In this paper for the first time the Moving Line Source (MLS) model is combined with a depth-resolved Thermal Response Test (TRT). The latter was performed in a heterogeneous and groundwater rich subsoil, composed by a layering of silty sand, medium-fine sand and coarse-medium sand, with a layer of clayey silt separating a shallow aquifer from a deep one. The temperature evolution in the ground along the vertical axis was analysed with both the standard Infinite Line Source (ILS) and the MLS. The two models lead to similar estimates of the thermal conductivity in those regions of the subsoil where conduction prevails, while the MLS performs better where a significant groundwater velocity is expected. In these layers, the MLS analysis allows...
High-resolution depth-oriented temperature measurements havebeen introduced to investigate a groundw...
none3noA large tank (4 × 8 × 1.4 m) filled with loamy sediments and equipped with 26 standard piezom...
A large tank (4 × 8 × 1.4 m) filled with loamy sediments and equipped with 26 standard piezometers a...
In this paper for the first time the Moving Line Source (MLS) model is combined with a depth-resolve...
The classical methodology to perform and analyze thermal response test (TRT) is unsuccessful when ad...
Current thermal response tests, used to estimate the subsurface thermal conductivity in the geotherm...
The correct design of the Borehole Heat Exchanger is crucial for the operation and the energy perfor...
Ground thermal conductivity and borehole thermal resistance are key parameters for the design of clo...
Temperature is one major physical quantity of the subsurface and therefore, heat can be used as a tr...
We investigated the influence of groundwater flow on the thermal tests performed in borehole heat ex...
[EN] In this contribution, we analyze the results of a number of thermal response test (TRT) experim...
Ground-Source Heat Pump (GSHP) are among the cleanest and most energy efficient systems for heating ...
Shallow boreholes equipped with borehole heat exchangers (BHE) connected to ground-coupled heat pump...
High-resolution depth-oriented temperature measurements havebeen introduced to investigate a groundw...
none3noA large tank (4 × 8 × 1.4 m) filled with loamy sediments and equipped with 26 standard piezom...
A large tank (4 × 8 × 1.4 m) filled with loamy sediments and equipped with 26 standard piezometers a...
In this paper for the first time the Moving Line Source (MLS) model is combined with a depth-resolve...
The classical methodology to perform and analyze thermal response test (TRT) is unsuccessful when ad...
Current thermal response tests, used to estimate the subsurface thermal conductivity in the geotherm...
The correct design of the Borehole Heat Exchanger is crucial for the operation and the energy perfor...
Ground thermal conductivity and borehole thermal resistance are key parameters for the design of clo...
Temperature is one major physical quantity of the subsurface and therefore, heat can be used as a tr...
We investigated the influence of groundwater flow on the thermal tests performed in borehole heat ex...
[EN] In this contribution, we analyze the results of a number of thermal response test (TRT) experim...
Ground-Source Heat Pump (GSHP) are among the cleanest and most energy efficient systems for heating ...
Shallow boreholes equipped with borehole heat exchangers (BHE) connected to ground-coupled heat pump...
High-resolution depth-oriented temperature measurements havebeen introduced to investigate a groundw...
none3noA large tank (4 × 8 × 1.4 m) filled with loamy sediments and equipped with 26 standard piezom...
A large tank (4 × 8 × 1.4 m) filled with loamy sediments and equipped with 26 standard piezometers a...