首页> 外文会议>Workshop on Geothermal Reservoir Engineering >NUMERICAL SIMULATION OF NOBLE GASES AS NATURAL TRACERS FOR INJECTION RETURNS AND RESERVOIR PROCESSES IN VAPOR-DOMINATED SYSTEMS
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NUMERICAL SIMULATION OF NOBLE GASES AS NATURAL TRACERS FOR INJECTION RETURNS AND RESERVOIR PROCESSES IN VAPOR-DOMINATED SYSTEMS

机译:用于喷射返回和储层系统中喷射回报和储层过程的天然示踪的数值模拟

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Noble gases have attributes and properties that make them very attractive as tracers for fluid movement and reservoir processes. Noble gases are non-reactive and most of them have no sinks or sources in the subsurface, rendering them conservative. They occur naturally in waters that have been in contact with the atmosphere in concentrations that depend on their solubilities. As solubilities are temperaturedependent, noble gas concentrations in subsurface waters may be used to infer the temperature of recharge. Noble gases partition between aqueous and gas (vapor) phases, which alters concentrations in ways that may allow inferences on boiling and condensation processes in two-phase systems. We have developed a fluid property module for TOUGH2 that represents single- and two-phase mixtures of water, noble gases, and air. It includes dependence of solubilities and diffusivities on noble gas species, and on temperature and pressure conditions. This is applied to model transport of noble gases under conditions corresponding to The Geysers vapor-dominated system. Our calculations demonstrate that spatial and temporal variations in noble gas concentrations can be used to track the migration of injected fluids, and to evaluate the extent of vaporization of such fluids. Diffusive exchange between fractures and matrix blocks imparts a characteristic signature on breakthrough curves (BTCs) for noble gases, which may allow inferences on fracture spacing.
机译:惰性气体具有属性和性质,使它们非常有吸引力作为流体运动和储层过程的示踪剂。惰性气体是非反应性的,并且在地下的大多数没有下沉或源,使其保守。它们自然地发生在与依赖于其溶解度的浓度的气氛中的水域中。随着温度依赖性的溶解,地下水中的惰性气体浓度可用于推断再充电的温度。含水和气体(蒸气)相之间的惰性气体分配,其使浓度的方式改变了可以允许在两相系统中沸腾和冷凝过程的推断。我们已经开发了一种韧性的流体性能模块,其代表水,惰性气体和空气的单相和两相混合物。它包括对惰性气体物种的溶解度和扩散性以及温度和压力条件的依赖性。这是应用于在与喷泉蒸汽主导的系统对应的条件下进行惰性气体的模型传输。我们的计算表明,惰性气体浓度的空间和时间变化可用于跟踪注入的流体的迁移,并评估这种流体的蒸发程度。裂缝和基质块之间的扩散交换赋予惰性气体突破性曲线(BTC)的特征签名,这可能允许裂缝间距的推断。

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