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In-situ Pore Plugging Using Nanosilica Based Fluid System for Gas Shutoff

机译:使用基于纳米硅的流体系统进行原位孔隙堵塞气体截止

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A nanosilica based fluid system was evaluated for forming in-situ glass-like material inside matrix for permanent gas shutoff. This novel method involves two steps; firstly, pumping low viscosity aqueous nanosilica mixture into the formation and allowing it to gel up. Secondly, gas production dehydrates nanosilica to form glass-like material inside the matrix. For this paper, a nanosilica-based fluid system was assessed for pumping strategy and performance evaluation. A nanosilica based fluid system consists of a mixture of colloidal silica and activators. It possesses low viscosity, which assists in deeper penetration during placement. With time and temperature, it can lead to in-situ gelation to form a rigid gel to block the pore space. Gas production can dehydrate nanosilica gel to form in-situ glass-like material inside formation porosity for permanent gas shutoff. The nanosilica based fluid system was optimized using gelation tests and core flooding tests to evaluate its performance under high-pressure, high-temperature conditions. Formation of in-situ glass-like material inside pores was analyzed using a scanning electron microscope (SEM). The gelation time can be tailored by varying the activator type and concentration to match the field operation requirements. Kinetics of colloidal silica gelation at elevated temperatures showed faster viscosity buildup. Before gelation, the viscosity for the nanosilica based fluid system was recorded less than 5 cp at a 10 1/s shear rate, whereas the viscosity was increased more than 500 cp at a 10 1/s shear rate. Using core flow tests, N2 gas permeability of the Berea sandstone core was completely plugged after pumping the 5-pore volume nanosilica based fluid system at 200°F. During nanosilica based fluid system injection through the core, differential pressure was increased to only 10 psi showing better injectivity. The SEM images showed the presence of glass like material filling the porosity, which showed in-situ generation of glass-like material inside pores. The nanosilica based fluid system has a low viscosity and can penetrate deeper into the formation matrix before transforming into a gel. Undesirable gas flow can dehydrate nanosilica gel to form in-situ glass-like material inside matrix for permanent sealing. This is environmentally friendly and can serve as an alternative to currently used conformance polymers for gas shutoff applications.
机译:评价基于纳米碱基的流体系统,用于在基质内形成原位玻璃状材料,用于永磁气体截止。这种新方法涉及两个步骤;首先,将低粘度含有纳米硅烷水溶液泵入形成并允许其凝胶。其次,气体生产脱水纳米硅酸盐在基质内形成玻璃状材料。为此,评估了纳米滑液的流体系统,用于泵送策略和性能评估。基于纳米碱的流体系统由胶体二氧化硅和活化剂的混合物组成。它具有低粘度,在放置期间有助于更深入的渗透。随着时间和温度,它可以导致原位凝胶化形成刚性凝胶以阻挡孔隙空间。气体生产可以使纳米硅凝胶脱水,形成原位玻璃状材料,内部形成孔隙率,用于永磁源。使用胶凝试验和核心泛滥试验优化了纳米碱基流体系统,以评估其在高压,高温条件下的性能。使用扫描电子显微镜(SEM)分析孔内原位玻璃状材料的形成。通过改变激活剂类型和浓度来匹配现场操作要求,可以根据凝胶化时间来定制。胶体硅胶在升高温度下的动力学显示出更快的粘度堆积。在凝胶化之前,以101 / s的剪切速率将纳米菌的流体系统的粘度记录小于5cp,而粘度以101 / s的剪切速率增加500pc。使用核心流量试验,在泵送200°F的5孔体积纳米硅藻的流体系统之后,完全堵塞了Berea砂岩芯的N2气体渗透性。在基于纳米碱的流体系统期间通过芯注射,差压增加到仅10psi显示出更好的注射性。 SEM图像显示出存在填充孔隙率的玻璃的存在,这在孔内出于原位产生的玻璃状材料。基于纳米硅的流体系统具有低粘度,并且在将凝胶中转化到凝胶之前可以深入地渗透到地层基质中。不希望的气流可以使纳米硅凝胶脱水以形成原位玻璃状材料,用于永久密封。这是环境友好的,可以作为当前用于气体关闭应用的替代聚合物的替代品。

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