acid Battery | 100 ms range | 500–2000 | 200–500 |
Nickel-Cadmium Battery | 100 ms range | 1000–4500 | 250–1000 | |
Lithium-Ion Battery | 100 ms range | 1000–5000 | 100–3500 | |
Sodium-Sulfur Battery | 100 ms range | 2500–4500 | 150–230 | |
Flow Battery | 100 ms range | >1000 | 0.5–2 | |
Thermal Energy Storage | Sensible Heat Storage | Minutes to Hours | Thousands–Tens of Thousands | Hundreds–Thousands |
Latent Heat Storage | Minutes to Hours | ≥Tens of Thousands | Hundreds | |
Thermochemical Energy Storage | Hours to Days | Millions | 100–1000 | |
Chemical Energy Storage | Hydrogen Energy Storage | Minute-level | 500–2000 | >500 |
Energy Storage Type | Energy Storage Type | Application Phase | Market Development Stage | Advantages | Disadvantages |
---|---|---|---|---|---|
Mechanical Energy Storage | Pumped Hydro Storage | Integration of renewable energy, grid-scale energy storage, peaking, load balancing | maturity | High capacity, long service life, low maintenance | Requires specific terrain, geological, and water conditions, limited site selection |
Compressed Air Energy Storage | Grid peaking, system backup power | Research phase | Long service life, fast response speed, environmentally friendly, high capacity and low cost | Efficiency fluctuations, potential safety hazards, and high requirements for geographical environment | |
Flywheel Energy Storage | Peaking, frequency control, UPS, power quality regulation, transmission and distribution system stabilization | Demonstration phase | High power density, fast charging speed, long service life and high cycle efficiency | Low energy density, high self-discharge, high unit energy storage cost | |
Electromagnetic Energy Storage | Superconducting Magnetic Energy Storage | UPS, power quality regulation, transmission and distribution system stability | Experimental research and early application phase | Fast response, high energy-storage capacity, high reliability | High cost, cooling issues, loss of super, large magnetic field requirement |
Supercapacitors | Power quality regulation, transmission and distribution system stability | Demonstration application phase | High energy density | Interdependence of battery component characteristics, safety issues, environmental impacts | |
Electrochemical Energy Storage | Lead-acid Battery | UPS, Renewable Energy Systems, Power Backups, Emergency Power Supplies | maturity | Fast reaction speed, low self-discharge rate, high cycle efficiency, low capital cost | Low energy density, high environmental impact |
Lead-carbon Battery | Power quality, frequency control, plant standby, renewable energy storage | Early stage of industrialization | Cost-effective and low consistency | Low energy density, short cycle life, environmental issues | |
Lithium-ion Batteries | Integrated renewable energy, grid-scale energy storage, electric vehicles | Commercial scale phase | High energy density, fast response, low self-discharge rate, long service life, high reliability | Lifecycle depends on discharge level, high cost, need for operating temperature and overcharge protection | |
Sodium-Sulfur Battery | Power quality, backup power, peak-to-valley, energy management, renewable energy storage | Demonstration application phase | High energy density, low self-discharge rate, fast response time, non-toxic materials | High internal resistance, sodium corrosion, for additional systems requiring high-temperature heating | |
Flow Battery | Backup power systems, grid-scale energy storage, renewable energy integration | Demonstration application phase | Fast response time and high energy-storage capacity | Complex structure, low energy and power density, environmental concerns | |
Thermal Energy Storage | Sensible Heat Storage | Solar thermal systems, industrial waste heat recovery, centralized heat supply | maturity | No need to use toxic or expensive materials, wide range of available materials, low cost | Low energy density, high cycle efficiency, energy density is affected by the material selected |
Latent Heat Storage | Solar thermal power, building thermoregulation, cold chain transportation | Demonstration application phase | High energy density, small temperature shift range | Differentiation of PCM volume per cycle, high demand for PCMs | |
Thermochemical Energy Storage | High-temperature thermal energy storage, thermal energy management in industrial processes, energy conversion and storage | Research and development phase | High efficiency, high energy density, long-term stability during storage, low energy loss | High manufacturing cost, low efficiency, poor heat transfer performance | |
Chemical Storage | Hydrogen Energy Storage | Balanced dispatch of renewable energy, enhanced power system stability, clean energy drive in transportation | demonstration application phase | High energy density, long discharge time, better environmental compatibility | Overall low energy conversion efficiency and high investment costs |
Energy Storage Type | Project Location/Name | Installed Capacity | Function | Time |
---|---|---|---|---|
Pumped Hydro Storage | Fujian–Zhouning | 4 × 300 MW | Peak-shaving and valley-filling, emergency backup, and improvement of the operating conditions of regional nuclear power units | 2022 |
Compressed Air Energy Storage | Hebei–Zhangjiakou | 100 MW | Peaking, frequency and phase control, rotating standby, black start | 2022 |
Hubei Yingcheng compressed air energy storage power station | 300 MW | Peaking, frequency regulation, standby | 2024 | |
Flywheel Energy Storage | Ningxia–Lingwu | 22 MW | Frequency regulation to promote new energy consumption | Construction to begin in 2021 |
Flywheel Energy Storage | Shuozhou Cogeneration Flywheel Energy Storage Complex FM Project | 8 MW | frequency regulation | 2023 |
Supercapacitors | Shanxi Intelligent Energy Internet Demonstration Project | — | Energy Time Shift, Power Smoothing, Voltage Support and System FM | 2023 |
Huaneng Luoyuan Power Plant Hybrid Super Capacitor + Lithium Battery Energy Storage and FM System | 20 MW | Frequency regulation to improve grid frequency and voltage stability and promote renewable energy consumption | 2023 | |
Lithium-ion Battery | CNNC Concentric Quanye 100 MW/200 MWh Energy Storage Power Station | 30 sets of 3.45 MW/ 6.7 MWh lithium iron phosphate battery energy storage systems | Shaving peaks and filling valleys, promoting new energy consumption and improving grid stability | 2022 |
Lead-carbon Battery | Zhejiang Huzhou, Jidian’s first lead-carbon “100 MWh” customer-side energy storage project | Phase I; 10 MW/97.312 MWh | Peak-shaving and valley-filling, promotion of new energy consumption, backup power supply | Construction to begin in 2022 |
Flow Battery | Liaoning-Dalian | 200 MW; Phase I: 100 MW/400 MW-h | Peaking to promote new energy consumption | Commissioning in 2022 |
Hydrogen Energy Storage | Anhui-Liuan | 1 MW | valley-filling and peak-shaving | 2021 |
Thermal Energy Storage | Jiangsu Jingjiang Power Plant Molten Salt Storage and Peaking Heat Supply Project | 75 MW·h | Peak-shaving and frequency regulation, Safe Steam Supply, New Energy Consumption | 2023 |
Huayuan Jining Thermal Power Molten Salt Energy Storage FM Project | 50 MW (using “10 MW steam + 40 MW electricity” combined heating of molten salt) | Peak-shaving and frequency regulation, Safe Steam Supply, New Energy Consumption | 2024 |
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Liu, X.; Li, W.; Guo, X.; Su, B.; Guo, S.; Jing, Y.; Zhang, X. Advancements in Energy-Storage Technologies: A Review of Current Developments and Applications. Sustainability 2025, 17, 8316. https://doi.org/10.3390/su17188316
Liu X, Li W, Guo X, Su B, Guo S, Jing Y, Zhang X. Advancements in Energy-Storage Technologies: A Review of Current Developments and Applications. Sustainability. 2025; 17(18):8316. https://doi.org/10.3390/su17188316
Chicago/Turabian StyleLiu, Xin, Wujing Li, Xiangyang Guo, Biao Su, Shuyu Guo, Yiran Jing, and Xi Zhang. 2025. "Advancements in Energy-Storage Technologies: A Review of Current Developments and Applications" Sustainability 17, no. 18: 8316. https://doi.org/10.3390/su17188316
APA StyleLiu, X., Li, W., Guo, X., Su, B., Guo, S., Jing, Y., & Zhang, X. (2025). Advancements in Energy-Storage Technologies: A Review of Current Developments and Applications. Sustainability, 17(18), 8316. https://doi.org/10.3390/su17188316