The Potential of Depleted Oil Reservoirs for High-Temperature Storage Systems

Author:

Stricker KaiORCID,Grimmer Jens C.,Egert Robert,Bremer Judith,Korzani Maziar GholamiORCID,Schill EvaORCID,Kohl Thomas

Abstract

HT-ATES (high-temperature aquifer thermal energy storage) systems are a future option to shift large amounts of high-temperature excess heat from summer to winter using the deep underground. Among others, water-bearing reservoirs in former hydrocarbon formations show favorable storage conditions for HT-ATES locations. This study characterizes these reservoirs in the Upper Rhine Graben (URG) and quantifies their heat storage potential numerically. Assuming a doublet system with seasonal injection and production cycles, injection at 140 °C in a typical 70 °C reservoir leads to an annual storage capacity of up to 12 GWh and significant recovery efficiencies increasing up to 82% after ten years of operation. Our numerical modeling-based sensitivity analysis of operational conditions identifies the specific underground conditions as well as drilling configuration (horizontal/vertical) as the most influencing parameters. With about 90% of the investigated reservoirs in the URG transferable into HT-ATES, our analyses reveal a large storage potential of these well-explored oil fields. In summary, it points to a total storage capacity in depleted oil reservoirs of approximately 10 TWh a−1, which is a considerable portion of the thermal energy needs in this area.

Publisher

MDPI AG

Subject

Energy (miscellaneous),Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electrical and Electronic Engineering,Control and Optimization,Engineering (miscellaneous)

Reference89 articles.

1. Energy Technology Perspectives 2017. Catalyzing Energy Technology Transformations,2017

2. Renewables 2019 Global Status Reporthttps://www.ren21.net/wp-content/uploads/2019/05/gsr_2019_full_report_en.pdf

3. Thermal Energy Storage. Systems and Applications;Dinçer,2011

4. Underground Thermal Energy Storage;Lee,2013

5. Sensible heat thermal storage energy and exergy performance evaluations

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