VESTA-CH - 超高温帯水層蓄熱
VESTA-CH - Very High Temperature Heat Aquifer Storage (原題)
Alcolea, Andrés, Meier, Peter
🤖 gxceed AI 要約
日本語
VESTA-CHプロジェクトは、高温蓄熱システムの長期性能劣化を引き起こす熱-水-化学連成プロセスを解明し、安全な運転範囲と設計指針を提供する。数値モデリングと実験・現場観測を組み合わせ、地質・設計パラメータと貯留層性能の汎用的関係を確立した。スイスのBern Forsthaus実証サイトのデータ不足を補うため、将来のHTS設計に適用可能な汎用推奨事項を提示する。
English
The VESTA-CH project addresses long-term performance degradation in high-temperature thermal energy storage (HTS) systems by investigating coupled thermo-hydro-chemical processes. It combines numerical modeling with experiments and field observations to establish generic relationships between reservoir performance and geological/design parameters. Despite limited field data from the Bern Forsthaus site, it provides transferable design principles, monitoring concepts, and safe operational guidelines for future HTS projects.
Unofficial AI-generated summary based on the public title and abstract. Not an official translation.
📝 gxceed 編集解説 — Why this matters
日本のGX文脈において
日本では再生可能エネルギーの季節間貯蔵や工場排熱利用が注目されており、高温帯水層蓄熱の設計指針は国内の地熱・温泉地域での実装検討に示唆を与える。また、長期性能評価の方法論は、日本の地下熱利用プロジェクトのリスク評価に応用可能。
In the global GX context
This project contributes to global energy transition by advancing high-temperature aquifer thermal energy storage, a key technology for integrating renewable energy and industrial waste heat. Its generic design principles and monitoring frameworks are relevant for international HTS deployment, supporting decarbonization of heating and cooling sectors.
👥 読者別の含意
🔬研究者:Provides a coupled THC modeling framework and generic design relationships for high-temperature storage systems.
🏢実務担当者:Offers engineering recommendations and monitoring concepts for designing durable and efficient HTS installations.
🏛政策担当者:Highlights the potential of underground thermal storage for energy security and renewable integration, informing supportive policies.
📄 Abstract(原文)
High Temperature Storage systems (HTS) aim at balancing the mismatch between energy production and demand by injecting surplus or residual heat from industrial processes, waste-to-energy plants, or renewable energy sources into deep geological reservoirs for seasonal storage and subsequent recovery when required. As such, they constitute a key enabling technology for increasing the flexibility of renewable energy systems, improving energy security, and reducing greenhouse gas emissions. The VESTA-CH project addresses one of the main challenges limiting the large-scale deployment of High-Temperature Thermal Energy Storage (HTS) systems: the long-term preservation of storage performance under repeated high-temperature operation. Over successive injection and production cycles, coupled thermo-hydro-chemical (THC) processes may alter reservoir properties through permeability changes, mineral dissolution and precipitation, progressively reducing injectivity, productivity, thermal recovery efficiency, and ultimately operational safety. The project therefore aims to develop scientific and engineering methodologies that enable the definition of safe operating envelopes and support the design of more efficient, reliable, and durable HTS systems. To achieve this objective, VESTA-CH combines advanced numerical modelling with laboratory experiments and field observations to investigate the evolution of HTS under different operating conditions. The project develops fully coupled THC simulations to quantify the interaction between fluid flow, heat transport, and geochemical reactions over repeated storage cycles. Particular emphasis is placed on identifying the physical and chemical mechanisms responsible for performance degradation, evaluating the sensitivity of system behaviour to key geological and design and operational parameters, and assessing innovative engineering concepts, including distributed fibre-optic monitoring, horizontal multilateral wells, and advanced well architectures designed to improve heat exchange. Rather than defining site-specific operating limits, which inherently depend on local hydrogeological and thermal conditions, the modelling framework is used to establish generic relationships between reservoir performance and the governing geological, design, and operational parameters. This approach enables the identification of the factors primarily controlling thermal efficiency and provides transferable design principles that can be readily adapted to future HTS projects by incorporating site-specific geology, well architecture, and completion design. VESTA-CH benefits from datasets acquired in the context of the Forsthaus Geospeicher High-Temperature Aquifer Thermal Energy Storage (HT-ATES) project. This project aimed to store excess heat generated by the local utility company Energie Wasser Bern (ewb) within sandstone layers in the Lower Freshwater Molasse (Untere Süsswassermolasse; USM) located at depths ranging from 240 to 500 meters. Following extensive field-testing and stimulation campaigns, it became evident that the permeability of the sandstone formations was too low to allow significant thermal energy storage. As a result, only partial datasets, mainly related to the characterization of the hydrogeological system, were obtained. This limited the achievement of several of the original objectives of the VESTA-CH project, including: (1) the optimization of the injection scheme (pressure and temperature) for the Bern Forsthaus pilot site, (2) the design and validation of the monitoring system, and (3) the assessment of geochemical processes. In the absence of key datasets, this report provides generic recommendations based on the available data and numerical analyses. In particular, the outcomes of VESTA-CH are (1) an advanced, fully coupled numerical framework for simulating TH(M)C processes in both wellbores and reservoirs; (2) generic engineering recommendations for the design of future HTS systems; (3) an integrated monitoring and surveillance concept combining surface instrumentation, downhole sensors, and distributed fibre-optic technologies; (4) generic guidelines for defining safe operational envelopes, including injection and production rates and pressure limits; and (5) a comprehensive assessment of the geochemical risks affecting long-term HTS performance and reliability. By extending the operational lifetime and reliability of HTS installations, VESTA-CH will contribute to reducing the levelised cost of stored thermal energy and facilitate the broader deployment of seasonal heat storage technologies. The project therefore supports the objectives of the Swiss Energy Strategy by providing the scientific and engineering basis required for safe, efficient, and economically viable underground thermal energy storage systems capable of integrating increasing shares of renewable energy into the future energy system.
🔗 Provenance — このレコードを発見したソース
- Zenodo https://zenodo.org/records/22081310first seen 2026-08-25 04:12:15 · last seen 2026-08-27 04:34:28
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