Energy Storage in Urban Areas: The Role of Energy Storage Facilities, a Review
Abstract
:1. Introduction
2. Energy Storage in Urban Areas
2.1. Thermal Energy Storage
Technical Requirements for Applications
2.2. Electricity Storage (Electrical and Electrochemical Energy Storage)
Technical Requirements for Applications
2.3. Chemical Energy Storage
Technical Requirements for Applications
2.4. Other Types of Storage
Other Types of Storage Technologies Used in Urban Areas
3. Applications of Energy Storage Systems in Urban Areas
4. Experiences and Possible Solutions for Urban Areas
4.1. Energy Storage and Communities
4.2. Impact of Energy Storage on Urban Areas and Prosumers in Practice
4.3. Regulations and Costs
4.4. New Technologies and New Solutions
5. Discussion and Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Abbreviations
BES | Battery energy storage |
BESS | Battery Energy Storage Systems |
BTM | Behind-the-meter |
CAES | Compressed Air Energy Storage |
CBM | Collaborative Business Model |
CES | Community energy storage |
CSP | Concentrated Solar Power |
DES | Distributed Energy Storage |
DNO | Distribution Network Operators |
DSO | Consumer as the Distribution System Operator |
ECB | Electrochemical Battery |
ECES | Electrochemical Energy Storage |
EE | Electrical Energy |
ESA | Energy Storage Association |
ESS | Energy Storage System |
FTM | Front-of-the-meter |
GHG | Greenhouse Gases |
HS | Heat Storage |
HVAC | Heating, ventilation, air-conditioning, and cooling |
ICT | Information and communication technologies |
IES | Integrated energy system |
IoT | Internet of Things |
IRP | Integrated resource plans |
LC | Life Cycle |
LCC | Life Cycle Cost |
LPG | Liquefied petroleum gas |
NaS | Sodium Sulfide |
NBS | Neighborhood battery system |
NPC | Net Present Cost |
NPV | Net Present Value |
ORC | Organic Rankine Cycle |
PBP | Payback Period |
PCM | Phase Change Material |
PED | Positive Energy Districts |
PEM | Polymer Electrolyte Membrane |
PHS | Pumped Hydro Storage |
PLC | Programmable Logic Controller |
PV | Photovoltaic |
RES | Renewable Energy Sources |
SAT | Storage-as-transmission |
SNG | Synthetic Natural Gas |
SWOT | Strengths, Weaknesses, Opportunities, and Threats |
T&D | Transmission and distribution |
TES | Thermal Energy Storage |
UPS | Uninterruptible power supply |
VPP | Virtual power plant |
ZEBRA | Type of rechargeable molten salt battery based on commonly available materials—primarily nickel metal and sodium and chloride. |
Appendix A
Location | Number of Plants with Technology | Rated Power [kW] |
---|---|---|
Greece | 4 plants with electromechanical 1 plant ECB and CS | 1,429,000 800 |
Bulgaria | 3 plants with electromechanical | 1,052,000 |
Serbia | 1 plant with electromechanical | 614,000 |
Bosnia and Herzegovina | 1 plant with electromechanical | 420,000 |
Croatia | 3 plants with electromechanical | 281,740 |
Slovenia | 1 electromechanical 1 plant ECB and CS | 185,000 10 |
Romania | 2 plants with electromechanical | 53,300 |
Hungary | 1 plant ECB and CS | 500 |
Russia | 5 plants with electromechanical 3 plants ECB and CS | 2,225,900 3025 |
Ukraine | 3 plants with electromechanical | 3,173,000 |
Slovakia | 4 plants with electromechanical | 1,017,160 |
Czechia | 4 plants with electromechanical 1 plant flywheel 1 plant ECB and CS | 1,145,000 70,000 40 |
Austria | 18 plants with electromechanical 1 plant ECB and CS | 4,680,000 64 |
Italy | 19 plants with electromechanical 39 plants ECB and CS 2 plants thermal storage | 7,642,700 85,247 5120 |
Spain | 22 plants with electromechanical 17 plants ECB and CS 26 plants thermal storage 1 electrochemical (under construction) | 7,997,700 9066 1,131,100 159,300 |
Belgium | 2 plants with electromechanical | 1,307,000 |
Denmark | 1 plant with electromechanical 4 plants ECB and CS | 6 2865 |
Finland | 2 plants ECB and CS | 3200 |
France | 12 plants with electromechanical 13 plants ECB and CS 2 plants thermal storage | 5,894,100 14,702 21,000 |
Germany | 31 plants with electromechanical 63 plants ECB and CS 1 plant thermal-storage 3 Chemical storage (under construction) | 6,978,840 295,344 1500 250,000 |
Ireland | 3 plants with electromechanical 5 plants ECB and CS 1 plant thermal-storage 2 electrochemical (under construction) | 293,820 1547 4560 200,000 |
Lithuania | 1 plant with electromechanical | 900,000 |
Luxembourg | 1 plant with electromechanical | 1,096,000 |
Netherlands | 2 plants with electromechanical 24 plants ECB and CS | 6000 22,090 |
Poland | 5 plants with electromechanical | 1,654,800 |
Portugal | 12 plants with electromechanical 2 plants ECB and CS | 3,546,600 6005 |
Sweden | 1 plant ECB and CS 1 plant thermal-storage | 75 10,000 |
Switzerland | 16 plants with electromechanical 7 plants ECB and CS | 6,372,000 2085 |
United Kingdom | 6 plants with electromechanical 29 plants ECB and CS 3 plants thermal storage | 3,558,000 47,088 6750 |
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Heat Storage | Electricity Storage | Chemical Storage | Mechanical Storage | |
---|---|---|---|---|
Energy density | Aluminum = 2484 [kJ/m3 °C] Brick = 1813 [kJ/m3 °C] Cast Iron = 3889 [kJ/m3 °C] Concrete = 2122 [kJ/m3 °C] Water = 4190 [kJ/m3 °C] Depends on filling material [69] | 2540 MJ/m3 [70] | 130 MJ/kg (1330 MJ/m3) Hydrogen [71] 26.8 MJ/L bioethanol [72] | Depends on plant performances |
Power density | Sensible: 25 PCM: 100 [kWh/m3] Chemical: 300 [kWh/m3] [73] | Max. 560 Wh/kg (LiM) [74] | 0.56–3.18 kWh/L (0.58–3.33 kWh/kg) [71] | Depends on plant performances |
Storage durability | Depends on the temperature of storage (temperature difference with outside temperature) Short-term Sensible—days PCM—hours Chemical—hours [73] | Depends on technology (from few days to few months) | Infinite (stable chemical compound) | Long-term (depends on evaporation, leakage, etc.) |
Efficiency [%] | Sensible: 50–90% PCM: 75–90 Chemical: 75–100% [73] | <70 [31] | 99% | Max. 70–85% [75] |
Costs | Sensible: 0.1–10 PCM: 10–50 Chemical: 8–100 [73] | 250–1500 (approx. 400) [31] | 0.030 liquefied hydrogen (approx. 6 $/kWh), metal hydride (approx. 8–16 $/kWh) [57] | Depends on country |
Regulations/ Regulations/limits | Building codes and safety regulations [39], complex landscape regulations. Many laws and regulations need to be made. | The most detailed regulations. Many obligations for all parts of the system. But still, regulations should be changed on time due to the rapid development of electricity storage technologies. The main regulations are given by EU directives [42] and US government [45] in corresponding regions. Country and local regulations need to be declared equally, everywhere. Great differences between community regulations even in the same country. | “EU strategy on Hydrogen” (COM/2020/301) [65]. The favorable chemical energy source and storage is hydrogen. Other chemical storage materials are prohibited or there are no regulations for them in urban areas. | There is complete coverage by regulations due to the use of the oldest way of storage. |
Technical requirements | High volume requirement. In many cases storage is underground tanks or caves. | Many different devices can be required. The problem is the ownership of devices and land. Mostly available for all stakeholders. | High volume of storage for gases (hydrogen). All materials are explosive and must have fire control systems. Fuel cells are promising, but they have high prices. | CAES requires underground space (caves) [15]. |
Environmental impact | Landscape change or underground works. Use of dangerous PCM. | Appropriate LCA of batteries can minimize the footprint. Risks of leakage of various toxic materials, dangerous metals. | Hydrogen practically has no impact on the environment. All others can be toxic. | PHS changes the landscape, nature and environment [15]. |
Operation safety and risks | In rare cases there is toxicity. Most applications are safe. High-pressure and mid-range temperatures are the main concern. | Operation with electricity storage can face battery degradation and fire risk [50]. All systems have good control systems. | Fire and explosive safety measurements are required. | Minimal risks |
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Anastasovski, A.; Andreucci, M.B.; Kádár, J.; Delli Paoli, M. Energy Storage in Urban Areas: The Role of Energy Storage Facilities, a Review. Energies 2024, 17, 1117. https://doi.org/10.3390/en17051117
Anastasovski A, Andreucci MB, Kádár J, Delli Paoli M. Energy Storage in Urban Areas: The Role of Energy Storage Facilities, a Review. Energies. 2024; 17(5):1117. https://doi.org/10.3390/en17051117
Chicago/Turabian StyleAnastasovski, Aleksandar, Maria Beatrice Andreucci, József Kádár, and Marco Delli Paoli. 2024. "Energy Storage in Urban Areas: The Role of Energy Storage Facilities, a Review" Energies 17, no. 5: 1117. https://doi.org/10.3390/en17051117
APA StyleAnastasovski, A., Andreucci, M. B., Kádár, J., & Delli Paoli, M. (2024). Energy Storage in Urban Areas: The Role of Energy Storage Facilities, a Review. Energies, 17(5), 1117. https://doi.org/10.3390/en17051117