1. | EXECUTIVE SUMMARY |
1.1. | Key market conclusions (1) |
1.2. | Key market conclusions (2) |
1.3. | Key technology conclusions (1) |
1.4. | Key technology conclusions (2) |
1.5. | Thermal energy storage classification and long-term end-use cases |
1.6. | Thermal energy storage technology working principle |
1.7. | Summary of regional drivers and initiatives for thermal energy storage |
1.8. | Thermal energy storage applications map |
1.9. | Industrial heating processes shared across industries |
1.10. | Map for TES industrial heating applications by temperature |
1.11. | TES summary for decarbonizing industrial heating processes |
1.12. | Thermal energy storage value chain |
1.13. | Key suppliers and manufacturers for thermal energy storage media and materials |
1.14. | Thermal energy storage players overview |
1.15. | Global map of key thermal energy storage player's headquarters |
1.16. | Global map of thermal energy storage system installations (excluding CSP) |
1.17. | Funding received by player (US$M) |
1.18. | Thermal energy storage system manufacturing developments |
1.19. | Key TES players: Pros and cons |
1.20. | Existing and planned TES projects by industry / sector end-user |
1.21. | Cumulative capacity of TES systems by region |
1.22. | TES technologies by commercial readiness levels (CRL) |
1.23. | Thermal energy storage CRL and technology benchmarking for industrial applications |
1.24. | Sensible and latent heat storage media map |
1.25. | Electro-thermal / pumped thermal energy storage for long duration energy storage applications (1) |
1.26. | Electro-thermal / pumped thermal energy storage for long duration energy storage applications (2) |
1.27. | Thermal energy storage advantages and disadvantages |
1.28. | Thermochemical energy storage summary |
1.29. | Thermochemical energy storage classification |
1.30. | Prototypes of thermochemical energy storage systems |
1.31. | Materials for thermochemical storage outlook and map |
1.32. | Thermal energy storage annual installations forecast by region (GWh) 2020-2034 with commentary |
1.33. | Thermal energy storage annual installations forecast by technology (GWh) 2020-2034 with commentary |
1.34. | Thermal energy storage annual installations forecast by technology segment (GWh) 2020-2034 with commentary |
1.35. | Thermal energy storage installations forecast by application (GWh) 2020-2034 with commentary |
1.36. | Thermal energy storage annual installations forecast by value (US$B) 2020-2034 with commentary |
2. | INTRODUCTION TO THERMAL ENERGY STORAGE |
2.1. | Introduction to thermal energy storage |
2.2. | Introduction to thermal energy storage technologies (1) |
2.3. | Introduction to thermal energy storage technologies (2) |
3. | REGIONAL MARKET DRIVERS AND INITIATIVES FOR THERMAL ENERGY STORAGE |
3.1. | Summary of regional drivers and initiatives for thermal energy storage |
3.2. | TES competing with natural gas: Europe and US |
3.3. | TES competing with natural gas: Asia-Pacific |
3.4. | US Department of Energy Industrial Heat ShotTM Initiative |
3.5. | EU Emissions Trading System |
3.6. | Policy support for heating and cooling decarbonization in the EU |
3.7. | EU Innovation Fund for net-zero technologies |
3.8. | ARENA funding for decarbonization of industrial process heat in Australia |
3.9. | Japanese Green Innovation Project |
3.10. | Korea Emissions Trading Scheme and Green New Deal |
3.11. | China's role in decarbonizing power and industrial sectors |
4. | THERMAL ENERGY STORAGE APPLICATIONS |
4.1. | Existing Thermal Energy Storage Applications |
4.1.1. | Concentrated solar power with thermal energy storage (1) |
4.1.2. | Concentrated solar power with thermal energy storage (2) |
4.1.3. | District heating and cooling |
4.1.4. | Cold chains and buildings |
4.2. | Thermal Energy Storage Applications to Decarbonize Industrial Heating |
4.2.1. | Introduction to TES applications for decarbonizing industrial process heating |
4.2.2. | Industrial heat demand by operation |
4.2.3. | Industrial heat demand by temperature (1) |
4.2.4. | Industrial heat demand by temperature (2) |
4.2.5. | Calcination |
4.2.6. | Adhesive bonding and curing |
4.2.7. | Drying |
4.2.8. | Process fluid heating |
4.2.9. | Metals and glass heat treating |
4.2.10. | Melting for metals and glass |
4.2.11. | Steam and power generation / steam recovery |
4.2.12. | Industrial heating processes shared across industries |
4.2.13. | Map for TES industrial heating applications by temperature |
4.2.14. | TES for decarbonizing industrial heating processes summary table |
4.3. | Chemical Looping |
4.3.1. | Summary: Future application of chemical looping for thermal energy storage |
4.3.2. | Chemical looping combustion (CLC) |
4.3.3. | Chemical looping hydrogen (CLH) generation |
4.3.4. | Sorption-enhanced SMR (SE-SMR) |
4.3.5. | Chemical looping market developments |
4.3.6. | HyPER Project |
4.3.7. | ZEG Power |
4.3.8. | Babcock & Wilcox |
4.4. | Thermal Energy Storage for Long Duration Energy Storage |
4.4.1. | Electro-thermal / pumped thermal energy storage for long duration energy storage applications (1) |
4.4.2. | Electro-thermal / pumped thermal energy storage for long duration energy storage applications (2) |
4.4.3. | TES as a technology to support adiabatic CAES and LAES systems |
4.4.4. | CAES systems classification (1) |
4.4.5. | CAES systems classification (2) |
4.4.6. | Schematic of adiabatic LAES system with thermal energy storage |
4.4.7. | Further information on long duration energy storage |
5. | THERMAL ENERGY STORAGE MARKET OVERVIEW AND DATA ANALYSIS |
5.1. | TES Installations with Concentrated Solar Power |
5.1.1. | TES deployments with CSP projects 2008-2023 |
5.1.2. | Capacity of TES (MWh) with installed CSP plants by region |
5.1.3. | Capacity of TES (MWh) with planned CSP plants by country and project |
5.1.4. | List of concentrated solar power and thermal energy storage plants: Africa & Middle East |
5.1.5. | List of concentrated solar power and thermal energy storage plants: China |
5.1.6. | List of concentrated solar power and thermal energy storage plants: Europe & Americas |
5.1.7. | List of planned concentrated solar power and thermal energy storage plants |
5.2. | Industrial Thermal Energy Storage Market |
5.2.1. | Overview of TES for industrial and non-CSP applications |
5.2.2. | Thermal energy storage value chain |
5.2.3. | Strategic partnerships and supplier overview |
5.2.4. | Key suppliers and manufacturers for thermal energy storage media and materials |
5.2.5. | Heat as a Product and Heat as a Service |
5.2.6. | Thermal energy storage players overview |
5.2.7. | Global map of key thermal energy storage player's headquarters |
5.2.8. | Global map of thermal energy storage system installations (excluding CSP) |
5.2.9. | Existing and planned TES projects by industry / sector end-user |
5.2.10. | TES projects by commercial readiness timeline - prototypes, pilots, demonstrations, commercial-scale |
5.2.11. | TES technologies by commercial readiness levels (CRL) |
5.2.12. | Cumulative capacity of TES systems by region |
5.2.13. | Cumulative capacity of TES Systems by player |
5.2.14. | Funding received by player (US$M) |
5.2.15. | Thermal energy storage system manufacturing developments |
5.2.16. | Key TES players: Pros and cons |
5.2.17. | Thermal energy storage raw data overview |
5.2.18. | TES Installations Raw Data Table [Europe]: Capacity (MWh), location, TES technology, scale (commercial, pilot, etc), sector, project details |
5.2.19. | TES Installations Raw Data Table [United States]: Capacity (MWh), location, TES technology, scale (commercial, pilot, etc), sector, project details |
5.2.20. | TES Installations Raw Data Table [Australia]: Capacity (MWh), location, TES technology, scale (commercial, pilot, etc), sector, project details |
5.2.21. | TES Installations Raw Data Table [RoW]: Capacity (MWh), location, TES technology, scale (commercial, pilot, etc), sector, project details |
6. | THERMAL ENERGY STORAGE TECHNOLOGIES |
6.1. | Thermal Energy Storage Technologies Summary |
6.1.1. | Executive summary: Thermal energy storage technologies |
6.1.2. | Thermal energy storage CRL and technology benchmarking for industrial applications |
6.1.3. | Thermal energy storage working principles |
6.1.4. | TES system considerations (1) |
6.1.5. | TES system considerations (2) |
6.1.6. | TES system designs to provide heat at constant working parameters |
6.1.7. | Thermal energy storage applications |
6.1.8. | Types of thermal storage systems - latent and sensible heat, molten salt vs concrete |
6.1.9. | Molten salt vs concrete as a thermal storage medium |
6.1.10. | Sensible and latent heat storage media map |
6.2. | Thermal Energy Storage Technologies and Players: Sensible and Latent Heat |
6.2.1. | Key conclusions for sensible and latent heat TES technologies |
6.2.2. | EnergyNest thermal storage operating principle |
6.2.3. | EnergyNest ThermalBatteryTM specifications |
6.2.4. | EnergyNest commercial activity |
6.2.5. | Brenmiller bGen technology (1) |
6.2.6. | Brenmiller bGen technology (2) |
6.2.7. | Brenmiller bGen technology (3) |
6.2.8. | Brenmiller finances / commercial activity |
6.2.9. | Brenmiller projects |
6.2.10. | Azelio technology (1) |
6.2.11. | Stirling engine working principle |
6.2.12. | Azelio technology (2) |
6.2.13. | Azelio projects |
6.2.14. | Azelio financials, planned projects and bankruptcy |
6.2.15. | 1414 Degrees background and commercialization path |
6.2.16. | 1414 Degrees technology |
6.2.17. | Kyoto Group background and projects |
6.2.18. | Kyoto Group technology (1) |
6.2.19. | Kyoto Group technology (2) |
6.2.20. | Kraftblock |
6.2.21. | Antora Energy |
6.2.22. | Electrified Thermal Solutions market overview |
6.2.23. | Electrified Thermal Solutions technology |
6.2.24. | Rondo Energy technology |
6.2.25. | Rondo Energy commercial activity |
6.2.26. | Storworks Power |
6.2.27. | MGA Thermal |
6.2.28. | MGA Thermal project and manufacturing |
6.2.29. | Glaciem Cooling Technologies |
6.2.30. | Thermal energy storage key player activity in China |
6.3. | Electro-thermal Energy Storage |
6.3.1. | Electro-thermal energy storage background |
6.3.2. | Echogen Power Systems |
6.3.3. | Echogen Power Systems technology |
6.3.4. | Echogen Power Systems: System costs |
6.3.5. | Malta Inc |
6.3.6. | MAN Energy Solutions |
6.3.7. | Thermal energy storage advantages and disadvantages |
6.4. | Thermochemical Energy Storage |
6.4.1. | Executive Summary: Thermochemical energy storage |
6.4.2. | Introduction to thermochemical energy storage |
6.4.3. | Thermochemical energy storage classification |
6.4.4. | Thermochemical adsorption and absorption |
6.4.5. | Thermochemical sorption energy storage closed salt-water hydration process |
6.4.6. | Thermochemical sorption energy storage open salt-water hydration process |
6.4.7. | Thermochemical reaction energy storage (thermochemical energy storage without sorption) |
6.4.8. | Materials for thermochemical storage overview |
6.4.9. | Materials for thermochemical storage: Salt hydration |
6.4.10. | Materials for thermochemical storage: Metal halides and sulfates with ammonia |
6.4.11. | Materials for thermochemical storage: Metal oxide hydration |
6.4.12. | Materials for thermochemical storage: Metal oxide carbonation and redox reactions |
6.4.13. | Materials for thermochemical storage outlook and map |
6.4.14. | Prototypes of thermochemical energy storage systems |
6.4.15. | French Polynesia microgrid with hydrogen and cooling from TCES (1) |
6.4.16. | French Polynesia microgrid with hydrogen and cooling from TCES (2) |
6.4.17. | SaltX technology |
6.4.18. | TCSPower Project (chemical reaction energy storage) |
6.4.19. | Complexities of reactor / system design (1) |
6.4.20. | Complexities of reactor / system design (2) |
6.4.21. | Thermochemical energy storage advantages and disadvantages |
6.4.22. | Thermochemical energy storage conclusions |
7. | THERMAL ENERGY STORAGE MARKET FORECASTS 2024-2034 |
7.1. | Thermal energy storage forecasts key figures and headlines |
7.2. | Forecasts methodology and assumptions (1) |
7.3. | Forecasts methodology and assumptions (2) |
7.4. | Forecasts methodology and assumptions (3) |
7.5. | Forecasts methodology and assumptions (4) |
7.6. | Forecasts methodology and assumptions (5) |
7.7. | Forecasts methodology and assumptions (6) |
7.8. | Forecasts methodology and assumptions (7) |
7.9. | Thermal energy storage annual installations forecast by region (GWh) 2020-2034 with commentary |
7.10. | Thermal energy storage annual installations forecast by region (GWh) 2020-2034 |
7.11. | Thermal energy storage annual installations by data table by region (GWh) 2020-2034 |
7.12. | Thermal energy storage annual installations forecast by technology (GWh) 2020-2034 with commentary |
7.13. | Thermal energy storage annual installations forecast by technology (GWh) 2020-2034 |
7.14. | Thermal energy storage annual installations data table by technology (GWh) 2020-2034 |
7.15. | Thermal energy storage annual installations forecast by technology segment (GWh) 2020-2034 with commentary |
7.16. | Thermal energy storage annual installations data table by technology segment (GWh) 2020-2034 |
7.17. | Thermal energy storage installations forecast by application (GWh) 2020-2034 with commentary |
7.18. | Thermal energy storage installations forecast by application (GWh) 2020-2034 |
7.19. | Thermal energy storage annual installations data table by application (GWh) 2020-2034 |
7.20. | Thermal energy storage annual installations forecast by value (US$B) 2020-2034 with commentary |
7.21. | Thermal energy storage annual installations forecast by value (US$B) 2020-2034 |
7.22. | Thermal energy storage annual installations data table by value (US$B) 2020-2034 |
8. | COMPANY PROFILES |
8.1. | Links to company profiles |