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Advanced Polymer-Modified Cements for Subsurface Applications

机译:用于地下应用的先进的聚合物改性水泥

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Wellbore failure at the cement lining is one of the most common drivers of reservoir intervention during geothermal energy and unconventional oil/gas production. The main sources for cement fracturing are chemical, mechanical, and thermal stresses. As a result, expensive and time-intensive production shutdowns and repairs are required. Intervention costs average $1.5million per wellbore without taking into consideration the economic losses as a result of production stoppage, which can be several million dollars depending on the time frame of plant in non-production mode. To address these problems, we developed a thermally stable polymer-cement composite with self-healing properties while maintaining the required rheological (during pumping) and mechanical properties of typical wellbore cement. In this work we report on the composition and mineralogy, the mechanical properties and self-healing ability of these novel cement composites as compared to standard wellbore cement. The self-healing capability of the composite materials was demonstrated by the consistent permeability reduction of mechanically-induced fractures in the 0.3-0.5mm aperture range. These polymer-cement composite materials could represent a definite solution to wellbore failure, production stoppage and reservoir intervention during geothermal energy production.
机译:水泥衬里的Wellbore失败是地热能和非传统石油/天然气生产过程中储层干预最常见的驱动因素之一。水泥压裂的主要来源是化学,机械和热应力。结果,需要昂贵且时间密集的生产停工和维修。干预费用平均每井口12500万美元,而不考虑生产停止的经济损失,这取决于植物中的非生产模式的时间框架。为了解决这些问题,我们开发了一种热稳定的聚合物 - 水泥复合材料,具有自愈合特性,同时保持所需的流变学(在泵送期间)和典型井眼水泥的机械​​性能。在这项工作中,我们报告了与标准井眼水泥相比这些新型水泥复合材料的组合物和矿物学,机械性能和自我愈合能力。通过在0.3-0.5mm孔径范围内的机械诱导的骨折的一致渗透性降低来证明复合材料的自愈能力。这些聚合物 - 水泥复合材料可以代表井眼失效,生产停止和地热能生产中的水库干预的一定的解决方案。

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