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鉆井液侵入紋層狀頁巖的模型

Invasion of drilling fluid into laminated shale model

  • 摘要: 井壁失穩一直是鉆井工程中的世界性技術難題,紋層狀頁巖弱面發育以及黏土礦物含量較高,導致井眼坍塌的風險增加,極大地制約了頁巖水平井的高效開發. 為了研究鉆井液在紋層狀頁巖中的侵入規律,開展了驅替實驗和核磁掃描,確定了不同驅替時間下鉆井液侵入紋層狀頁巖的深度,基于實驗結果建立了新的包含紋層侵入的紋層狀頁巖的流體侵入數學模型,在總吸水量一定的情況下,可以根據侵入時間求得鉆井液在紋層的侵入深度以及侵入量,基于實驗結果驗證了模型的準確性,采用有限元-離散元法描述鉆井液侵入過程并進行敏感性分析. 研究結果表明:在鉆井液使用量一定的條件下,鉆井液沿紋層狀頁巖油的侵入深度與侵入時間呈正向對數關系,隨著侵入時間、紋層張開度的增大,侵入深度逐漸變大,但后期增長緩慢最終趨于不變;隨著紋層數量的增加,侵入深度逐漸減小.

     

    Abstract: The wellbore instability problem has always been a global technical challenge in drilling engineering. The development of weak planes and the high clay mineral content in laminated shale increases the risk of borehole collapse. In the process of drilling construction, the invasion of a large number of drilling fluids gradually deteriorates the strength of shale oil and causes wellbore instability, leading to several engineering problems (e.g., diameter reduction, stuck drilling, and hole expansion) and greatly restricting the efficient development of shale horizontal wells. Therefore, to study the invasion characteristics of drilling fluid into laminated shale, displacement experiments and nuclear magnetic scanning were conducted to determine the depth of drilling fluid invasion into laminated shale under different displacement times. This method directly and accurately studies the process of drilling fluid invading laminated shale oil. With the increase in intrusion time, the pore sizes of small and large pores increase continuously, and the increase in various pore sizes causes the separation between the grain sizes of the rock skeleton to produce micro-cracks and eventually leads to rock failure. The influence of striation is not considered in the mathematical model established by most scholars due to the development of striation in shale oil and the fact that striation is the main advantageous channel for fluid intrusion. In this study, a new mathematical model of shale oil liquid intrusion is established by considering the joint action of end-face intrusive and striated intrusive fluids. Under constant total water absorption, the model can determine the depth of drilling fluid invasion into laminated layers and total intrusion based on the invasion time. The accuracy of the model was verified based on experimental results. The numerical model established using the finite-discrete element method is used to simulate the influence of different displacement times, different numbers of layers, and different layer openings on the invasion depth under certain displacement pressure. The results show that the depth of drilling fluid invasion into laminated shale increases logarithmically with invasion time under a fixed volume of drilling fluid. As the invasion time and the opening of the laminated layers increase, the invasion depth gradually increases, but the growth slows down in the later stages and eventually stabilizes. Moreover, the invasion depth gradually decreases as the number of laminated layers increases. The primary aim of this study is to reveal the invasion mechanism of drilling fluid into laminated shale under invasion and provide a theoretical basis for selecting safe drilling fluid density and wellbore stability.

     

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