Numerical and Experimental Analysis of a Low-GWP Heat Pump Coupled to Electrical and Thermal Energy Storage to Increase the Share of Renewables across Europe
Abstract
:1. Introduction
Paper Positioning and Methodology
2. Experimental Activity
2.1. The Investigated System
2.2. Description of Testing Rig
2.3. Testing Procedure
- All electrical circuits are turned on. Pumps for the circulation of heat transfer fluid (HTF) in the condenser and evaporator reach the desired speeds, while the desired temperature for the condenser and evaporator inlet is set.
- The compressor is turned on and its speed is controlled from a control panel realized in LabVIEW. Superheating is set to 6 K.
- The test is started with a data acquisition rate of 1 s. Once a steady state is achieved, at least 1000 s of acquisition time for each condition is recorded. All values from the sensors are stored in a Notepad file.
2.4. Data Analysis
3. Modeling Activity
3.1. Model Description
3.2. Main Assumptions and Methodology
3.3. Thermal Sub-System Model
3.4. Electric Sub-System Model
4. Reversible HP Model Validation
5. Results and Discussion
5.1. Results of Energy Analysis
5.1.1. Electricity Consumption
5.1.2. The Role of Energy Storage
5.1.3. Self-Sufficiency and Energy Exchange with the Grid
5.2. Economic Analysis
5.2.1. Main Assumptions
5.2.2. Energy Policies and Subsidies for HP
- Working under a “feed-in-tariff” model, where all generated electricity, such as that from a PV system, is supplied to the grid.
- Installing an autonomous off-grid system with storage batteries (e.g., utilizing PVs, wind turbines, etc.) that is independent of the grid, where all the energy from the RES is consumed.
- Installing a renewable energy system that consumes as much energy as it produces, while remaining connected to the grid. When the energy demand is higher than the produced amount, energy is drawn from the grid. This is the concept of net metering.
Greece
Germany
France
5.2.3. Main Results
5.2.4. Levelized Cost of Electricity
6. Conclusions and Future Perspectives
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Acronyms
European Union | EU |
heating, ventilation, and air-conditioning | HVAC |
global warming potential | GWP |
nearly zero-energy buildings | nZEB |
renewable energy sources | RES |
seasonal coefficient of performance | SCOP |
self-sufficiency index | SSI |
heat pump | HP |
levelized cost of energy | LCOE |
high temperature | HT |
low temperature | LT |
medium temperature | MT |
heat transfer fluid | HTF |
logarithmic mean temperature difference | LMTD |
energy efficiency ratio | EER |
functional mock-up interface | FMI |
maximum power point tracker | MPPT |
open circuit voltage | OCV |
state of charge | SoC |
Appendix A
Appendix A.1. Thermal Sub-System Model Components
Appendix A.1.1. Condenser and Evaporator
Heat Exchangers (HX) | |
---|---|
Type | Plate Heat Exchanger |
UA Condenser (W/K) | 7132 |
UA Evaporator (W/K) | 11,379 |
Condenser heat transfer area (m2) | 1.06 |
Evaporator heat transfer area (m2) | 1.18 |
Refrigerant | R1234ze(E) |
Heat transfer fluid | Water |
Appendix A.1.2. Compressor
Appendix A.1.3. Expansion Valve
Appendix A.1.4. Liquid Separator
Appendix A.1.5. Thermal Energy Storage Tank
Appendix A.2. Thermal Sub-System Control and Management
Appendix A.2.1. Heater Control
Appendix A.2.2. Expansion Valve Control
Appendix A.2.3. HTF Mass Flow Control
Appendix A.3. Electric Sub-System Model Components
PV and Auxiliaries
Electrical Properties (STC) | |
---|---|
Power Output (W) | 300 |
Cells | 6 × 10 |
Cell vendor | LG |
Cell type | Monocrystalline/N-type |
MPP voltage (Vmpp) (V) | 32.2 |
MPP current (Impp) (A) | 9.34 |
Open circuit voltage (V) | 39.8 |
Short circuit current (A) | 9.9 |
Module efficiency (%) | 18.3 |
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Component | Model | Specifications |
---|---|---|
Compressor | Copeland ZB29KCE-TFD | 3-phase, 400 VAC, 2.2 kW, 16 A circuit breaker 2940 rpm @ 50 Hz |
Expansion valve | Carel E2V24ZWF | Kv = 0.20 m3/h |
Expansion valve controller | Carel EVD evolution Universal-Modbus | Modbus communication for superheating, pressure, and temperature measurements Automatic or manual (with 4–20 mA signal) control Regulation start/stop capability Manually full opening capability Alarm signal |
Compressor drive | ABB ACS355 4 kW | Remote start/stop 4–20 mA signal for speed modulation |
Condenser | Alfa Laval AC30EQ | Brazed plate heat exchanger 36 plates |
Evaporator | Alfa Laval AC30EQ | Brazed plate heat exchanger 40 plates |
Experimental Conditions | ||||||||||||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
Compressor speed (RPM) | 1500 | 2100 | 2400 | 2800 | ||||||||||||||||
Condenser inlet temperature (°C) | 26 | 29 | 32 | 35 | 40 | 26 | 29 | 32 | 35 | 40 | 26 | 29 | 32 | 35 | 40 | 26 | 29 | 32 | 35 | 40 |
Module Electrical Characteristics | |
---|---|
Nominal voltage (V) | 27.6 |
Rated capacity (Ah) | 45 |
Rated energy (kWh) | 1.2 |
Upper cut-off voltage (V) | 32.4 |
Lower cut-off voltage (V) | 18 |
Nominal current (A) | 45 |
Cities | PV Power (kW) | |||||
---|---|---|---|---|---|---|
3 | 4.5 | 6 | ||||
Athens | PV production (kWh) | |||||
4435 | 6653 | 8870 | ||||
To grid * | From grid | To grid | From grid | To grid | From grid | |
1532 | 4753 | 3379 | 4403 | 5408 | 4176 | |
Marseille | PV production (kWh) | |||||
4352 | 6258 | 8704 | ||||
To grid | From grid | To grid | From grid | To grid | From grid | |
1751 | 6783 | 3587 | 6443 | 5549 | 6235 | |
Stuttgart | PV production (kWh) | |||||
2996 | 4494 | 5992 | ||||
To grid | From grid | To grid | From grid | To grid | From grid | |
1251 | 9064 | 2362 | 8677 | 3577 | 8394 |
Components | Specifications | Price per Item | Total Cost (EUR) |
---|---|---|---|
Reversible HP | 10 kW | --- | 7000 |
15 kW | --- | 8000 | |
Storage tank | 700 L | --- | 1454 [40] |
900 L | --- | 1570 [40] | |
Electric heater | 3 kW | --- | 7 [41] |
5 kW | --- | 10 [41] | |
Solar PV panels | 3 kW | 268 [42] | 2680 |
4.5 kW | 4020 | ||
6 kW | 5360 | ||
Batteries | 5 kWh | 1400/kWh [43] | 7000 |
10 kWh | 14,000 | ||
15 kWh | 21,000 | ||
Dry cooler | 15 kW | --- | 1500 |
Gas boiler | 15 kW | --- | 1219 [44] |
24 kW | --- | 1433 [45] | |
Split AC | 3 kW | 657 [46] | 1970 |
Cities | Electricity Prices (EUR/kWh) | Gas Prices (EUR/kWh) |
---|---|---|
Athens | 0.2305 | 0.0888 |
Marseille | 0.2086 | 0.085 |
Stuttgart | 0.3279 | 0.0806 |
Cities | PV Power (kW) | |||
---|---|---|---|---|
3 | 4.5 | 6 | ||
Athens | Capital cost (EUR) | 21,605 | 23,079 | 24,553 |
Subsidy (EUR) | 6112 | |||
Discounted payback time (y) | 3.8 | 3.8 | 3.9 | |
Marseille | Capital cost (EUR) | 21,608 | 23,082 | 24,556 |
Subsidy (EUR) | 4000 | |||
Discounted payback time (y) | 5.8 | 6.1 | 6.6 | |
Stuttgart | Capital cost (EUR) | 24,166 | 25,640 | 27,114 |
Subsidy (EUR) | 2800 | |||
Discounted payback time (y) | 8.1 | 8.9 | 9.9 |
Cities | PV Power (kW) | |||
---|---|---|---|---|
3 | 4.5 | 6 | ||
Athens | Capital cost | 6084 | 7424 | 8764 |
Discounted payback time (years) | 7.5 | 8.7 | 9.9 | |
Marseille | Capital cost | 6084 | 7424 | 8764 |
Discounted payback time (years) | 8.7 | 10.3 | 11.8 | |
Stuttgart | Capital cost | 6084 | 7424 | 8764 |
Discounted payback time (years) | 7.9 | 9.2 | 10.5 |
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Rehman, O.A.; Palomba, V.; Frazzica, A.; Charalampidis, A.; Karellas, S.; Cabeza, L.F. Numerical and Experimental Analysis of a Low-GWP Heat Pump Coupled to Electrical and Thermal Energy Storage to Increase the Share of Renewables across Europe. Sustainability 2023, 15, 4973. https://doi.org/10.3390/su15064973
Rehman OA, Palomba V, Frazzica A, Charalampidis A, Karellas S, Cabeza LF. Numerical and Experimental Analysis of a Low-GWP Heat Pump Coupled to Electrical and Thermal Energy Storage to Increase the Share of Renewables across Europe. Sustainability. 2023; 15(6):4973. https://doi.org/10.3390/su15064973
Chicago/Turabian StyleRehman, Omais Abdur, Valeria Palomba, Andrea Frazzica, Antonios Charalampidis, Sotirios Karellas, and Luisa F. Cabeza. 2023. "Numerical and Experimental Analysis of a Low-GWP Heat Pump Coupled to Electrical and Thermal Energy Storage to Increase the Share of Renewables across Europe" Sustainability 15, no. 6: 4973. https://doi.org/10.3390/su15064973
APA StyleRehman, O. A., Palomba, V., Frazzica, A., Charalampidis, A., Karellas, S., & Cabeza, L. F. (2023). Numerical and Experimental Analysis of a Low-GWP Heat Pump Coupled to Electrical and Thermal Energy Storage to Increase the Share of Renewables across Europe. Sustainability, 15(6), 4973. https://doi.org/10.3390/su15064973