Wang Shuang, Cheng Qinglin, Gan Yifan, Li Qibin, Liu Chao, Sun Wei
Key Laboratory of Ministry of Education for Enhancing the Oil and Gas Recovery Ratio, Northeast Petroleum University, Daqing 163318, China.
CNPC Research Institute of Safety and Environment Technology, Beijing 102206, China.
Molecules. 2022 Jul 11;27(14):4432. doi: 10.3390/molecules27144432.
To explore the influence of different wax components and the shear effect exerted by the pump and pipe wall in the process of crude oil pipeline transportation on the microbehavior of wax aggregation in crude oil at low temperatures, molecular dynamics models of binary and multivariate systems of crude oil with different wax components are established in this paper. The simulation results are compared with the existing experimental results and the NIST database to verify the rationality and accuracy of the models. By using the established binary model to simulate four crude oil systems containing different wax components, it can be found that the longer the wax molecular chain, the more easily the wax molecules aggregate. The influence of temperature on the aggregation process of wax molecules with different chain lengths is also studied. The lower the temperature, the greater the difference in wax molecular aggregation degree caused by the difference in molecular chain length. Nonequilibrium molecular dynamics is used to simulate the shear process of a multivariate system of crude oil, and the micromechanisms of the shear effect on the aggregation process of wax molecules are studied. Shearing can destroy the stable structure of crude oil, resulting in the orientation and conformational transformation of wax molecules, and obtaining the region of wax molecules sensitive to temperature and shear effects, the temperatures of which are below the wax precipitation point and the shear rate of which is lower than the maximum shear rate to prevent the molecular structure from being destroyed. At the same time, the sensitivity of wax components with different chain lengths to the shear effect is studied. The research results provide theoretical guidance for ensuring the safe and economic operation of waxy crude oil production.
为探究不同蜡组分以及原油管道输送过程中泵和管壁施加的剪切作用对低温下原油中蜡聚集微观行为的影响,本文建立了具有不同蜡组分的原油二元和多元体系的分子动力学模型。将模拟结果与现有实验结果及美国国家标准与技术研究院(NIST)数据库进行比较,以验证模型的合理性和准确性。通过使用所建立的二元模型模拟四种含不同蜡组分的原油体系,发现蜡分子链越长,蜡分子越容易聚集。还研究了温度对不同链长蜡分子聚集过程的影响。温度越低,分子链长度差异导致的蜡分子聚集程度差异越大。采用非平衡分子动力学模拟原油多元体系的剪切过程,研究剪切作用对蜡分子聚集过程的微观机制。剪切会破坏原油的稳定结构,导致蜡分子的取向和构象转变,并得到对温度和剪切作用敏感的蜡分子区域,其温度低于蜡析出点且剪切速率低于防止分子结构被破坏的最大剪切速率。同时,研究了不同链长蜡组分对剪切作用的敏感性。研究结果为确保含蜡原油生产的安全经济运行提供了理论指导。