首页> 外文会议>Workshop on Geothermal Reservoir Engineering >A THERMAL-HYDROLOGICAL-CHEMICAL MODEL FOR THE ENHANCED GEOTHERMAL SYSTEM DEMONSTRATION PROJECT AT NEWBERRY VOLCANO, OREGON
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A THERMAL-HYDROLOGICAL-CHEMICAL MODEL FOR THE ENHANCED GEOTHERMAL SYSTEM DEMONSTRATION PROJECT AT NEWBERRY VOLCANO, OREGON

机译:纽尔牛牛牛火山增强地热系统示范项目的热水文 - 化学模型

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Newberry Volcano in Central Oregon is the site of a Department of Energy funded Enhanced Geothermal System (EGS) Demonstration Project. Stimulation and production of an EGS is a strong perturbation to the physical and chemical environment, giving rise to coupled Thermal-Hydrological-Mechanical-Chemical (THMC) processes leading to permeability changes as a result of mineral dissolution and precipitation, rock deformation, and fracture reactivation. To evaluate these processes, and to help guide EGS stimulation and reservoir development strategies. a combined native-state and reservoir model of the west flank of Newberry Volcano was created that encompasses the planned stimulation zone and a several km region of the west flank from the surface down to the supercritical region, likely close to a postulated cooling intrusive body. Temperature and pressure distributions were first modeled using TOUGHREACT with boundary conditions estimated from nearby drill holes, and compared to measurements made in the over 3 km deep NWG 55-29 drill hole. With estimates of the porosity and heat capacities for the major hydrogeologic units, thermal conductivities were calibrated by matching to the measured temperature profile. To simulate the development of the observed hydrothermal mineralogy, a reaction-transport model (THC) was developed using the pre-alteration mineralogy and shallow groundwater chemistry as the initial geochemical conditions, assuming that modeled temperature and pressure distributions were relatively constant over several thousand years. Close correspondence of modeled and observed epidote distributions support the observation that past hydrothermal activity took place under thermal gradients similar to current values, whereas calcite and sulfide abundances at depth likely require a magmatic gas component. Multicomponent geothermometry was used to estimate potential temperatures of equilibration of waters, and to evaluate the effects of kinetics on calculated mineral equilibration temperatures. The ultimate goal will be to capture both the local chemical and mechanical changes in the rock owing to stimulation as well as the potential long-term response and sustainability of the larger-scale geothermal reservoir.
机译:俄勒冈州中部的纽棕榈山是能源资助的增强地热系统(EGS)示范项目部门的网站。 EGS的刺激和生产是对物理和化学环境的强烈扰动,引起耦合热水文 - 机械 - 化学(THMC)过程,导致矿物溶解和沉淀,岩石变形和骨折导致渗透性变化重新激活。评估这些流程,并帮助指导例如刺激和储层发展策略。创建了新的Newberry火山的西侧侧翼的组合的本地和储层模型,其包括计划的刺激区和来自表面的西侧侧面的几kM区域,从而靠近假设的冷却侵入式身体。使用古钻孔估计的边界条件,首先使用古钻孔估计的温度和压力分布,并与3公里深NWG 55-29钻孔的测量相比。利用主要水文地理单位的孔隙率和热能估计,通过与测量的温度曲线匹配来校准热导体。为了模拟观察到的水热矿物学的发展,使用预改性矿物学和浅地下水化学作为初始地球化学条件,开发了反应运输模型(THC),假设模型温度和压力分布在几千年内相对恒定。模型和观察到的ePIDOTE分布的密钥支持观察到过去的水热活动在类似于电流值的热梯度下发生,而胶铁化合物和深度的硫化物丰度可能需要岩浆气体组分。多组分地热测定法用于估计水平衡的潜在温度,评价动力学对计算矿物平衡温度的影响。由于刺激以及较大尺寸地热储层的潜在长期反应以及潜在的长期反应和可持续性,最终目标是捕获岩石中的局部化学和机械变化。

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