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Does Higher Viscosity Improve Proppant Transport?

机译:更高的粘度改善了支撑剂吗?

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The use of high viscosity friction reducers (HVFR) as alternatives to guar-based fluids to improve proppant transport and lessen formation damage has increased rapidly. While several product options are available, the criteria for selection of a product has focused on viscosity at 300 RPM (511s-1) that meets or exceeds that of linear gel fluids. However, there has been limited data available on what the target viscosity should be, how it influences the fluid's ability to transport sand, and the potential for damage to proppant conductivity. This study presents methodology used to screen HVFR's and results on product performance, which identified a need for alternative specifications to viscosity to achieve maximum performance. The proppant transport capacity in dynamic conditions was evaluated for twenty-eight commercially available friction reducers and HVFR's in field waters which could have up to 40,000 TDS. A slot flow apparatus was used to mimic fluid flow through a fracture under different shear and flow rate conditions. Viscosity and elasticity measurements were also obtained using an advanced rotational rheometer. For comparison, linear gel and crosslinked guar fluid were also evaluated. While viscosity at 300 RPM (511s-1) and more recently high viscosity at lower shear rates, have been used for selection of HVFR's, these parameters alone do not indicate proppant carrying capacity. The authors did not find a correlation between higher viscosity and better proppant transport, rather they propose that too high a viscosity can negatively impact transport. The results provided insight into the effect of flow rate on proppant transport, with some HVFR's that exhibited higher viscosities at low shear, losing their transport capacity at the same low shear. Elasticity testing of those same products suggested that HVFR's have a critical elasticity range at which they will provide optimal performance. Polymer residuals were also evaluated on proppant post-test and compared to traditional linear gels and crosslinked fluids. Results suggested potential for damage if HVFR's are used without breakers. Different viscosity targets should be set when selecting a HVFR and coupled with other testing criteria such as elasticity and dynamic proppant transport. This paper provides insight into the need for development of standardized test criteria for HVFR selection. Further testing and screening of HVFR's will help increase the understanding of key factors influencing sand transport and their effect on proppant pack conductivity.
机译:使用高粘度摩擦减速剂(HVFR)作为瓜尔基流体以改善支撑剂运输和减少形成损伤的替代品迅速增加。虽然有几种产品选择可用,但选择产品的标准专注于300 rpm(511s-1)的粘度,符合或超过线性凝胶流体的粘度。然而,有限的数据可用于目标粘度应该是什么,它如何影响流体的运输砂的能力,以及支撑剂导电性损坏的可能性。本研究提出了用于筛选HVFR的方法,并导致产品性能,这确定了需要替代规范的粘度以实现最大性能。在现场水域中评估动态条件中的支撑剂运输能力,可在田间水域中进行高达40,000 TDS的HVFR。使用槽流动装置用于模拟流体流过裂缝在不同的剪切和流量条件下的裂缝。使用先进的旋转流变仪也获得粘度和弹性测量。对于比较,还评估了线性凝胶和交联的瓜尔流体。虽然300rpm(511s-1)的粘度和更近剪切速率的最近粘度,但是已经用于选择HVFR,而这些参数单独使用这些参数不表示支撑剂承载能力。作者没有在较高粘度和更好的支撑剂转运之间找到相关性,而是他们提出过高的粘度可以产生负面影响。结果提供了对支撑剂运输的流速的影响,一些HVFR在低剪切下呈现出更高的粘度,在相同的低剪切下失去其运输能力。这些相同产品的弹性测试表明HVFR具有临界弹性范围,它们将提供最佳性能。还在试验后的支撑剂上评估聚合物残留物,并与传统的线性凝胶和交联流体相比。结果表明如果在没有断路器的情况下使用HVFR,则损坏潜力。 Different viscosity targets should be set when selecting a HVFR and coupled with other testing criteria such as elasticity and dynamic proppant transport.本文介绍了对HVFR选择的标准化测试标准的需要的了解。 HVFR的进一步测试和筛选将有助于提高影响砂运输的关键因素的理解及其对支撑剂包电导率的影响。

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