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Experimental Investigation and Performance Evaluation of Modified Viscoelastic Surfactant (VES) as a New Thickening Fracturing Fluid

机译:改性粘弹性表面活性剂(VES)作为一种新型增稠压裂液的实验研究

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摘要

In hydraulic fracturing, fracturing fluids are used to create fractures in a hydrocarbon reservoir throughout transported proppant into the fractures. The application of many fields proves that conventional fracturing fluid has the disadvantages of residue(s), which causes serious clogging of the reservoir’s formations and, thus, leads to reduce the permeability in these hydrocarbon reservoirs. The development of clean (and cost-effective) fracturing fluid is a main driver of the hydraulic fracturing process. Presently, viscoelastic surfactant (VES)-fluid is one of the most widely used fracturing fluids in the hydraulic fracturing development of unconventional reservoirs, due to its non-residue(s) characteristics. However, conventional single-chain VES-fluid has a low temperature and shear resistance. In this study, two modified VES-fluid are developed as new thickening fracturing fluids, which consist of more single-chain coupled by hydrotropes (i.e., ionic organic salts) through non-covalent interaction. This new development is achieved by the formulation of mixing long chain cationic surfactant cetyltrimethylammonium bromide (CTAB) with organic acids, which are citric acid (CA) and maleic acid (MA) at a molar ratio of (3:1) and (2:1), respectively. As an innovative approach CTAB and CA are combined to obtain a solution (i.e., CTAB-based VES-fluid) with optimal properties for fracturing and this behaviour of the CTAB-based VES-fluid is experimentally corroborated. A rheometer was used to evaluate the visco-elasticity and shear rate & temperature resistance, while sand-carrying suspension capability was investigated by measuring the settling velocity of the transported proppant in the fluid. Moreover, the gel breaking capability was investigated by determining the viscosity of broken VES-fluid after mixing with ethanol, and the degree of core damage (i.e., permeability performance) caused by VES-fluid was evaluated while using core-flooding test. The experimental results show that, at pH-value ( ), 30 (mM) VES-fluid (i.e., CTAB-CA) possesses the highest visco-elasticity as the apparent viscosity at zero shear-rate reached nearly to 10 (mPa·s). Moreover, the apparent viscosity of the 30 (mM) CTAB-CA VES-fluid remains 60 (mPa·s) at (90 C) and 170 (s ) after shearing for 2-h, indicating that CTAB-CA fluid has excellent temperature and shear resistance. Furthermore, excellent sand suspension and gel breaking ability of 30 (mM) CTAB-CA VES-fluid at 90 ( C) was shown; as the sand suspension velocity is 1.67 (mm/s) and complete gel breaking was achieved within 2 h after mixing with the ethanol at the ratio of 10:1. The core flooding experiments indicate that the core damage rate caused by the CTAB-CA VES-fluid is ( ), which indicate that it does not cause much damage. Based on the experimental results, it is expected that CTAB-CA VES-fluid under high-temperature will make the proposed new VES-fluid an attractive thickening fracturing fluid.
机译:在液压压裂中,压裂液用于在整个运输的支撑剂进入裂缝中产生烃储层中的骨折。许多领域的应用证明,常规压裂液具有残留物的缺点,这导致储层的形成严重堵塞,从而导致这些碳氢化合物储层中的渗透性降低。清洁(且经济效益)压裂液的开发是液压压裂过程的主要驱动器。目前,粘弹性表面活性剂(VES)-Fluid是由于其非残留物特征,因此是非常规储层的液压压裂发育中最广泛使用的压裂液之一。然而,传统的单链Ves流体具有低温和抗剪切性。在该研究中,两种改性的VES流体被开发为新的增稠压裂液,其通过不共价相互作用由水辐射(即离子有机盐)偶联的更多单链。通过将长链阳离子表面活性剂十六烷基铵(CTAB)与有机酸配制的混合的长链阳离子表面活性剂(CTAB)进行了这种新的开发,其是柠檬酸(Ca)和马来酸(MA)(3:1)和(2: 1)分别。作为一种创新的方法CTAB和Ca以获得具有最佳性质的溶液(即,CTAB基VES流体),用于压裂的最佳性能,并且基于CTAB的VES流体的这种行为是通过实验证实的。流变仪用于评估粘弹性和剪切速率和耐温性,同时通过测量流体中运输的支撑剂的沉降速度来研究携带携带悬架能力。此外,通过测定与乙醇混合后破碎的VES流体的粘度来研究凝胶破碎能力,并在使用核心泛滥试验的同时评估由VES流体引起的核心损伤(即渗透率)的程度。实验结果表明,在pH值(),30(mm)的VES-流体(即CTAB-CA)处具有最高的粘度,因为零剪切速率的表观粘度达到近10(MPA·S. )。此外,在剪切2-H后,30(mm)Ctab-Ca Ves-inder的表观粘度在(90℃)和170(S)之后保持60(MPa·s),表明CTAB-CA流体具有优异的温度和抗剪切抗性。此外,示出了优异的砂悬浮液和30(c)的CTAB-CA VES流体的凝胶破碎能力;当砂悬浮速度为1.67(mm / s)时,在与乙醇的比例为10:1的比例中,在2小时内实现完全凝胶破碎。核心泛滥实验表明,CTAB-CA VES流体造成的核心损伤率是(),表明它不会造成大量损坏。基于实验结果,预计高温下的CTAB-CA VES流体将使提出的新VES流体成为一种有吸引力的增厚压裂液。

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