增强地热系统的注入生产性能,考虑到断裂网络的复杂性和数值模拟中的热水力机械合
Zhihong Lei1, Yulong Zhang2, Qiliang Cui2
1Faculty of Geosciences and Environmental Engineering, Southwest Jiaotong University, Chengdu, 611756, China. t10599@swjtu.edu.cn.
Scientific reports
|September 4, 2023
概括
在增强地热系统 (EGS) 中研究断裂网络揭示了热,液压和机械变化的异步扩散. 最佳的断裂孔口和注入速率是深层断裂水库高效取热的关键.
科学领域:
- 地热能源工程 地热能源工程
- 储水库工程 储水库工程
- 计算地质科学计算地质科学
背景情况:
- 增强地热系统 (EGS) 的性能受到地下裂纹网络的显著影响.
- 了解热液力机械 (THM) 合对于优化地热能源提取策略至关重要.
研究的目的:
- 用离散断裂网络 (DFN) 模型评估深层断裂水库的热提取性能.
- 调查断裂网络特征和注入参数对EGS性能的影响.
主要方法:
- 在DFN框架内开发包含THM合的数值模型.
- 基于不同的断裂网络属性 (随机性,几何,长度,孔径) 和注入参数的热量产生量化分析.
主要成果:
- 温度,压力和压力干扰异步扩散,压力滞后.
- 断裂网络的几何和方向极大地影响了热提取和注入的性能.
- 最佳的断裂孔径 (0.5-1.0毫米) 平衡流体流动和热提取;更高的注射速率可以诱导应力度并增加透性.
结论:
- 断裂网络的特点在很大程度上决定了EGS的效率.
- 仔细考虑断裂孔口和注射质量率对于成功的深地热地工程至关重要.
- 该研究为制定有效的地热开采战略提供了关键的见解.
相关概念视频
Thermal expansion and Thermal stress: Problem Solving
1.2K
San Francisco's Golden Gate Bridge is exposed to temperatures ranging from -15 °C to 40 °C. At its coldest, the main span of the bridge is 1275 m long. Assuming that the bridge is made entirely of steel, what is the change in its length between these temperatures?
To solve the problem, first, identify the known and unknown quantities. The initial length (L) of the bridge is 1275 m, the coefficient of linear expansion (α) for steel is 12 x 10-6/°C, and the change in...
To solve the problem, first, identify the known and unknown quantities. The initial length (L) of the bridge is 1275 m, the coefficient of linear expansion (α) for steel is 12 x 10-6/°C, and the change in...
1.2K
Multiple Pipe Systems
784
Multipipe systems consist of complex configurations of interconnected pipes designed to transport fluids efficiently across intricate networks. They are essential in engineering applications requiring precise control over flow distribution, pressure, and head loss. They are categorized into series, parallel, loop, and network configurations, each distinguished by unique flow characteristics and applications.
Series Configuration
In a series configuration, fluid flows sequentially from one pipe...
Series Configuration
In a series configuration, fluid flows sequentially from one pipe...
784
Elastic Strain Energy for Shearing Stresses
217
As discussed in previous lessons, strain energy in a material is the energy stored when it is elastically deformed, a concept crucial in materials science and mechanical engineering. This energy results from the internal work done against the cohesive forces within the material. When a material undergoes shearing stress and corresponding shearing strain, the strain energy density, which is the energy stored per unit volume, is calculated. Within the elastic limit, where the stress is...
217
Typical Model Studies
380
Fluid mechanics model studies often utilize scaled-down systems to predict fluid behavior in full-scale environments, such as river flows, dam spillways, and structures interacting with open surfaces. Maintaining Froude number similarity in river models is crucial, as it replicates surface flow features like wave patterns and velocities.
380
Temperature Dependent Deformation
168
In a nonhomogeneous rod made up of steel and brass, restrained at both ends and subjected to a temperature change, several steps are involved in calculating the stress and compressive load. Due to the problem's static indeterminacy, one end support is disconnected, allowing the rod to experience the temperature change freely. Next, an unknown force is applied at the free end, triggering deformations in the rod's steel and brass portions. These deformations are then calculated and added...
168
Mechanisms of Heat Transfer II
3.3K
In convection, thermal energy is carried by the large-scale flow of matter. Ocean currents and large-scale atmospheric circulation, which result from the buoyancy of warm air and water, transfer hot air from the tropics toward the poles and cold air from the poles toward the tropics. The Earth’s rotation interacts with those flows, causing the observed eastward flow of air in the temperate zones. Convection dominates heat transfer by air, and the amount of available space for the airflow...
3.3K


