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Impact of Inorganic Salts and Minerals on Asphaltene Stability and Inhibitor Performance

机译:无机盐和矿物对沥青质稳定性和抑制剂性能的影响

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Maintaining overall asphaltene stability is imperative for a successful flow assurance treatment program. However, complex interactions between the polar asphaltene fraction and other components in crude oil or reservoir minerals makes the stability assessment extremely challenging. These interactions can contribute towards the precipitation and subsequent deposition of unstable asphaltene clusters comprising of impurities such as paraffin, polar organics, and inorganic mineral composites. This study investigates the impact of inorganic salts and minerals on asphaltene stability and inhibitor performance efficiency. Four problematic crude oil samples having asphaltene deposition issue along with its field deposits were analyzed. Primary characterization of oil samples was conducted by measuring physicochemical properties. Crude oil and deposit samples were further evaluated by performing multiple compositional analyses like Fourier Transform InfraRed (FTIR) Spectroscopy, Carbon Chain Distribution (CCD), and X-Ray Fluorescence (XRF). Furthermore, asphaltene inhibitor performance efficiency was measured by carrying out both dispersion test analyses. Primary characterization of crude oil samples did not suggest any anomalous behavior indicative of unstable asphaltene fraction. However, the solid field deposition in the production and flow-lines were observed. Therefore, further analyses of the oil as well as the solid deposits was necessitated. The analyses revealed unusually high concentration of inorganic impurities co-precipitating out with the asphaltene fraction. In general, polar nature of asphaltene induces van der Waals force of attraction between permanent dipoles (Keesom), induced dipoles (London dispersion), and permanent with induced dipoles (Debye). Paraffin and polar organic fractions associate with asphaltene through van der Waals forces and reduces the active polar sites available for the inhibitor to interact with. Moreover, presence of ions within the salts and inorganic minerals introduce ion-ion or ion-dipole interactions, which are considerably stronger than the van der Waals forces. Thus, these interactions with ionic salts and minerals interfere with the inhibitorasphaltene interactions to a greater extent and consequently reduces the inhibitor performance efficiency significantly within laboratory screening methods. This study, for the first time, highlights detailed contribution of impurities, specifically of ionic salts and minerals originated from drilling and completion fluids or reservoir minerals, on the overall asphaltene stability and inhibitor performance efficiency. The molecular forces arising due to co-precipitation oforganic and inorganic minerals were observed to impact the asphaltene inhibitor performance considerably. Therefore, it is important to comprehend the compositional and elemental content of both crude oil and field deposit samples and accordingly select asphaltene testing methodology and modify the asphaltene inhibitor chemistry.
机译:保持整体沥青质稳定性是成功的流动保证治疗计划所必需的。然而,原油或储层矿物中的极性沥青质馏分和其他组分之间的复杂相互作用使得稳定性评估极其具有挑战性。这些相互作用可以促进沉淀和随后沉积不稳定的沥青质簇,包括杂质,例如石蜡,极性有机物和无机矿物复合材料。本研究研究了无机盐和矿物对沥青质稳定性和抑制剂性能效率的影响。分析了具有沥青质沉积问题的四种有问题的原油样品以及其现场沉积物进行了分析。通过测量物理化学性质进行油样的主要表征。通过进行傅立叶变换红外(FTIR)光谱,碳链分布(CCD)和X射线荧光(XRF)等多种成分分析进一步评估原油和沉积物样品。此外,通过进行分散试验分析来测量沥青质抑制剂性能效率。原油样品的主要表征并未表明任何具有不稳定沥青质级分的异常行为。然而,观察到生产和流线中的固体磁场沉积。因此,需要进一步分析油以及固体沉积物。分析揭示了与沥青质级分共沉淀出的异常高浓度的无机杂质。一般来说,沥青质的极性性质诱导van der Waals在永久偶极子(Keesom),诱导的偶极子(伦敦分散体)和诱导偶极子(debye)之间的偶极子系统之间的吸引力。石蜡和极性有机级分与沥青物通过范德华力赋予沥青质,减少可用于抑制剂的活性极性位点与抑制剂相互作用。此外,盐和无机矿物质内的离子存在引入离子离子或离子偶极相互作用,其比范德瓦尔斯力相当强。因此,与离子盐和矿物相互作用干扰抑制作用碱基相互作用在更大程度上,因此在实验室筛选方法中显着降低了抑制剂性能效率。本研究首次突出了杂质的详细贡献,特别是源自钻井和完井流体或储层矿物质的离子盐和矿物质的污染物,含有整体沥青质稳定性和抑制剂性能效率。观察到由于共沉淀和无机矿物的共沉淀而产生的分子力显着影响沥青质抑制剂性能。因此,重要的是要理解原油和现场沉积物样品的组成和元素含量,并因此选择沥青质试验方法,并改变沥青质抑制剂化学。

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