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Influencing Factors of the Microstructure and Macroscopic Performance of Foamed Cement

机译:影响泡沫水泥微观结构和宏观性能的影响因素

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Foamed cement has provided zonal isolation in oil and gas wells since the 1980s. However, the lack of an experimental technique that fully characterizes foamed cement properties is limiting its application. This study uses X-ray microcomputed tomography (micro-CT) to elucidate relationships between the foaming process, foamed cement microstructure or morphology, and macroscopic performance of the material's mechanical properties. During this study, foamed cement slurries were prepared using a traditional multiblade laboratory blender to investigate the influencing factors on foamed cement properties. The influences of shear rate, mixing energy, surfactant concentration, and base cement slurry composition on the properties of set foamed cement were specifically studied. A MACS? multiple analysis cement system was also used to study the gas pressure and blender geometry effect on test results. Approximately 25 foamed cement slurries with foam qualities (FQs) ranging from 20 to 80% were produced. The microstructure and macroscopic performance of the foamed cement were quantified using micro-CT analysis and uniaxial compression tests. Test results indicate there is an important mixing energy threshold value that needs to be supplied to produce stable foamed cement. The maximum achievable FQ is determined by the shear rate during the foaming process. Once the minimum qualifications for obtaining stable foamed cement and a target FQ are met, a further increase in mixing energy or shear rate has little effect on the foamed cement microstructure or macroscopic performance. However, excessive mixing energy supplied at a high shear rate can lead to a higher initial slurry temperature, a less homogenous microstructure, and relatively poor mechanical properties after the foamed cement has set. The primary determining factors of the foamed cement microstructure are FQ and gas pressure. In samples generated using the multiblade laboratory blender at atmospheric conditions, the median gas bubble size increased significantly from 116 urn at 20% FQ to 1400 urn at 80% FQ. The median gas bubble size in the 20% FQ samples generated using the MACS device decreased significantly when gas pressure increased from 133 urn at atmospheric pressure to 39 um at 1,000 psig.
机译:自20世纪80年代以来,泡沫水泥为石油和天然气井提供了区间隔离。然而,缺乏泡沫水泥特性的完全表征的实验技术限制了其应用。该研究使用X射线微仿性断层扫描(MICRO-CT)来阐明发泡过程,发泡水泥微观结构或形态之间的关系,以及材料的机械性能的宏观性能。在该研究期间,使用传统的倍闻实验室搅拌器制备泡沫水泥浆料,以研究泡沫水泥性能的影响因素。研究了剪切速率,混合能,表面活性剂浓度和基础水泥浆料组合物对设定泡沫水泥的性能的影响。 MAC?多种分析水泥系统还用于研究气体压力和搅拌器几何效应对测试结果。产生的泡沫质量(FQs)约为20至80%的25个具有泡沫品质的泡沫水泥浆料。使用微CT分析和单轴压缩试验量化泡沫水泥的微观结构和宏观性能。测试结果表明需要供应的重要混合能量阈值,以产生稳定的泡沫水泥。最大可实现的FQ由发泡过程中的剪切速率决定。一旦满足获得稳定发泡水泥和靶FQ的最低资格,混合能量或剪切速率的进一步增加对泡沫水泥微观结构或宏观性能影响不大。然而,以高剪切速率供应的过量混合能量可以导致初始浆液温度较高,较小的均匀微观结构,并且在发泡水泥设定后的相对较差的机械性能。发泡水泥微观结构的主要确定因子是FQ和气体压力。在在大气条件下使用倍线实验室搅拌器产生的样品中,中值气泡尺寸在80%FQ的116 URN下从116 URN显着增加到80%。使用MACS器件产生的20%FQ样品中的中位气泡尺寸在气压从大气压下增加到1,000psig的39μm,气体压力从133瓮增加到39μm时显着降低。

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