地球动力学

IF 1 Q3 GEOCHEMISTRY & GEOPHYSICS
Y. Khokha, M. V. Yakovenko, O. V. Lubchak
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To calculate the equilibrium in the kerogen/gas system and obtain reliable results, it is necessary to apply a new model, without using the model structures of kerogen. We have proposed and described in detail a method of applying the Jaynes' formalism and maximizing entropy method to calculate the change in the composition of the kerogen/gas system with geodynamic regimes changing. Software in the Excel macros form and a compiled dynamic library, written in Visual Basic language, was created for calculations. Results. To verify the reliability of the proposed method and algorithm, we calculated the composition of the geochemical system, consisting of type II kerogen, methane to pentane hydrocarbons (including isomers), carbon dioxide, water and hydrogen sulfide. The calculation result is the molar fractions of hydrocarbon components and additive groups that make up kerogen, for different depths of the earth's crust. 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引用次数: 0

摘要

意图我们的研究主要目的是证明熵最大化方法用于计算由固体和气体有机物质组成的地球化学系统组成。改变地球动力学状况是这些系统中化合物之间元素再分配的驱动力。根据热力学装置,影响这种再分配的主要因素是压力、温度和元素的初始数量。方法。吉布斯能量最小化、熵最大化、独立化学反应常数、拉格朗日待定乘数法、牛顿-拉斐逊迭代法。众所周知,以多种类型的干酪根为主要代表的有机质化石是一种结构不规则的聚合物,无法明确描述。为了计算干酪根/天然气系统中的平衡并获得可靠的结果,有必要在不使用干酪根模型结构的情况下应用一个新的模型。我们提出并详细描述了一种应用Jaynes公式和最大化熵方法来计算干酪根/天然气系统成分随地球动力学状态变化的方法。Excel宏形式的软件和用Visual Basic语言编写的编译动态库是为计算而创建的。后果为了验证所提出的方法和算法的可靠性,我们计算了地球化学系统的组成,包括II型干酪根、甲烷-戊烷烃(包括异构体)、二氧化碳、水和硫化氢。计算结果是构成干酪根的碳氢化合物组分和添加剂组分在地壳不同深度的摩尔分数。计算了三种热通量:40、75和100 mW/m2,并考虑了岩石静压力。科学新颖性。研究表明,在一个封闭的热力学系统中,以复杂方式变化的地球动力学状况影响着气体和干酪根之间的元素分布;通过熵最大化方法对干酪根/天然气系统行为进行建模,所提供的结果与研究II型干酪根在不同成熟阶段的结构并不矛盾;与II型干酪根平衡的烃类气体浓度变化特征表明“油窗”假说与平衡热力学假设不一致。实际意义。熵最大化方法可以成功地用于计算由有机化合物组成的各种地球化学系统的组成。该方法适用于测定干酪根、沥青、腐殖酸等不规则聚合物与有机和无机气体和液体平衡时的化学成分。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
GEODYNAMICS
Purpose. Our research main purpose is to demonstrate the use of entropy maximization method for calculating the geochemical system composition, which consist of solid and gaseous organic substances. Changing the geodynamic situation is the driving force of elements redistribution between compounds in such systems. According to thermodynamic apparatus the main factors influencing this redistribution are pressure, temperature and the initial number of elements. Methods. Gibbs energy minimizing, maximizing the entropy, independent chemical reactions constants, Lagrange's method of undetermined multipliers, Newton–Raphson iterative method. It is well known that the fossilized organic matter, which is mainly represented by many types of kerogen, is an irregular polymer with structure, which cannot be described definitely. To calculate the equilibrium in the kerogen/gas system and obtain reliable results, it is necessary to apply a new model, without using the model structures of kerogen. We have proposed and described in detail a method of applying the Jaynes' formalism and maximizing entropy method to calculate the change in the composition of the kerogen/gas system with geodynamic regimes changing. Software in the Excel macros form and a compiled dynamic library, written in Visual Basic language, was created for calculations. Results. To verify the reliability of the proposed method and algorithm, we calculated the composition of the geochemical system, consisting of type II kerogen, methane to pentane hydrocarbons (including isomers), carbon dioxide, water and hydrogen sulfide. The calculation result is the molar fractions of hydrocarbon components and additive groups that make up kerogen, for different depths of the earth's crust. The calculations were performed for three heat fluxes: 40, 75 and 100 mW/m2, lithostatic pressure taken in account. Scientific novelty. It is established that the geodynamic situation changing in a complex way affects the distribution of elements between gases and kerogen in a closed thermodynamic system; modeling the kerogen/gas system behavior by method of entropy maximization provides results that do not contradict to study the structure of type II kerogen at different stages of maturity; the character of changes in the concentrations of hydrocarbon gases in equilibrium with type II kerogen indicates the inconsistency of the "oil window" hypothesis with the postulates of equilibrium thermodynamics. Practical significance. The entropy maximization method can be successfully used to calculate the composition of various geochemical systems consisting of organic compounds. The method is suitable for determining chemical composition of the irregular polymers, such as kerogen, bitumen, humic, in equilibrium with organic and inorganic gases and liquids.
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来源期刊
Geodynamics
Geodynamics GEOCHEMISTRY & GEOPHYSICS-
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