Thermo-Hydro-Mechanical Modeling of Brine Migration in a Heated Borehole Test in Bedded Salt

被引:2
作者
Tounsi, Hafssa [1 ]
Rutqvist, Jonny [1 ]
Hu, Mengsu [1 ]
Kuhlman, Kristopher [2 ]
机构
[1] Lawrence Berkeley Natl Lab, Div Energy Geosci, Berkeley, CA 94720 USA
[2] Sandia Natl Labs, Nucl Waste Disposal Res & Anal Dept, Albuquerque, NM USA
关键词
Numerical modeling; THM coupling; Rock salt; Brine availability; Heated borehole experiment; Cooling damage; ROCK-SALT; FLOW; GEOMECHANICS; BEHAVIOR;
D O I
10.1007/s00603-023-03632-5
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
This research paper focuses on the thermo-hydro-mechanical (THM) modeling of brine migration in a heated borehole test conducted as part of the ongoing Brine Availability Test in Salt (BATS) at the Waste Isolation Pilot Plant (WIPP) in New Mexico. It is a component of the international collaboration project DECOVALEX-2023 (DEvelopment of COupled models and their VALidation against EXperiments), which aims to understand the THM processes governing brine flow in heated rock salt repositories through collaborative analysis by multiple research teams. Using the TOUGH-FLAC simulator, THM simulations were performed and compared with data from the BATS phase 1a. This experiment involved two identical horizontal-borehole arrays, one heated and one serving as a control, both equipped with sensor arrays. Analysis of measurements revealed water flow rate surges during heater power transitions, with the highest jump observed during cooling. Acoustic emission activity exhibited distinct patterns in response to heater power changes, suggesting that damage to rock salt is particularly pronounced during the cooling phase. The THM simulations successfully captured these phenomena, highlighting the significance of thermal effects, brine migration, and mechanical behavior in predicting brine availability in heated and damaged rock salt. Our modeling also revealed the critical interplay between heating and cooling-induced damage and its influence on flow properties, particularly affecting brine inflow estimation. Notably, we found that cooling-induced brine inflow spikes result from increased permeability due to tensile dilatancy. These findings have important implications for the development of robust containment strategies and enhance our understanding of the complex processes involved in repository performance. Numerical modeling study accurately replicates the thermal-hydromechanical behavior of rock salt surrounding a heated borehole.Jumps in brine flow rate during transitions in heater power are observed, with the highest jump during cooling.Acoustic emission patterns suggest pronounced damage to rock salt during the cooling phase.Thermal pressurization and tensile-induced damage are identified as the primary contributors to brine inflow spikes.Findings improve predictions of brine availability, aiding the development of robust containment strategies for radioactive waste disposal.
引用
收藏
页码:5505 / 5518
页数:14
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