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Numerical modelling of fluids mixing, heat transfer and non-equilibrium redox chemical reactions in fluid-saturated porous rocks

机译:饱和流体岩石中流体混合,传热和非平衡氧化还原化学反应的数值模型

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摘要

Non-equilibrium redox chemical reactions of high orders are ubiquitous in fluid-saturated porous rocks within the crust of the Earth. The numerical modelling of such high-order chemical reactions becomes a challenging problem because these chemical reactions are not only produced strong non-linear source/sink terms for reactive transport equations, but also often coupled with the fluids mixing, heat transfer and reactive mass transport processes. In order to solve this problem effectively and efficiently. it is desirable to reduce the total number of reactive transport equations with strong nonlinear source/sink terms to a minimum in a computational model. For this purpose, the concept of the chemical reaction rate invariant is used to develop a numerical procedure for dealing with fluids mixing, heat transfer and non-equilibrium redox chemical reactions in fluid-saturated porous rocks. Using the proposed concept and numerical procedure, only one reactive transport equation, which is used to describe the distribution of the chemical product and has a strong non-linear source/sink term, needs to be solved for each of the non-equilibrium redox chemical reactions. The original reactive transport equations of the chemical reactants with strong non-linear source/sink terms are turned into the conventional mass transport equations of the chemical reaction rate invariants without any non-linear source/sink terms. A testing example, for some aspects of which the analytical solutions are available, is used to validate the proposed numerical procedure. The related numerical solutions have demonstrated that (1) the proposed numerical procedure is useful and applicable for dealing with the coupled problem between fluids mixing, heat transfer and non-equilibrium redox chemical reactions of high orders in fluid-saturated porous rocks; (2) the interaction between the solute diffusion, solute advection and chemical kinetics is an important mechanism to control distribution patterns of chemical products in an ore-forming process; and (3) if the pore-fluid pressure gradient is lithostatic, it is difficult for the chemical equilibrium to be attained within permeable cracks and geological faults within the crust of the Earth. Copyright (c) 2005 John Wiley & Sons, Ltd.
机译:高阶的非平衡氧化还原化学反应在地壳内流体饱和的多孔岩石中无处不在。这种高阶化学反应的数值建模成为一个具有挑战性的问题,因为这些化学反应不仅会为反应输运方程生成强大的非线性源/汇项,而且还经常与流体混合,传热和反应质量输运相关联流程。为了有效,有效地解决这个问题。希望在计算模型中将具有强非线性源/汇项的反应输运方程的总数减少到最小。为此,使用化学反应速率不变性的概念来开发一种数值程序,用于处理流体饱和的多孔岩石中的流体混合,传热和非平衡氧化还原化学反应。使用提出的概念和数值程序,对于每个非平衡氧化还原化学物质,只需求解一个用于描述化学产品分布并且具有很强的非线性源/吸收项的反应性输运方程。反应。具有强非线性源/汇项的化学反应物的原始反应输运方程式变成了没有任何非线性源/汇项的化学反应速率不变量的常规质量输运方程式。对于某些方面可以使用分析解决方案的测试示例,用于验证所提出的数值程序。相关的数值解证明:(1)所提出的数值程序对于处理流体饱和的多孔岩中流体的混合,传热与高阶非平衡氧化还原化学反应之间的耦合问题是有用的。 (2)溶质扩散,溶质对流与化学动力学之间的相互作用是控制成矿过程中化学产物分布规律的重要机制; (3)如果孔隙流体压力梯度是岩石静压力,那么在地壳内的渗透性裂缝和地质断裂内很难达到化学平衡。版权所有(c)2005 John Wiley&Sons,Ltd.

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