Stauffer Philip H, Viswanathan Hari S, Pawar Rajesh J, Guthrie George D
Los Alamos National Laboratory, Earth and Environmental Sciences, Mail Stop T-003, Los Alamos, New Mexico 87545, USA.
Environ Sci Technol. 2009 Feb 1;43(3):565-70. doi: 10.1021/es800403w.
In this paperwe describe CO2-PENS, a comprehensive system-level computational model for performance assessment of geologic sequestration of CO2. CO2-PENS is designed to perform probabilistic simulations of CO2 capture, transport, and injection in different geologic reservoirs. Additionally, the long-term fate of CO2 injected in geologic formations, including possible migration out of the target reservoir, is simulated. The simulations sample from probability distributions for each uncertain parameter, leading to estimates of global uncertainty that accumulate through coupling of processes as the simulation time advances. Each underlying process in the system-level model is built as a module that can be modified as the simulation tool evolves toward more complex problems. This approach is essential in coupling processes that are governed by different sets of equations operating at different time-scales. We first explain the basic formulation of the system level model, briefly discuss the suite of process-level modules that are linked to the system level, and finally give an in-depth example that describes the system level coupling between an injection module and an economic module. The example shows how physics-based calculations of the number of wells required to inject a given amount of CO2 and estimates of plume size can impact long-term sequestration costs.
在本文中,我们描述了CO2-PENS,这是一个用于评估二氧化碳地质封存性能的综合系统级计算模型。CO2-PENS旨在对不同地质储层中的二氧化碳捕集、运输和注入进行概率模拟。此外,还模拟了注入地质层中的二氧化碳的长期归宿,包括可能从目标储层中迁移出去的情况。模拟从每个不确定参数的概率分布中采样,随着模拟时间的推进,通过过程耦合导致全局不确定性的估计。系统级模型中的每个基础过程都构建为一个模块,随着模拟工具向更复杂的问题发展,该模块可以进行修改。这种方法对于耦合由在不同时间尺度上运行的不同方程组控制的过程至关重要。我们首先解释系统级模型的基本公式,简要讨论与系统级相连的一系列过程级模块,最后给出一个深入的示例,描述注入模块和经济模块之间的系统级耦合。该示例展示了基于物理计算注入给定数量二氧化碳所需的井数以及羽流大小的估计如何影响长期封存成本。