Dispersive Mixing in Multicomponent Multiphase Flow: Numerical and Physical Effects
Dispersive Mixing in Multicomponent Multiphase Flow: Numerical and Physical Effects
批准号:
EP/F04237X/1
负责人:
Tara LaForce
金额:
$42.29万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2008
资助国家:
英国
项目状态:
已结题
起止时间:
2008 至 --
中文摘要
将工业排放的二氧化碳(CO2)注入枯竭的油层和深层盐渍含水层是对抗全球变暖的一种可行方法。英国有潜力在开发二氧化碳捕获和储存技术方面处于领先地位,因为北海的储油罐容量巨大。此外,保持目前的碳氢化合物产量水平对英国能源安全至关重要,注入二氧化碳是提高北海石油采收率的一种行之有效的方法。向油层注入二氧化碳通常会导致水、油和气液相同时流经多孔储集层岩石。相态和流动之间的相互作用决定了额外采油量和二氧化碳储存效率。迫切需要对地下多相流动的基本物理有所了解,以确保现有的数学模型和用来近似它们的模拟器是正确的。对于在三相之间分配的成分的位移,已有解析解可用,但尚不清楚它们是否模拟了包括分子扩散和毛细压力的弥散效应的真实物理位移。模拟位移对数值弥散的敏感性(数值误差,与物理弥散一样,倾向于在流体成分中涂抹尖锐的锋面)不能简单地由等效两相位移的敏感性来确定。这个项目将是第一个在基本水平上严格研究多组分多相流中的色散效应的项目。该项目的目标是推导出物理上正确的多组分多相流扩散模型,并在基于流线的三维油藏模拟器中实现它们。该项目完成后,该模拟器将用于设计高效的二氧化碳储存和提高采收率项目,以更高程度地确定储存的二氧化碳将在地质时期留在油层中。
英文摘要
Injection of carbon-dioxide (CO2) emissions from industrial sources into depleted oil reservoirs and deep saline aquifers is one viable way to combat global warming. The U.K. has the potential to take the lead in developing technologies for CO2 capture and storage because of the vast storage capacity of oil reservoirs in the North Sea. Moreover, maintaining current levels of hydrocarbon production is critical to U.K. energy security and CO2 injection is a proven method for increasing oil recovery in the North Sea.CO2 injection into oil reservoirs typically results in water, oil and gas fluid phases simultaneously flowing through porous reservoir rocks. Interaction between phase behaviour and flow determines the amount of additional oil recovered and CO2 storage efficiency. There is a critical need to develop an understanding of the fundamental physics in multiphase subsurface flow in order to ensure that existing mathematical models and the simulators used to approximate them are correct. Analytical solutions for displacements with components that partition between three phases are available, but it is not clear whether they model the true physical displacement which includes the dispersive effects of molecular diffusion and capillary pressure. The sensitivity of simulated displacements to numerical dispersion (numerical errors that, like physical dispersion, tend to smear sharp fronts in fluid composition) cannot be simply determined from the sensitivity for equivalent two-phase displacements.This project will be the first to rigorously study dispersive effects in multicomponent multiphase flow at a fundamental level. The goals of this project are to derive physically correct dispersion models for multicomponent multiphase flow and to implement them in a three-dimensional streamline-based reservoir simulator. When this project is completed, the simulator will be used to design efficient CO2 storage and enhanced oil recovery projects with a higher-degree of certainty that stored CO2 will remain in oil reservoirs for geologic time.
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The future is low-carbon energy
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批准号:EP/H04387X/1
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项目类别:Research Grant
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资助金额:$1.87万
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财政年份:2010
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负责人:Tara LaForce
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依托单位:
海外基金