@article{TissenBenzMenbergetal.2019, author = {Tissen, Carolin and Benz, Susanne and Menberg, Kathrin and Bayer, Peter and Blum, Philipp}, title = {Groundwater temperature anomalies in central Europe}, volume = {14}, pages = {104012}, journal = {Environmental Research Letters}, number = {10}, publisher = {IOP Publishing}, address = {Bristol}, issn = {1748-9326}, doi = {https://doi.org/10.1088/1748-9326/ab4240}, year = {2019}, abstract = {As groundwater is competitively used for drinking, irrigation, industrial and geothermal applications, the focus on elevated groundwater temperature (GWT) affecting the sustainable use of this resource increases. Hence, in this study GWT anomalies and their heat sources are identified. The anthropogenic heat intensity (AHI), defined as the difference between GWT at the well location and the median of surrounding rural background GWTs, is evaluated in over 10 000 wells in ten European countries. Wells within the upper three percentiles of the AHI are investigated for each of the three major land cover classes (natural, agricultural and artificial). Extreme GWTs ranging between 25 °C and 47 °C are attributed to natural hot springs. In contrast, AHIs from 3 to 10 K for both natural and agricultural surfaces are due to anthropogenic sources such as landfills, wastewater treatment plants or mining. Two-thirds of all anomalies beneath artificial surfaces have an AHI > 6 K and are related to underground car parks, heated basements and district heating systems. In some wells, the GWT exceeds current threshold values for open geothermal systems. Consequently, a holistic management of groundwater, addressing a multitude of different heat sources, is required to balance the conflict between groundwater quality for drinking and groundwater as an energy source or storage media for geothermal systems.}, language = {en} } @article{HemmerleHaleDresseletal.2019, author = {Hemmerle, Hannes and Hale, Sina and Dressel, Ingo and Benz, Susanne and Attard, Guillaume and Blum, Philipp and Bayer, Peter}, title = {Estimation of Groundwater Temperatures in Paris, France}, volume = {2019}, pages = {5246307}, journal = {Geofluids}, publisher = {Hindawi}, address = {London}, issn = {1468-8123}, doi = {https://doi.org/10.1155/2019/5246307}, year = {2019}, abstract = {Subsurface temperature data is usually only accessible as point information with a very limited number of observations. To spatialize these isolated insights underground, we usually rely on interpolation methods. Unfortunately, these conventional tools are in many cases not suitable to be applied to areas with high local variability, like densely populated areas, and in addition are very vulnerable to uneven distributions of wells. Since thermal conditions of the surface and shallow subsurface are coupled, we can utilize this relationship to estimate shallow groundwater temperatures from satellite-derived land surface temperatures. Here, we propose an estimation approach that provides spatial groundwater temperature data and can be applied to natural, urban, and mixed environments. To achieve this, we combine land surface temperatures with anthropogenic and natural processes, such as downward heat transfer from buildings, insulation through snow coverage, and latent heat flux in the form of evapotranspiration. This is demonstrated for the city of Paris, where measurements from as early as 1977 reveal the existence of a substantial subsurface urban heat island (SUHI) with a maximum groundwater temperature anomaly of around 7 K. It is demonstrated that groundwater temperatures in Paris can be well predicted with a root mean squared error of below 1 K by means of satellite-derived land surface images. This combined approach is shown to improve existing estimation procedures that are focused either on rural or on urban conditions. While they do not detect local hotspots caused by small-scaled heat sources located underground (e.g., sewage systems and tunnels), the findings for the city of Paris for the estimation of large-scale thermal anomalies in the subsurface are promising. Thus, the new estimation procedure may also be suitable for other cities to obtain a more reliable insight into the spatial distribution of urban ground and groundwater temperatures.}, language = {en} } @article{TissenMenbergBayeretal.2019, author = {Tissen, Carolin and Menberg, Kathrin and Bayer, Peter and Blum, Philipp}, title = {Meeting the demand}, volume = {7}, pages = {9}, journal = {Geothermal Energy - Science, Society and Technology}, subtitle = {geothermal heat supply rates for an urban quarter in Germany}, publisher = {BioMed Central}, address = {London}, issn = {2195-9706}, doi = {https://doi.org/10.1186/s40517-019-0125-8}, year = {2019}, abstract = {Thermal energy for space heating and for domestic hot water use represents about a third of the overall energy demand in Germany. An alternative to non-renewable energy-based heat supply is the implementation of closed and open shallow geothermal systems, such as horizontal ground source heat pump systems, vertical ground source heat pump (vGSHP) systems and groundwater heat pump systems. Based on existing regulations and local hydrogeological conditions, the optimal site-specific system for heat supply has to be identified. In the presented technical feasibility study, various analytical solutions are tested for an urban quarter before and after building refurbishment. Geothermal heat supply rates are evaluated by providing information on the optimal system and the specific shortcomings. Our results show that standard vGSHP systems are even applicable in older and non-refurbished residential areas with a high heat demand using a borehole heat exchanger with a length of 100 m or in conjunction with multiple boreholes. After refurbishment, all studied shallow geothermal systems are able to cover the lowered heat demand. The presented analysis also demonstrates that ideally, various technological variants of geothermal systems should be evaluated for finding the optimal solution for existing, refurbished and newly developed residential areas.}, language = {en} } @article{PophillatAttardBayeretal.2018, author = {Pophillat, William and Attard, Guillaume and Bayer, Peter and Hecht-M{\´e}ndez, Jozsef and Blum, Philipp}, title = {Analytical solutions for predicting thermal plumes of groundwater heat pump systems}, volume = {2020}, journal = {Renewable Energy}, number = {147, Part 2}, publisher = {Elsevier}, address = {Amsterdam}, issn = {1879-0682}, doi = {https://doi.org/10.1016/j.renene.2018.07.148}, pages = {2696 -- 2707}, year = {2018}, language = {en} } @article{AttardBayerRossieretal.2019, author = {Attard, Guillaume and Bayer, Peter and Rossier, Yvan and Blum, Philipp and Eisenlohr, Laurent}, title = {A novel concept for managing thermal interference between geothermal systems in cities}, volume = {2020}, journal = {Renewable Energy}, number = {145}, publisher = {Elsevier}, address = {Amsterdam}, issn = {1879-0682}, doi = {https://doi.org/10.1016/j.renene.2019.06.095}, pages = {914 -- 924}, year = {2019}, language = {en} } @article{PophillatBayerTeyssieretal.2019, author = {Pophillat, William and Bayer, Peter and Teyssier, Esther and Blum, Philipp and Attard, Guillaume}, title = {Impact of groundwater heat pump systems on subsurface temperature under variable advection, conduction and dispersion}, volume = {2020}, pages = {101721}, journal = {Geothermics}, number = {83}, publisher = {Elsevier}, address = {Amsterdam}, issn = {1879-3576}, doi = {https://doi.org/10.1016/j.geothermics.2019.101721}, year = {2019}, language = {en} }