Comparison of Conventional and Variable Borehole Heat Exchangers for Use in a Desiccant Assisted Air Conditioning System
Abstract
:1. Introduction
2. Experimental Study
2.1. Test Facility
2.1.1. Desiccant Assisted Air Conditioning System
2.1.2. Geothermal Systems
2.1.3. System Control
2.1.4. Performance Investigation of the Geothermal Systems
2.2. Measurement Results
2.2.1. Summer Operation
2.2.2. Winter Operation
3. Conclusions
- During hot or cold periods, the cooling or heating power of the soil, respectively, can be limited due to short regeneration periods. The induced ground water flow of the GI-BHX can improve heating and cooling loads during summer and winter operation.
- Gas injection can be used as an additional control mechanism during peak loads. During summer operation, of additional cooling power can be achieved compared with a conventional BHX. For heating purposes in combination with a GCHP, the power increase using a GI-BHX was limited to with no positive effect on the performance of the GCHP. This makes it possible to avoid a backup system or to avoid oversizing the geothermal system.
- BHX gas injection can be promising in terms of reducing the size of a geothermal system without constraints in thermal capacity. Therefore, using several GI-BHXs within a larger geothermal field could offer reliable peak load handling.
- In terms of further system evaluations, other operation strategies for the GI-BHX will be considered. At present, a detailed economic and energetic analysis, including the expenses of the GI-BHX, is being carried out and will be published in future research work.
Author Contributions
Funding
Conflicts of Interest
Nomenclature
Symbols | |
area, m2 | |
specific heat capacity, J kg−1 K−1 | |
Coefficient of Performance, dimensionless value | |
Energy Efficiency Ratio, dimensionless value | |
electrical power, W | |
heat flow rate, W | |
volume flow rate, m3 s−1 | |
difference, dimensionless value | |
temperature, °C | |
density, kg m−3 | |
Subscripts and Abbreviations | |
BHX | borehole heat exchanger |
cond | condenser |
el | electrical |
eta | extract air |
exa | exhaust air |
GCHP | ground-coupled heat pump |
GI-BHX | gas injection borehole heat exchanger |
in | inlet |
nom | nominal |
oda | outside air |
out | outlet |
STU | solar thermal unit |
sup | supply air |
th | thermal |
w | water |
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Measured Value | Sensor Type/Measuring Principle | Measurement Uncertainty | |
---|---|---|---|
Water temperature at air conditioning site | Pt100 (accuracy class W0.1) | ±1/3·(0.3 + 0.005·ϑ) °C | |
Volume flow (water) at air conditioning site | Electromagnetic flow meter | measured flow velocity: ±0.5% of reading ± 1 mm s−1 | |
Electric power at air conditioning site | AC energy meter | ±2% of reading | |
Water temperature at geothermal site | Pt1000 (accuracy class W0.1) | ±1/3·(0.3 + 0.005·ϑ) °C | |
Volume flow (water) at geothermal site | Electromagnetic flow meter | measured flow velocity: ±0.5% of reading ± 2 mm s−1 |
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Richter, F.; Niemann, P.; Schuck, M.; Grabe, J.; Schmitz, G. Comparison of Conventional and Variable Borehole Heat Exchangers for Use in a Desiccant Assisted Air Conditioning System. Energies 2021, 14, 926. https://doi.org/10.3390/en14040926
Richter F, Niemann P, Schuck M, Grabe J, Schmitz G. Comparison of Conventional and Variable Borehole Heat Exchangers for Use in a Desiccant Assisted Air Conditioning System. Energies. 2021; 14(4):926. https://doi.org/10.3390/en14040926
Chicago/Turabian StyleRichter, Finn, Peter Niemann, Matthias Schuck, Jürgen Grabe, and Gerhard Schmitz. 2021. "Comparison of Conventional and Variable Borehole Heat Exchangers for Use in a Desiccant Assisted Air Conditioning System" Energies 14, no. 4: 926. https://doi.org/10.3390/en14040926
APA StyleRichter, F., Niemann, P., Schuck, M., Grabe, J., & Schmitz, G. (2021). Comparison of Conventional and Variable Borehole Heat Exchangers for Use in a Desiccant Assisted Air Conditioning System. Energies, 14(4), 926. https://doi.org/10.3390/en14040926