Challenges for the Transition to Low-Temperature Heat in the UK: A Review
Abstract
:1. Introduction
2. Sizing and Oversizing of Heating System
2.1. Sizing of Heating Systems
2.1.1. Design Conditions
2.1.2. Intermittent vs. Continuous Heating
2.2. Oversizing of Heating Systems
2.2.1. Definitions
2.2.2. Drawbacks
- Overheating and comfort
- Efficiency of hydraulic controls
- Valve hunting, cycling and boiler corrosion
- Capital investment and operating cost
2.2.3. Origins
2.2.4. Magnitude
2.2.5. Benefits
2.2.6. Oversizing and Performance Gap
2.2.7. Methods to Evaluate Oversizing
3. Space Heating and Low-Temperature Heat
3.1. Review of Temperature Levels in the UK
3.1.1. Definitions of Low-Temperature Heat
3.1.2. Range of Design and Operating Temperatures
- Design Temperatures
- Temperatures in a Well-Functioning System
- Common Faults and Malfunction
3.2. Design and Operating Temperature in other Countries
3.3. Benefits and Challenges of Low-Temperature Heat
3.3.1. Benefits
3.3.2. Challenges
3.4. Low-Temperature in Low Energy Buildings
3.5. Low-Temperature in Existing Buildings
- No retrofit
- Windows
- Change of emitters
- Retrofit of the envelope
- Oversizing of heat emitters
4. Conclusions
- (i)
- The current radiator connection type BBOE should not be allowed as this reduces the output capacity of radiators by 5 to 15%, limiting the ability to provide a low return temperature. This would generate little constraints on current heating industry/installer practice.
- (ii)
- The current definitions of low-temperature heat in the UK are outdated. The definition of low-temperature heat should be aligned with the standard developed around 4GDH.
- (iii)
- The recommendations for operating temperatures from the Heat Network Code of Practice should be applied to any buildings, or at least those situated in areas where DH is deemed feasible.
- (iv)
- The code of Practice BS6880 should be updated to clearly highlight the importance of low return temperatures for condensing boilers.
- (v)
- Building regulations should clearly define hydraulic balancing or require central heating systems to be hydraulically balanced when commissioned and/or replaced.
Author Contributions
Funding
Conflicts of Interest
Nomenclature
Variables | |
OF | Oversizing Factor |
LMTD | Logarithmic Mean Temperature Difference [°C] |
Tf | Flow temperature of radiator [°C] |
Tr | Return temperature of radiator [°C] |
Ti | Ambient temperature in the room [°C] |
Heat flow [W] | |
Indices | |
n | Radiator exponent, usually set to 1.3 |
O | Design condition |
rad | Radiator |
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Building Type | Internal Design Temperature °C | 1955 | 1965 | 1970 | 1986 | 2006 * (**) | 2019 |
---|---|---|---|---|---|---|---|
Domestic | Living room | 18.3 °C | 18.3 °C | 21 °C | 21 °C | 19 °C (22–23 °C) | 22–23 °C |
Bedroom | 10.0 °C | 15.6 °C | 18 °C | 18 °C | 19 °C (17–19 °C) | 17–19 °C | |
Non-domestic | Office (sedentary work) | 18.3 °C | 18.3 °C | 19 °C | 20 °C | 19 °C (21–23 °C) | 19–21 °C |
Classroom | 16.6 °C | 18.3 °C | 18 °C | 18 °C | 19 °C (19–21 °C) | 19–21 °C | |
Assembly hall | 15.6 °C | 18.3 °C | 18 °C | 18 °C | 19 °C (19–21 °C) | 19–21 °C |
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Reguis, A.; Vand, B.; Currie, J. Challenges for the Transition to Low-Temperature Heat in the UK: A Review. Energies 2021, 14, 7181. https://doi.org/10.3390/en14217181
Reguis A, Vand B, Currie J. Challenges for the Transition to Low-Temperature Heat in the UK: A Review. Energies. 2021; 14(21):7181. https://doi.org/10.3390/en14217181
Chicago/Turabian StyleReguis, Antoine, Behrang Vand, and John Currie. 2021. "Challenges for the Transition to Low-Temperature Heat in the UK: A Review" Energies 14, no. 21: 7181. https://doi.org/10.3390/en14217181
APA StyleReguis, A., Vand, B., & Currie, J. (2021). Challenges for the Transition to Low-Temperature Heat in the UK: A Review. Energies, 14(21), 7181. https://doi.org/10.3390/en14217181