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Phase Behaviour and Viscosity of Bitumen-CO2/Light Hydrocarbon Mixtures at Elevated Temperatures: A Cold Lake Case Study

机译:升高温度下沥青-CO2 /轻烃混合物的相行为和粘度:冷湖案例研究

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Co-injection of CO2 or light hydrocarbons with steam in the SAGD process may improve SAGD efficiency and lead to lower greenhouse gas emissions through reduced Steam Oil Ratios (SORs). Various additives are postulated to have differing effects on bitumen recovery, depending on the nature of the reservoir, the operating conditions, and the API gravity of the oil. A PVT study was conducted to investigate the phase behaviour of CO2-, C3-, and C4-bitumen systems at varying concentrations, representing the edge of a SAP steam chamber with the expected temperature range of 70°C to 160°C. A produced and dewatered bitumen sample was collected from the Cenovus Osprey Pilot in the Cold Lake oil sands region and characterized. Constant Composition Expansion (CCE) experiments were conducted on solvent-bitumen systems in the temperature range of 70°C to 160°C. Filtration tests were also conducted at high temperature and reservoir pressure to investigate the effect of solvent type and concentration on asphaltene precipitation. A Peng-Robinson Equation of State (PR-EOS) model was calibrated to measured data for CO2-, C3-, and C4-bitumen systems. Viscosity of the bitumen saturated with CO2, C3, and C4 was measured with an electromagnetic-based viscometer elevated temperatures. Phase equilibrium calculations were performed using the calibrated EOS to predict the solubility of the solvents in bitumen. A correlation was fitted to the measured viscosity data to predict the liquid phase viscosity as a function of solvent solubility and temperature for each solvent. From the CCE tests, two equilibrium phases (i.e., liquid and vapour) were observed for the C3- and CO2-bitumen systems. Three equilibrium phases were observed for the C4-bitumen system at high C4 concentrations. These three phases include a bitumen-rich heavy oil phase, a solvent-rich lighter oil phase, and a vapour phase. Due to the extracting/condensing mechanism and asphaltene precipitation, the bitumen- rich phase formed in C3-bitumen system was lighter than the one in C4-bitumen system. Filtration tests showed more asphaltene precipitation by C3 and C4 dissolution than CO2. Moreover, C3 has more potential for asphaltene precipitation than C4. Viscosity measurements showed that dissolution of C3 and C4 in bitumen resulted in greater viscosity reduction than CO2 dissolution. This difference was more pronounced at lower temperatures. The highest C4 solubility in bitumen and C4 potential for forming a C4-rich liquid phase showed stronger condensing and extracting effect of C4 than C3 and CO2 in solvent-bitumen interactions. Moreover, C4 lead to more bitumen swelling than C3 and CO2. EOS predictions and viscosity measurements indicated that increasing the solvent concentration in a solvent-bitumen system beyond a defined Threshold Solvent Concentration (TSC) has an insignificant effect on solvent solubility and bitumen viscosity reduction.
机译:在SAGD工艺中共注入CO 2或轻质烃,可以通过降低的蒸汽油比(SOR)降低温室气体排放,导致更低的温室气体排放。根据储层,操作条件和油的API重力,分发各种添加剂对沥青回收产生不同的影响。进行PVT研究以研究不同浓度的CO2-,C3-和C4-沥青系统的相行为,表示SAP蒸汽室的边缘,其预期温度范围为70℃至160℃。从冷湖油砂区域中的Cenovus Osprey试点中收集生产和脱水的沥青样品,并表征。在70℃至160℃的温度范围内对溶剂 - 沥青系统进行恒定的组成膨胀(CCE)实验。还在高温和储层压力下进行过滤试验,以研究溶剂类型和浓度对沥青质沉淀的影响。状态(PR-EOS)模型的PENG-Robinson方程被校准为CO 2,C3-和C4沥青系统的测量数据。用基于电磁的粘度计升高的温度测量饱和CO 2,C3和C4的沥青的粘度。使用校准的EOS进行相平衡计算以预测溶剂在沥青中的溶解度。将相关性拟合到测量的粘度数据中以预测每种溶剂的溶剂溶解度和温度的函数的液相粘度。从CCE测试,对于C3和CO 2沥青系统,观察到两个平衡相(即液体和蒸气)。在高C4浓度下对C4-沥青系统观察到三个平衡阶段。这三个阶段包括富含沥青的重油相,富含溶剂的较轻的油相和气相。由于提取/冷凝机制和沥青质沉淀,C3-沥青系统中形成的富含沥青相比C4沥青系统中的富含相。过滤试验显示比CO 2的C3和C4溶解更多的沥青质沉淀。此外,C3具有比C4的沥青质沉淀更多的潜力。粘度测量表明,沥青中C3和C4的溶解导致比CO 2溶解更大的粘度降低。这种差异在较低温度下更明显。沥青中的最高C 4溶解度和形成C4富液相的C4电位,表明C4的溶剂 - 沥青相互作用中的C4和CO 2具有更强的冷凝和提取效果。此外,C4导致比C3和CO 2更沥青。 EOS预测和粘度测量表明,将超出限定阈值溶剂浓度(TSC)的溶剂沥青系统中的溶剂浓度增加对溶剂溶解度和沥青粘度降低的微不足道。

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