酸压处理中的压力解释

V. Pandey
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引用次数: 1

摘要

在世界范围内,酸压裂是开采低渗透石灰岩地层的首选方法。该处理包括泵送粘性垫和酸的交替循环,以促进微分腐蚀,从而形成导电性酸蚀裂缝。在设计的泵计划中,酸类型、垫层和酸体积以及注入速率取决于处理目标、岩石类型和现场条件,如温度、地应力、与含水层的接近程度等。在酸致压裂过程中,酸-岩相互作用的特征通常是压力响应,这是酸反应动力学、流体粘度和密度变化的响应、狭窄水力裂缝中的流体-摩擦降以及其他参数的综合结果。本文的重点是解释酸压裂处理过程中的井底压力,以分离这些单独的影响,并确定处理的有效性。与支撑压裂不同的是,大多数压裂都会导致净压力增加,而酸压裂在压裂结束时很少会导致净压力增加,因为在岩石溶解和酸矿反应产生裂缝宽度的过程中,地应力通常会被缓解。压力的缓解程度不仅可以从处理开始和结束时的瞬时关井压力差异中看出,而且在处理过程中,压力的减轻也很明显,特别是在需要不断监测和实时评估处理数据的作业中。研究表明,随着地层中酸的开始,压力响应的变化可以成功地用于确定处理设计的有效性,并有助于在处理过程中进行明智的改变。更好地了解这些反应也可以为未来的工作带来更有效的治疗设计。研究中开发的解释可以应用于世界上大多数泵送的酸压裂处理。
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Pressure Interpretations in Acid Fracturing Treatments
Acid fracturing is a preferred method of stimulating low permeability limestone formations throughout the world. The treatment consists of pumping alternating cycles of viscous pad and acid to promote differential etching, thereby creating a conductive acid-etched fracture. Acid-type, pad and acid volumes, and the injection rates in the designed pump schedule are based on treatment objectives, rock-types and in-situ conditions such as temperatures, in-situ stress, proximity to water-bearing layers, and others. During the acid fracturing treatment, the acid-rock interaction is often marked by signature pressure responses, that are a combined outcome of acid reaction kinetics, responses to changes in fluid viscosity and densities, fluid-frictional drop in narrow hydraulic fractures, and other such parameters. This paper focuses on interpretation of bottomhole pressures during acid fracturing treatment to separate these individual effects and determine the effectiveness of the treatment. Unlike propped fracturing treatments where most fracturing treatments result in net pressure gain, acid fracturing treatments seldom result in net pressure increase at the end of the treatment because the in-situ stresses are generally relieved during the rock-dissolution and fracture width creation process that results from acid-mineral reactions. Not only is the extent of stress relief evident from the difference in the start and the end of the treatment instantaneous shut-in pressures, the loss of stresses is also apparent during the treatment itself, especially in jobs where the treatment data is constantly monitored and evaluated in real-time. The study reveals that the changes in pressure responses with the onset of acid in the formation can be successfully used to determine the effectiveness of treatment design and can aid in carrying out informed changes during the treatment. Better understanding of these responses can also lead to more effective treatment designs for future jobs. The interpretation developed in the study can be applied to most of the acid fracturing treatments that are pumped worldwide.
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