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A new, fully coupled, reaction-transport-mechanical approach to modeling the evolution of natural gas reservoirs in the Piceance Basin.

机译:一种全新的,完全耦合的反应-传输-机械方法,用于对Piceance盆地天然气储层的演化进行建模。

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The Piceance Basin is highly compartmented, and predicting the location and characteristics of producible reservoirs is difficult. Gas generation is an important consideration in quality and size of natural gas reserves, but it also may contribute to fracturing, and hence the creation of the reservoirs in which it is contained. The purpose of this dissertation is to use numerical modeling to study the evolution of these unconventional natural gas reservoirs in the Piceance Basin.; In order to characterize the scale and structure of compartmentation in the Piceance Basin, a set of in-situ fluid pressure data were interpolated across the basin and the resulting fluid pressure distribution was analyzed. Results show complex basin- and field-scale compartmentation in the Upper Cretaceous units. There are no simple correlations between compartment location and such factors as stratigraphy, basin structure, or coal thickness and maturity.; To account for gas generation in the Piceance Basin, a new chemical kinetic approach to modeling lignin maturation is developed, based primarily on structural transformations of the lignin molecule observed in naturally matured samples. This model calculates mole fractions of all species, functional group fractions, and elemental weight percents. Results show reasonable prediction of maturities at other sites in the Piceance Basin for vitrinite reflectance up to about 1.7 %Ro. The flexible design of the model allows it to be modified to account for compositionally heterogeneous source material.; To evaluate the role of gas generation in this dynamical system, one-dimensional simulations have been performed using the CIRFB reaction-transport-mechanical (RTM) simulator. CIRFB accounts for compaction, fracturing, hydrocarbon generation, and multi-phase flow. These results suggest that by contributing to overpressure, gas generation has two important implications: (1) gas saturation in one unit affects fracturing in other units, thereby contributing to the creation of flow conduits through which gas may migrate; and (2) gas saturation helps sustain overpressure during uplift and erosion, allowing fractures to remain open. As the model simulates the timing and geometry of gas generation and migration relative to that of the development of reservoirs, these results have important implications for the prediction of producible reservoirs.
机译:Piceance盆地是高度分隔的,很难预测可生产油藏的位置和特征。天然气的产生是天然气储量质量和规模的重要考虑因素,但它也可能有助于压裂,因此会产生包含天然气的储层。本文的目的是利用数值模型研究皮森斯盆地这些非常规天然气藏的演化。为了表征Piceance盆地隔层的规模和结构,在整个盆地内插了一组原位流体压力数据,并分析了由此产生的流体压力分布。结果表明,在上白垩统单元内有复杂的盆地和田间尺度的分隔。舱室位置与诸如地层,盆地结构或煤层厚度和成熟度等因素之间没有简单的关联。为了说明Piceance盆地中的天然气生成,主要基于自然成熟样品中观察到的木质素分子的结构转变,开发了一种用于模拟木质素成熟的新化学动力学方法。该模型计算所有物种的摩尔分数,官能团分数和元素重量百分比。结果表明,对Piceance盆地其他地点的成熟度进行了合理的预测,使镜质体反射率达到Ro约1.7%。该模型的灵活设计允许对其进行修改以解决成分异质的原始材料。为了评估气体生成在该动力学系统中的作用,已使用CIRFB反应-传输-机械(RTM)仿真器进行了一维仿真。 CIRFB负责压实,压裂,生烃和多相流。这些结果表明,通过造成超压,气体的产生具有两个重要的含义:(1)一个单元中的气体饱和度会影响其他单元中的压裂,从而有助于形成气体可以通过其流动的流道; (2)气体饱和度有助于在隆起和侵蚀过程中维持超压,使裂缝保持打开状态。由于该模型模拟了相对于储集层开发的天然气产生和运移的时间和几何形状,因此这些结果对可生产储层的预测具有重要意义。

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