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Evaluation of Polymer Gel Diverters for a High-Temperature Field With Special Focus on the Formation Shape Factor—An Important Parameter for Enhancing Matrix Placement of Stimulation Chemicals

机译:高温下聚合物凝胶分流器的评估,特别关注形成形状因子-增强刺激性化学物质在基质中的重要参数

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Downhole scaling has long been recognized as causing significant damage to the near wellbore area of production wells. Furthermore complex heterogeneous wells, represent a significant challenge to ensuring effective placement and thereby protection along the entire length of the wells, as the injected chemicals (inhibitor or dissolver) naturally enter the higher permeability / lower pressure zones which may leave other zones untreated. Recent publications and field trials have demonstrated the benefits of using modified, lightly viscosified shear-thinning fluids to give more even placement of chemicals in such wells via bullheading. However, when large volumes of polymer gel are used the in situ fluid properties (viscosity) become critical as the fluid penetrates further into the formation. The in situ viscosity affects both the ability to place treatment chemicals into low permeability / high pressure zones and the post-job well clean up. Accurate prediction of the flow behaviour of these gels in porous media depends on the characterization of the physical properties of the reservoir zones, in particular the permeability, effective porosity and most importantly with shear thinning fluids - the formation shape factor. In this paper we present work investigating the suitability of such shear thinning fluids for non-damaging chemical interventions for an HPHT field. The paper will describe thermal stability tests and novel techniques developed to characterize non-Newtonian fluid behaviour under flow conditions between 120oC and 170oC. Results from bulk, coil and core tests will be included. The paper will also describe test protocols developed to investigate the parameters which could influence the formation shape factor. The work clearly demonstrates the significant impact that the shape factor has on diverting fluid into the low injectivity zones. The results will help achieve more even chemical placement and therefore improved scale protection/removal in the wellbore following treatments in complex wells.
机译:长期以来,人们一直认为井下结垢会严重损害生产井附近的井眼区域。此外,由于注入的化学物质(抑制剂或溶解剂)自然会进入较高渗透率/低压区域,这可能会使其他区域未经处理,因此复杂的异质井对确保有效放置并在井的整个长度进行保护提出了重大挑战。最近的出版物和现场试验已经证明了使用改良的,轻度粘稠的剪切稀化流体通过牛头法在此类井中更均匀地放置化学品的好处。但是,当使用大量的聚合物凝胶时,随着流体进一步渗透到地层中,原位流体特性(粘度)变得至关重要。原位粘度会影响将处理化学品放入低渗透性/高压区域的能力以及作业后井的清理工作。这些凝胶在多孔介质中的流动行为的准确预测取决于储层区物理性质的特征,特别是渗透率,有效孔隙度,最重要的是对于剪切稀化流体-地层形状因子。在本文中,我们目前正在研究此类剪切稀化流体是否适合HPHT领域的无损化学干预措施。本文将介绍热稳定性测试和开发的新技术,以表征在120oC至170oC的流动条件下的非牛顿流体行为。包括散装,线圈和铁心测试的结果。本文还将描述开发的测试协议,以研究可能影响地层形状因子的参数。这项工作清楚地表明了形状因数对将流体分流到低注入区具有重大影响。结果将有助于实现更均匀的化学物放置,从而在复杂井中进行处理后改善井眼中的水垢保护/清除。

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