Drilling & Production Engineering

Development and Application of an Experimental Device for Evaluating the Scouring Resistance of Resin-coated Particles for Artificial Sidewall Sanding Control

  • Zhang Yunfei ,
  • Su Yanhui ,
  • Jiang An ,
  • Zheng Xiaobin ,
  • Huang Yuxiang ,
  • Cui Guoliang ,
  • Wang Kangnan
Expand
  • 1. Engineering Technology Branch, CNOOC Energy Technology & Services Limited, Tianjin 300452, China;
    2. PetroChina Changqing Oilfield Company, Xi′an, Shaanxi 710000, China

Received date: 2020-11-20

  Revised date: 2021-10-29

  Online published: 2023-01-10

Abstract

The scouring resistance of resin-coated particles is an important indicator of the effectiveness of the artificial sidewall sanding control technology, but there is no professional equipment available to evaluate this indicator. Therefore, an experimental device for evaluating the erosion resistance of resin-coated particles for artificial sidewall sanding control was developed, which can simulate the effects of such factors as scouring displacement, linear scouring velocity, scouring pressure difference and scouring time on the scouring resistance of resin-coated particles for artificial sidewall. The device was applied to evaluate the scouring resistance of two types of resin-coated particles (FQ-1 and HY) used in an offshore oilfield. The experimental results were in general agreement with the actual sanding in the field, and the resin-coated particle HY was more resistant to scouring. According to the experimental results, the resin-coated particle HY was used in the subsequent sanding control of the artificial sidewall, achieving outstanding sanding control effect. The experimental device successfully developed provides a new evaluation method for the selection of resin-coated particles for artificial sidewall sanding control, and provides technical support for the large-scale promotion and application of artificial sidewall sanding control technology in offshore oilfields.

Cite this article

Zhang Yunfei , Su Yanhui , Jiang An , Zheng Xiaobin , Huang Yuxiang , Cui Guoliang , Wang Kangnan . Development and Application of an Experimental Device for Evaluating the Scouring Resistance of Resin-coated Particles for Artificial Sidewall Sanding Control[J]. Special Oil & Gas Reservoirs, 2022 , 29(1) : 169 -174 . DOI: 10.3969/j.issn.1006-6535.2022.01.025

References

[1] 范明福.低温油井覆膜砂人工井壁防砂技术与应用[J].科学技术与工程,2017,17(12):168-171.
FAN Mingfu.Investigation and application of coated sand artificial borehole wall sand control technology in low temperature oil well[J].Science Technology and Engineering,2017,17(12):168-171.
[2] 党杨斌,杨会洁,程亮,等.高强度人工井壁防砂工艺技术在跃进二号油田的实验[J].青海石油,2014,32(1):56-58.
DANG Yangbin,YANG Huijie,CHENG Liang,et al.Experiment of high-strength artificial sidewall sanding control technology in Yuejin2 Oilfield[J].Qinghai Shiyou,2014,32(1):56-58.
[3] 郑建军.渤海A油田出砂实验及应用研究[J].石油地质与工程,2020,34(3):95-98.
ZHENG Jianjun.Experiment and application of sand production of Bohai A Oilfield[J].Petroleum Geology & Engineering,2020,34(3):95-98.
[4] 李怀文,孙涛,王超,等.超低温新型树脂涂敷砂及人工井壁防砂技术[J].石油学报,2016,37(S2):112-116.
LI Huaiwen,SUN Tao,WANG Chao,et al.The new ultralow-temperature resin coated sand and artificial borehole wall sand control technology[J].Acta Petrolei Sinica,2016,37(S2):112-116.
[5] 何海峰.胜利海上疏松砂岩油藏分层防砂分层采油技术[J].石油钻探技术,2021,49(6):99-104.
HE Haifeng.Separate layer sand control and oil production technology in offshore unconsolidated sandstone reservoirs of Shengli Oilfield[J].Petroleum Drilling Techniques,2021,49(6):99-104.
[6] 周泓宇,万小进,吴绍伟,等.水平井控水砾石充填防砂技术研究[J].石油钻探技术,2021,49(1):101-106.
ZHOU Hongyu,WAN Xiaojin,WU Shaowei,et al.Study on the sand control technique for gravel packing with water control for horizontal wells[J].Petroleum Drilling Techniques,2021,49(1):101-106.
[7] 王力智,董长银,何海峰,等.非均相聚合物驱油藏防砂井近井挡砂介质堵塞机理实验研究[J].石油钻探技术,2020,48(5):92-99.
WANG Lizhi,DONG Changyin,HE Haifeng,et al.An experimental study on the plugging mechanisms of sand-preventing medium in the near-well zone of sand control wells in heterogeneous polymer-flooding reservoirs[J].Petroleum Drilling Techniques,2020,48(5):92-99.
[8] 付洪琼,郭小阳,瞿雄,等.一种添加环氧树脂乳液的优质固井水泥浆[J].天然气工业,2021,41(11):115-121.
FU Hongqiong,GUO Xiaoyang,QU Xiong,et al.High-quality cementing slurry with epoxy resin emulsion[J].Natural Gas Industry,2021,41(11):115-121.
[9] 李璐,西尔艾力·买买提,张茹,等.防砂技术现状及砾石充填防砂施工参数的优化[J].新疆石油天然气,2012,8(增刊1):59-65.
LI Lu,XIRALI Maimaiti,ZHANG Ru,et al.Study of the current sand control and optimized operational parameters in gravel pack completion[J].Xinjiang Oil & Gas,2012,8(S1):59-65.
[10] 张国荣,严锦根,郭雄华,等.孤东油田防砂堵水一体化技术研究与应用[J].石油钻采工艺,2001,23(2):69-72.
ZHANG Guorong,YAN Jin′gen,GUO Xionghua,et al.Study and application of sand control and water shutoff system technology in Gudong Oilfield[J].Oil Drilling & Production Technology,2001,23(2):69-72.
[11] 智勤功.分层挤压充填防砂工艺技术研究[D].青岛:中国石油大学(华东),2006.
ZHI Qingong.Separate-layer squeeze gravel packing sand control technology[D].Qingdao:China University of Petroleum(East China),2006.
[12] 林海,邓金根,谢涛,等.地层各向异性对硬脆性泥页岩井壁稳定性的影响[J].东北石油大学学报,2021,45(1):85-94.
LIN Hai,DENG Jin′gen,XIE Tao,et al.Effect of formation anisotropy on wellbore stability of hard brittle shale[J].Journal of Northeast Petroleum University,2021,45(1):85-94.
[13] 采油采气专业标准化委员.防砂用树脂性能评价方法:SY/T 6572—2003[S].北京:石油工业出版社,2003:3-7.
Committee of Standardization for Oil and Gas Production.Evaluation method of resin performance for sand control:SY/T 6572-2003[S].Beijing:Petroleum Industry Press,2003:3-7.
[14] 采油采气专业标准化委员.加固井壁和人工井壁防砂工艺作法:SY/T 5338—2011[S].北京:石油工业出版社,2011:3-8.
Committee of Standardization for Oil and Gas Production.Practice for sand control technology of strength and artificial borehole well:SY/T 5338-2011[S].Beijing:Petroleum Industry Press,2011:3-8.
[15] 王宝权.多功能防砂实验装置:200720173187.0[P].2008-8-6.
WANG Baoquan.Multifunctional sand control experimental device:200720173187.0[P].2008-8-6.
[16] 李玉光.化学防砂固砂评价实验装置:201310337863.3[P].2013-11-20.
LI Yuguang.Experimental device for chemical sand control and consolidation evaluation:201310337863.3[P].2013-11-20.
[17] 方舒.一种化学防砂剂的固结装置及固结方法:201710236803.0[P].2017-7-28.
FANG Shu.Consolidation device and method of a chemical sand control agent:201710236803.0[P].2017-7-28.
[18] 潘倩.一种化学防砂配砂及固砂评价实验装置:201621207773.8[P].2017-7-7.
PAN Qian.An experimental device for chemical sand control and sand consolidation evaluation:201621207773.8[P].2017-7-7.
[19] 王宝权,匡韶华,佟姗姗,等.树脂砂人工井壁防砂模拟实验研究[J].新疆石油科技,2014,24(3):23-26.
WANG Baoquan,KUANG Shaohua,TONG Shanshan,et al.Experimental study on simulation of artificial sidewall control with resin sand[J].Xinjiang Petroleum Science & Technology,2014,24(3):23-26.
[20] 刘晓强,孙海,吕爱民,等.考虑压裂液返排的致密气藏气水两相产能分析[J].东北石油大学学报,2020,44(2):103-112.
LIU Xiaoqiang,SUN Hai,LYU Aimin,et al.Gas-water two phased productivity analysis of tight gas reservoir based on fracturing fluid flowback data[J].Journal of Northeast Petroleum University,2020,44(2):103-112.
[21] 徐延涛,郭布民,陈玲,等.海上压裂返排液高效环保处理技术[J].石油地质与工程,2021,35(4):106-109.
XU Yantao,GUO Bumin,CHEN Ling,et al.High efficiency and environmental protection treatment technology for offshore fracturing flow-back fluid[J].Petroleum Geology & Engineering,2021,35(4):106-109.
[22] 魏文科,宋宏宇,李辉.月东油田防砂管柱打捞工艺及工具研究与实践[J].石油地质与工程,2021,35(2):122-126.
WEI Wenke,SONG Hongyu,LI Hui.Research and practice of fishing technology and tools for sand control string in Yuedong Oilfield[J].Petroleum Geology & Engineering,2021,35(2):122-126.
[23] 陈清,曹伟佳,田中原,等.自悬浮支撑剂覆膜材料对储层渗透率影响研究[J].石油化工高等学校学报,2020,33(1):42-47.
CHEN Qing,CAO Weijia,TIAN Zhongyuan,et al.Influence of material coated in self-suspending proppant on reservoir permeability[J].Journal of Petrochemical Universities,2020,33(1):42-47.
[24] 采油采气专业标准化委员.树脂涂敷砂技术要求:SY/T 5274—2016[S].北京:石油工业出版社,2017:7-8.
Committee of Standardization for Oil and Gas Production.Technical requirements for resin-coated sand:SY/T 5274-2016[S].Beijing:Petroleum Industry Press,2017:7-8.
Outlines

/