Sun Hu, He Bencheng, Xu Hongxing, Zhou Fujian, Zhang Mian, Li Hui, Yin Guoyong, Chen Shuang, Xu Xiangjian, Li Ben
National Engineering Laboratory for Exploration and Development of Low-Permeability Oil and Gas Fields, Xi'an 710018,China.
China University of Petroleum (Beijing), Beijing 102249, China.
ACS Omega. 2022 Mar 17;7(12):10243-10254. doi: 10.1021/acsomega.1c06828. eCollection 2022 Mar 29.
In this paper, a series of fracture conductivity experiments were designed and conducted by an American Petroleum Institute (API) standard fracture conductivity evaluation system. The mixing proportion of quartz sand and ceramic was optimized. By the evaluation of the proppant breakage rate and sphericity analysis of mixed proppant with different sand volume proportions ( ), the proppant mixture conductivity evolution behavior was analyzed. Results of this study showed that the conductivity of mixed proppant was between that of pure ceramic proppant and pure quartz sand proppant under the same conditions. For 20/40 mesh mixed proppant, a small amount of ceramic (25%) in mixed proppant could obtain 1.27-3 times higher conductivity than pure sand, while 40/70 mesh mixed proppant required the addition of 50% or more ceramic. The crushing resistance of mixed proppant determined the decrease of conductivity with the increase of effective closure stresses. A logarithmic empirical model was further derived from the results, which could be used to forecast the performance of fracture conductivity at different effective closure stresses and sand volume proportions.
本文采用美国石油学会(API)标准裂缝导流能力评价系统设计并开展了一系列裂缝导流能力实验。对石英砂与陶粒的混合比例进行了优化。通过对不同砂体积比例( )的混合支撑剂支撑剂破碎率评价及球形度分析,剖析了支撑剂混合物导流能力演化行为。本研究结果表明,在相同条件下,混合支撑剂的导流能力介于纯陶粒支撑剂和纯石英砂支撑剂之间。对于20/40目混合支撑剂,混合支撑剂中少量陶粒(25%)可使导流能力比纯砂高出1.27至3倍,而40/70目混合支撑剂则需要添加50%或更多陶粒。混合支撑剂的抗压碎性决定了导流能力随有效闭合应力增加而降低的情况。基于实验结果进一步推导了对数经验模型,该模型可用于预测不同有效闭合应力和砂体积比例下的裂缝导流能力性能。