Aquifer thermal energy storage (ATES) is attained by storing thermal energy in aquifers, using the groundwater as a carrier for the heat. Hence, in ATES systems, the background groundwater flow velocity may affect the efficiency if a significant amount of stored heat is moved away from the storage well by advection. This paper presents an alternative solution to the typical “pump and dump” open-loop shallow geothermal system configuration using the ATES concept with a reversed extraction-injection well scheme. This particular placement is able to increase the energy efficiency of a conventional open-loop system while reducing the thermal impact downstream the system. The uni-directional ATES pumping scheme compensates the heat transport by groundwater flow extracting the groundwater from the downstream well and re-injecting back in the upstream well. This research presents a numerical feasibility study and sensitivity analysis of the effects of the well spacing, pumping scheme and groundwater flow velocity on the efficiency of a uni-directional ATES. Optimal combinations are suggested to ensure the maximum re-capture by the downstream well of the heat injected in the upstream well in the previous season and subject to thermal transport by advection, with a maximum heat recovery between 55 and 75 % depending on the conditions. The results of the modelling analysis showed that the optimal inter-well distance depends on the groundwater flow velocity and the total annual storage volume. This paper also demonstrates the mitigation effect of the thermal perturbation downstream of a uni-directional ATES compared to a conventional open-loop scheme.

Silvestri, V., Crosta, G., Previati, A., Frattini, P., Bloemendal, M. (2025). Uni-directional ATES in high groundwater flow aquifers. GEOTHERMICS, 125(January 2025) [10.1016/j.geothermics.2024.103152].

Uni-directional ATES in high groundwater flow aquifers

Silvestri, Valerio
;
Crosta, Giovanni;Previati, Alberto;Frattini, Paolo;
2025

Abstract

Aquifer thermal energy storage (ATES) is attained by storing thermal energy in aquifers, using the groundwater as a carrier for the heat. Hence, in ATES systems, the background groundwater flow velocity may affect the efficiency if a significant amount of stored heat is moved away from the storage well by advection. This paper presents an alternative solution to the typical “pump and dump” open-loop shallow geothermal system configuration using the ATES concept with a reversed extraction-injection well scheme. This particular placement is able to increase the energy efficiency of a conventional open-loop system while reducing the thermal impact downstream the system. The uni-directional ATES pumping scheme compensates the heat transport by groundwater flow extracting the groundwater from the downstream well and re-injecting back in the upstream well. This research presents a numerical feasibility study and sensitivity analysis of the effects of the well spacing, pumping scheme and groundwater flow velocity on the efficiency of a uni-directional ATES. Optimal combinations are suggested to ensure the maximum re-capture by the downstream well of the heat injected in the upstream well in the previous season and subject to thermal transport by advection, with a maximum heat recovery between 55 and 75 % depending on the conditions. The results of the modelling analysis showed that the optimal inter-well distance depends on the groundwater flow velocity and the total annual storage volume. This paper also demonstrates the mitigation effect of the thermal perturbation downstream of a uni-directional ATES compared to a conventional open-loop scheme.
Articolo in rivista - Articolo scientifico
Aquifer thermal energy storage; Groundwater flow velocity; Groundwater heat pump; Inter-well distance; Thermal plume; Thermal recovery efficiency;
English
5-set-2024
2025
125
January 2025
103152
open
Silvestri, V., Crosta, G., Previati, A., Frattini, P., Bloemendal, M. (2025). Uni-directional ATES in high groundwater flow aquifers. GEOTHERMICS, 125(January 2025) [10.1016/j.geothermics.2024.103152].
File in questo prodotto:
File Dimensione Formato  
Silvestri-2025-Geothermics-VoR.pdf

accesso aperto

Descrizione: This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
Tipologia di allegato: Author’s Accepted Manuscript, AAM (Post-print)
Licenza: Creative Commons
Dimensione 4.14 MB
Formato Adobe PDF
4.14 MB Adobe PDF Visualizza/Apri

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10281/548984
Citazioni
  • Scopus ND
  • ???jsp.display-item.citation.isi??? 2
Social impact