Environmental Assessment of Latent Heat Thermal Energy Storage Technology System with Phase Change Material for Domestic Heating Applications
Abstract
:1. Introduction
2. Methods
2.1. Goal and Scope
- Production of materials:
- ∘
- Phase change material mixture: SAT (which is the PCM) and Carboxymethyl Cellulose (CMC, thickening agent);
- ∘
- Evacuated tube solar collector, which includes glass, copper, propylene glycol, and stone wool;
- ∘
- Water and PCM storage tanks, made of foam and steel;
- ∘
- Stainless steel (used in the hot water tank, the PCM storage tanks, heat exchanger, and pumps)
- ∘
- Other materials: rubber (used in solar collectors), butyl acrylate (used in expansion vessels) and cast iron, aluminium, and polyvinylchloride (all used in pumps).
- Manufacturing of:
- ∘
- Hot water tanks, PCM tanks, solar collectors, PCM, piping, pumps, expansion vessels, heat exchangers, valves, stratifier, and the crystallization activation device. On the other hand, the hydronic circuits with the radiators and taps/showers were not included because they are not part of the S-LHTES-PCM system per se and are components that a typical UK household already has.
- Use:
- ∘
- Electricity consumption of the pumps to circulate the water.
- End of life:
- ∘
- Disposal of components after they have reached their life expectancy.
- Distribution:
- ∘
- Transport of all the components from production to the household in the UK and to the treatment plant at the end of life.
2.2. Inventory Data
2.2.1. Raw Materials
2.2.2. Production
2.2.3. Use
2.2.4. Transport
2.2.5. End of Life
2.3. Sensitivity Analysis
2.4. Comparison with Current Sources of Heat in the UK
2.5. Impact Assessment
3. Results
3.1. Life Cycle Assessment
3.2. Sensitivity Analysis: Lifetime Extension
3.3. Comparison with Natural Gas, Biomass and Heat Pumps
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Acronyms
ABS | Acrylonitrile butadiene styrene |
ALOP | Agricultural land occupation potential |
BIPV | Building integrated photovoltaic |
BIPVT | Building integrated photovoltaic/thermal |
CED | Cumulative energy demand |
CMC | Carboxymethyl cellulose |
EPDM | Ethylene propylene diene monomer |
FDP | Fossil depletion potential |
FEP | Freshwater eutrophication potential |
FETP | Freshwater ecotoxicity potential |
FU | Functional unit |
GWP | Global warming potential |
HTPc | Human carcinogenic toxicity potential |
HTPnc | Human non-carcinogenic toxicity potential |
IRP | Ionizing radiation potential |
LCA | Life cycle assessment |
LHTES | Latent heat thermal energy storage |
MDI | Methylene diphenyl diisocyanate |
MDP | Mineral depletion potential |
MEP | Marine eutrophication potential |
ODP | Stratospheric ozone depletion potential |
OFPh | Ozone formation potential human health |
OFPt | Ozone formation potential terrestrial ecosystems |
PCM | Phase change material |
PMP | Fine particulate matter formation potential |
SAT | Sodium acetate trihydrate |
SHS | Sensible heat storage |
S-LHTES | Solar power latent heat thermal energy storage |
S-LHTES-PCM | Solar power latent heat thermal energy storage with phase change material |
TAP | Terrestrial acidification potential |
TEP | Terrestrial ecotoxicity potential |
TES | Thermal energy storage |
THS | Thermochemical heat storage |
WDP | Water consumption potential |
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Component | Lifetime | Reference |
---|---|---|
Phase change material | 10 years | [26] |
Heat exchanger | 30 years | [27] |
Inner tank | 25 years | [28] |
Solar collector | 20 years | [21] |
Heat transfer fluid | 3 years | [23] |
Water pump | 5 years | [24] |
Expansion vessels | 15 years | [29] |
Piping | Copper 40 years | [30] |
Steel 40 years | ||
Valves | 40 years | [31] |
Life Cycle Stage | S-LHTES-PCM | Reference |
---|---|---|
Raw materials | ||
Sodium acetate trihydrate (PCM) (g) | 41.8 | [10,11,32] |
Carboxymethyl cellulose (PCM) (g) | 0.4 | |
Stainless steel (hot water tank, PCM tanks, heat exchanger, solar collector, and pumps) (g) | 12.7 | [21,22,24,28,32,33] |
Glass tube (solar collector) (g) | 7.6 | [21,24] |
Foam (hot water tank, PCM-tanks) (g) | 5.8 | [20] |
Carbon steel (hot water tank, piping, heat exchanger, expansion vessel, and valves) (g) | 19.6 | [22,24,28,32] |
Copper (solar collector, piping, and pumps) (g) | 1.5 | [21,24] |
Propylene glycol (solar collector) (g) | 2 | [23] |
Stone wool (solar collector) (g) | 1.1 | [21,24] |
Other materials (solar collector, expansion vessel, and pumps) (g) a | 0.9 | [21,24] |
Production | ||
Electricity (all elements) (kJ) | 99.7 | [13,24,34] |
Heat (all elements) (kJ) | 29 | |
Transport | ||
Freight lorry (all elements) (kg·km) | 2.1 | [24] |
Freight train (all elements) (kg·km) | 0.02 | |
Use | ||
Electricity Consumption (kJ) | 12.9 | [32] |
End of Life | ||
Recycling: Plastics (g) | 1.8 | [35] |
Recycling: Metals (g) | 27 | [36,37] |
Incineration with energy recovery: Plastics (g) | 3.4 | [35] |
Incineration with energy recovery: PCM (g) | 42.2 | [13] |
Incineration with energy recovery: Stone wool (g) | 0.7 | [38] |
Landfilling: Plastics (g) | 1.3 | [35] |
Landfilling: Glass (g) | 7.6 | [39] |
Landfilling: Metals (g) | 5.1 | [36,37] |
Landfilling: Stone wool (g) | 0.4 | [38] |
Wastewater treatment (l) | 0.005 | [24] |
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Chocontá Bernal, D.; Muñoz, E.; Manente, G.; Sciacovelli, A.; Ameli, H.; Gallego-Schmid, A. Environmental Assessment of Latent Heat Thermal Energy Storage Technology System with Phase Change Material for Domestic Heating Applications. Sustainability 2021, 13, 11265. https://doi.org/10.3390/su132011265
Chocontá Bernal D, Muñoz E, Manente G, Sciacovelli A, Ameli H, Gallego-Schmid A. Environmental Assessment of Latent Heat Thermal Energy Storage Technology System with Phase Change Material for Domestic Heating Applications. Sustainability. 2021; 13(20):11265. https://doi.org/10.3390/su132011265
Chicago/Turabian StyleChocontá Bernal, Daniel, Edmundo Muñoz, Giovanni Manente, Adriano Sciacovelli, Hossein Ameli, and Alejandro Gallego-Schmid. 2021. "Environmental Assessment of Latent Heat Thermal Energy Storage Technology System with Phase Change Material for Domestic Heating Applications" Sustainability 13, no. 20: 11265. https://doi.org/10.3390/su132011265
APA StyleChocontá Bernal, D., Muñoz, E., Manente, G., Sciacovelli, A., Ameli, H., & Gallego-Schmid, A. (2021). Environmental Assessment of Latent Heat Thermal Energy Storage Technology System with Phase Change Material for Domestic Heating Applications. Sustainability, 13(20), 11265. https://doi.org/10.3390/su132011265