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Theoretical and experimental fundamentals of designing promising technological equipment to improve efficiency and environmental safety of highly viscous oil recovery from deep oil reservoirs

机译:设计有前途的技术设备的理论与实验基础,提高深层油藏高度粘性油恢复的效率和环境安全性

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摘要

The development of new technological equipment for the implementation of highly effective methods of recovering highly viscous oil from deep reservoirs is an important scientific and technical challenge. Thermal recovery methods are promising approaches to solving the problem. It is necessary to carry out theoretical and experimental research aimed at developing oil-well tubing (OWT) with composite heatinsulating coatings on the basis of basalt and glass fibers. We used the method of finite element analysis in Nastran software, which implements complex scientific and engineering calculations, including the calculation of the stress-strain state of mechanical systems, the solution of problems of heat transfer, the study of nonlinear static, the dynamic transient analysis of frequency characteristics, etc. As a result, we obtained a mathematical model of thermal conductivity which describes the steady-state temperature and changes in the fibrous highly porous material with the heat loss by Stefan-Boltzmann's radiation. It has been performed for the first time using the method of computer modeling in Nastran software environments. The results give grounds for further implementation of the real design of the OWT when implementing thermal methods for increasing the rates of oil production and mitigating environmental impacts.
机译:新技术设备的开发,实现高效恢复深层水库高度粘性油的方法是一个重要的科学和技术挑战。热回收方法是解决问题的有希望的方法。有必要在玄武岩和玻璃纤维的基础上开展旨在开发油井油管(OWT)的理论和实验研究。我们利用了Nastran软件的有限元分析方法,实现了复杂的科学和工程计算,包括计算力学系统的应力 - 应变状态,传热问题的解决方案,非线性静态的研究,动态瞬态结果分析频率特性等,我们获得了热导率的数学模型,其描述了稳态温度和纤维高孔材料的变化,通过Stefan-Boltzmann的辐射进行热量损失。它首次使用Nastran软件环境中的计算机建模方法执行。结果为进一步实施了在实施热方法时进一步实施猫头鹰的真实设计,以增加石油产量和缓解环境影响。

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