Experimental study and recognition of natural gas hydrate chemical reagent - CO2 exploitation

Hai-xiang Zhang, Xin Lv, Li Li, Shufen Liu, Ji Li
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Abstract

Abstract In order to solve the problems of slow replacement rate and low degree of substitution in the process of CO2 displacement by natural gas hydrate, a method of chemical reagent-CO2 displacement combined mining experiment was proposed. Taking the thermodynamic methanol inhibitor as an example, three groups of experiments were carried out: critical temperature pressure condition for CH4 decomposition at different methanol concentrations, CH4 hydrate decomposition under the condition of methanol reagent at 30% concentration, and methanol reagent-CO2 combined mining. Experiments show that: (1) The concentration of methanol plays a decisive role in hydrate recovery. Methanol reagent has the property of highly reducing the formation temperature of hydrate. Methanol solution concentration is positively correlated with the critical temperature drop of hydrate decomposition and formation pressure. (2) The methanol solution decomposition of hydrate can be roughly divided into three stages: the initial stage of rapid decomposition, the competitive stage of hydrate decomposition and stable transformation, and the stable stage of decomposition. Through experimental simulation, it is concluded that formation pressure is a direct factor affecting the decomposition ability of methanol reagent to hydrate. By changing formation pressure, the rate of CH4 hydrate recovery can be improved. (3) A higher hydrate decomposition rate can be obtained based on the methanol reagent-CO2 displacement mining method. In the action of the methanol reagent, the subsequent injection of CO2 still promotes the decomposition of CH4, that is, the displacement of CO2 hydrate after the decomposition of the hydrate based on the methanol reagent is feasible. The research results are of great significance especially for large-scale mine test mining of permafrost natural gas hydrate chemical reagent method.
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天然气水合物化学试剂CO2开采的实验研究与认识
摘要为了解决天然气水合物置换CO2过程中置换速率慢、置换程度低的问题,提出了化学试剂-CO2置换联合开采试验方法。以热力学甲醇抑制剂为例,进行了不同甲醇浓度分解CH4的临界温度压力条件、30%浓度甲醇试剂分解CH4水合物条件、甲醇试剂- co2联合开采三组实验。实验表明:(1)甲醇浓度对水合物回收起决定性作用。甲醇试剂具有高度降低水合物形成温度的特性。甲醇溶液浓度与水合物分解临界温度降和地层压力呈正相关。(2)水合物的甲醇溶液分解大致可分为快速分解的初始阶段、水合物分解稳定转化的竞争阶段和分解稳定阶段三个阶段。通过实验模拟,得出地层压力是影响甲醇试剂水合物分解能力的直接因素。通过改变地层压力,可以提高CH4水合物的采收率。(3)甲醇试剂- co2置换采矿法可获得较高的水合物分解率。在甲醇试剂的作用下,后续注入CO2仍促进了CH4的分解,即基于甲醇试剂的水合物分解后置换CO2水合物是可行的。研究成果对多年冻土天然气水合物化学试剂法的大规模矿山试验开采具有重要意义。
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