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Mechanism and method for controlling low-temperature rheology of water-based drilling fluids in deepwater drilling

机译:深水钻井水基钻井液低温流变的机理及方法

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In deepwater oil and gas drilling, water-based drilling fluids (WBDFs) apparently thicken at a low temperature (usually 4 degrees C), causing lost circulation, high flow resistance, and leakage of drilling fluid from the shaking screen. In this study, the theological properties of aqueous suspensions containing different components were tested from 4 to 75 degrees C. Furthermore, the influencing mechanism of a low temperature on the rheology of WBDFs was comprehensively analyzed, and a basic method for controlling low-temperature rheology was proposed. The results showed that all the aqueous suspensions exhibited thickening at a low temperature. The thickening of WBDF at a low temperature could be attributed to the intrinsic feature of water, edge-to-edge and edge-to-face attraction bond structures formed by clay particles, and remarkable polymer molecular entanglement. The development of a rheology modifier that increases the theology at a high temperature while does not work at a low temperature, optimization of the solid components including bentonites and weight materials, rational design of the molecular structure of polymers, and selection of the additives that do not cause remarkable thickening can help to control the low-temperature rheology of WBDF. Based on this method, a thermosensitive copolymer rheological modifier and a low-molecular-weight coating agent were developed, and two high performance WBDFs were optimized. Their rheological properties were found to be more stable than those of the three typical WBDFs over a wide temperature range from 4 to 75 degrees C. Therefore, the rheology control method proposed in this study can help to design a WBDF with good low-temperature rheology.
机译:在深水油气钻井中,水性钻井液(WBDF)在低温(通常4℃)下显然变稠,导致循环,高流动阻力和钻孔流体泄漏。在该研究中,从4至75℃下测试含有不同组分的水性悬浮液的神学性质。此外,综合分析了低温对WBDF的流变学的影响机制,并进行了控制低温流变的基本方法提出。结果表明,所有水性悬浮液在低温下表现得增稠。 WBDF在低温下的增厚可归因于由粘土颗粒形成的水,边缘到边缘和边缘到面吸引粘合结构的固有特征,以及显着的聚合物分子纠缠。流变改性剂的开发,使高温下的神学增加,同时在低温下不起作用,优化包括膨润土和重量材料的固体组分,聚合物的分子结构的合理设计,以及选择的添加剂不会引起显着的增厚可以有助于控制WBDF的低温流变学。基于该方法,开发了热敏共聚物流变改性剂和低分子量涂布剂,优化了两种高性能的WBDF。发现它们的流变性质比4至75℃的宽温度范围内的三种典型WBDF的流变性能更稳定。因此,本研究中提出的流变控制方法可以帮助设计具有良好低温流变学的WBDF 。

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