Thermal recovery of heavy oil reservoirs: Modeling of flow and heat transfer characteristics of superheated steam in full-length concentric dual-tubing wells

Peng Li , Xiangyu Wang , Yanyu Zhang
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Abstract

Accurately predicting the flow and heat transfer characteristics of superheated steam (SHS) in the wellbore is essential for efficiently developing heavy oil reservoirs. However, few studies have examined SHS flow in full-length concentric dual-tubing wells (CDTWs). In this paper, firstly, based on fluid dynamics and thermodynamics theories, a mathematical model for SHS flow in vertical and horizontal wellbores is proposed. Then, this model is solved using a finite difference method for spatial discretization and an iterative technique. Finally, model verification, type curve analysis, and sensitivity analysis are conducted sequentially. The results indicate that SHS temperature and pressure are independent variables, and the effect of friction energy on temperature is greater than its impact on pressure. The injection rate has a critical value, and the critical injection rates of the main controlling factors affecting the pressure drop and temperature drop of SHS in the vertical tubing are different. When the injection rate is below the critical value, the gravitational force of the SHS helps maintain high enthalpy. The SHS should be transported to the well bottom as quickly as possible. To enhance the uniform heating effect of the reservoir and improve heat utilization efficiency, a relatively small injection rate, high injection pressure, and low injection temperature are recommended. The uniformity of SHS pressure and temperature distribution in the horizontal annulus positively correlates with the uniformity of the reservoir's heat absorption rate. Achieving more uniform SHS pressure and temperature profiles in the horizontal annulus benefits the uniform heating of the reservoir.
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重油油藏的热采:全长同心双管井中过热蒸汽的流动和传热特性建模
准确预测井筒中过热蒸汽(SHS)的流动和传热特性对于高效开发重油油藏至关重要。然而,很少有研究考察过热蒸汽在全长同心双管井(CDTW)中的流动情况。本文首先以流体力学和热力学理论为基础,提出了垂直和水平井筒中 SHS 流动的数学模型。然后,使用有限差分法进行空间离散和迭代技术对该模型进行求解。最后,依次进行了模型验证、类型曲线分析和敏感性分析。结果表明,SHS 温度和压力是自变量,摩擦能对温度的影响大于对压力的影响。注入率有一个临界值,影响垂直油管中 SHS 压力降和温度降的主要控制因素的临界注入率是不同的。当注入率低于临界值时,SHS 的重力有助于保持高热焓。应尽快将 SHS 输送到井底。为了增强储层的均匀加热效果,提高热利用效率,建议采用相对较小的注入率、较高的注入压力和较低的注入温度。水平环空中 SHS 压力和温度分布的均匀性与储层吸热率的均匀性呈正相关。使水平环空的 SHS 压力和温度分布更加均匀,有利于储层的均匀加热。
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