An Adsorption-Compression Cold Thermal Energy Storage System (ACCESS)
Lead Research Organisation:
University of Liverpool
Department Name: Mechanical and Aerospace Engineering
Abstract
The cooling sector currently consumes around 14% of the UK's electricity and emits around 10% of the UK's greenhouse gases. Global electricity demand for space cooling alone is forecast to triple by 2050. Moreover, as air temperature increases, the cooling demand increases, but a refrigerator's Coefficient of Performance decreases. This results in a time mismatch between a refrigerator's efficient operation and peak cooling demand over a day. Clearly, this problem will deteriorate over the coming decades. Indeed, research by UKERC recently reported that cooling sector will cause a 7 GW peak power demand to the grid by 2050 in the UK.
A solution is to employ cold thermal energy storage, which allows much more flexible refrigeration operation, thereby resulting in improved refrigeration efficiency and reduced peak power demand. Large-scale deployment of cold thermal energy storage could dramatically reduce this peak demand, mitigating its impact to the grid. Moreover, the UK curtails large amounts of wind power due to network constraints. For example, over 3.6TWh of wind energy in total was curtailed on 75% of days in 2020. Therefore, through flattening energy demand, cold thermal energy storage technology provides a means to use off-peak wind power to charge cold thermal energy storage for peak daytime cooling demand.
This project, based on the proposed novel adsorption-compression thermodynamic cycle, aims to develop an innovative hybrid technology for both refrigeration and cold thermal energy storage at sub-zero temperatures. The resultant cold thermal energy storage system is fully integrated within the refrigerator and potentially has significantly higher power density and energy density than current technologies, providing a disruptive new solution for large scale cold thermal energy storage. The developed technology can utilise off-peak or curtailed electricity to shave the peak power demand of large refrigeration plants and district cooling networks, and thus mitigates the impacts of the cooling sector on the grid and also reduces operational costs.
A solution is to employ cold thermal energy storage, which allows much more flexible refrigeration operation, thereby resulting in improved refrigeration efficiency and reduced peak power demand. Large-scale deployment of cold thermal energy storage could dramatically reduce this peak demand, mitigating its impact to the grid. Moreover, the UK curtails large amounts of wind power due to network constraints. For example, over 3.6TWh of wind energy in total was curtailed on 75% of days in 2020. Therefore, through flattening energy demand, cold thermal energy storage technology provides a means to use off-peak wind power to charge cold thermal energy storage for peak daytime cooling demand.
This project, based on the proposed novel adsorption-compression thermodynamic cycle, aims to develop an innovative hybrid technology for both refrigeration and cold thermal energy storage at sub-zero temperatures. The resultant cold thermal energy storage system is fully integrated within the refrigerator and potentially has significantly higher power density and energy density than current technologies, providing a disruptive new solution for large scale cold thermal energy storage. The developed technology can utilise off-peak or curtailed electricity to shave the peak power demand of large refrigeration plants and district cooling networks, and thus mitigates the impacts of the cooling sector on the grid and also reduces operational costs.
Organisations
- University of Liverpool (Lead Research Organisation)
- University of Salford (Collaboration)
- CITY OF EDINBURGH COUNCIL (Collaboration)
- University College London (Collaboration)
- FEI Company (Collaboration)
- Heriot-Watt University (Collaboration)
- Morgan Advanced Materials (Collaboration)
- Star Refrigeration Ltd (Project Partner)
- UK-China (Guangdong) CCUS Centre (Project Partner)
- Scottish Power Energy Networks (SPEN) (Project Partner)
- Carbon Clean Solutions Limited (UK) (Project Partner)
- UNIVERSITY OF EDINBURGH (Project Partner)
- FeTu Ltd (Project Partner)
Publications
Yue Z
(2024)
Engineered Half-Unit-Cell MoS2/ZnIn2S4 Monolayer Photocatalysts and Adsorbed Hydroxyl Radicals-Assisted Activation of Ca-H Bond for Efficient Cß-O Bond Cleavage in Lignin to Aromatic Monomers.
in ACS applied materials & interfaces
Yue Z
(2024)
Improved Lignin Conversion to High-Value Aromatic Monomers through Phase Junction CdS with Coexposed Hexagonal (100) and Cubic (220) Facets.
in ACS applied materials & interfaces
Afify N
(2025)
Monte Carlo simulation of ammonia adsorption in nanoporous carbon: Optimal pore sizes for adsorption refrigeration applications
in Adsorption Science & Technology
Ouderji Z
(2025)
A quasi-two-stage trans-critical CO2 heat pump with in-cycle thermal storage for performance enhancement
in Applied Thermal Engineering
Alanazy E
(2026)
Mitigating high return water temperatures in CO2 heat pumps for legacy district heating networks
in Applied Thermal Engineering
Shao S
(2025)
A mini review on photocatalytic lignin conversion into monomeric aromatic compounds
in Catalysis Science & Technology
Shao S
(2024)
Photocatalytic conversion of lignin into aromatic monomers with adsorbents of radical species from water dissociation
in Chem Catalysis
Yang L
(2025)
Synergistic effects of salt and MIL-101(Cr) in composites: Unravelling the moisture pump-reservoir mechanism for efficient atmospheric water harvesting
in Chemical Engineering Journal
Wei W
(2025)
Towards efficient sorption-based heat harvesting via hierarchical pore structures tailored by novel salt-porous composites
in Chemical Engineering Journal
Related Projects
| Project Reference | Relationship | Related To | Start | End | Award Value |
|---|---|---|---|---|---|
| EP/W027593/1 | 09/01/2023 | 31/12/2023 | £1,022,621 | ||
| EP/W027593/2 | Transfer | EP/W027593/1 | 01/01/2024 | 08/01/2026 | £748,533 |
| Description | It is found that the desorption pressure in the adsorption bed plays a key role in achieving the power saving benefits of the proposed vapour compression-adsorption system. If the desorption pressure is higher than the evaporation pressure in evaporator, the charging mode during off-peak time has higher COP than the standard VCR system, leading to power saving. The electric power consumption and operating costs were evaluated and compared with those of the standard VCR system. The analysis revealed a 3% reduction in electric power consumption and a 5.8% reduction in electricity costs. If incentive tariffs are available for off-peak time, the proposed system could potentially shave and shift some of the peak power demand to off-peak time and thus reduce operation costs. If waste heat sources are available to enhance the desorption during charging mode, the operational costs of the hybrid system could be further reduced. |
| Exploitation Route | further academic research would be required to further develop and demonstrate this technology. |
| Sectors | Energy |
| Description | Flexible Heat Pump Technology - from Concept to Applications |
| Amount | £180,255 (GBP) |
| Funding ID | IF\R1\231053 |
| Organisation | The Royal Society |
| Sector | Charity/Non Profit |
| Country | United Kingdom |
| Start | 01/2024 |
| End | 12/2027 |
| Description | Collaboration with Dr Massimiliano Materazzi |
| Organisation | University College London |
| Country | United Kingdom |
| Sector | Academic/University |
| PI Contribution | Collaborative grant application - Sustainable Open-loop Large-scale Interseasonal Thermochemical Heat Storage (SOLIS) |
| Collaborator Contribution | led a WP for project - Sustainable Open-loop Large-scale Interseasonal Thermochemical Heat Storage (SOLIS) |
| Impact | successful grant - Sustainable Open-loop Large-scale Interseasonal Thermochemical Heat Storage (SOLIS) |
| Start Year | 2026 |
| Description | Collaboration with Prof Bing Sue |
| Organisation | Heriot-Watt University |
| Country | United Kingdom |
| Sector | Academic/University |
| PI Contribution | Successful Joint Grant Application - Sustainable Open-loop Large-scale Interseasonal Thermochemical Heat Storage (SOLIS) |
| Collaborator Contribution | n/a |
| Impact | Successful Joint Grant Application - Sustainable Open-loop Large-scale Interseasonal Thermochemical Heat Storage (SOLIS) |
| Start Year | 2024 |
| Description | collaborate with Vattenfall (United Kingdom) |
| Organisation | FEI company |
| Department | FEI United Kingdom |
| Country | United Kingdom |
| Sector | Private |
| PI Contribution | supported a successful application- SOLIS project |
| Collaborator Contribution | no |
| Impact | no |
| Start Year | 2026 |
| Description | collaboration with Edinburgh City Council |
| Organisation | City of Edinburgh Council |
| Country | United Kingdom |
| Sector | Public |
| PI Contribution | no |
| Collaborator Contribution | supported a successful grant application- SOLIS project |
| Impact | no |
| Start Year | 2026 |
| Description | collaboration with Morgan Advanced Materials |
| Organisation | Morgan Advanced Materials |
| Country | United Kingdom |
| Sector | Private |
| PI Contribution | no |
| Collaborator Contribution | supported a successful grant application - SOLIS project |
| Impact | no |
| Start Year | 2026 |
| Description | collaboration with Professor Will Swain at Salford University |
| Organisation | University of Salford |
| Country | United Kingdom |
| Sector | Academic/University |
| PI Contribution | Collaborate with Prof Will Swain to develop and submit a grant application to EPSRC for developing and demonstrating the flexible heat pump technology using CO2 as working fluids |
| Collaborator Contribution | Energy House facility and their expertise in testing heat pumps |
| Impact | awaiting for the final decision |
| Start Year | 2024 |
