期刊文献+

水力压裂微地震监测稳定共振频率信号的解释 被引量:2

Interpretation of stable resonance frequency signals observed from microseismic monitoring during hydraulic fracturing
在线阅读 下载PDF
导出
摘要 在水力压裂过程中,通过使用井中或者地表地震检波器来监测压裂诱发的微地震来确定裂缝的分布,并进一步评估压裂储层的改造体积。在四川德阳的一次水力压裂微地震监测实验中,通过对记录的波形进行时频分析,确定了不同频率共振信号的变化情况。对于~13Hz共振信号来说,根据它的强度变化可以推断信号产生于地表井场。进一步对井场处机械噪声的激励和响应进行分析,认为信号的来源是高压管线的强烈振动,激振源为三缸泵的周期性冲程造成的流体中的压力脉动。因此利用微震监测得到的共振信号,可以用来分析监测高压管线的振动情况。 During hydraulic fracturing,induced microseismic events are generally monitored by surface or downhole geophones to determine their locations from which the stimulated reservoir volume can be estimated.In a surface microseismic monitoring experiment carried out in Deyang of Sichuan province,microseismic events are not detected due to strong near surface attenuation and background noise.Instead,we detected continuous signals with stable resonance frequencies,which are well correlated with slurry flow.This kind of signals have been detected in other hydraulic fracturing monitoring cases and are interpreted as the Stonley waves by the interaction of high-pressure fluids with the surrounding fractures(Tary et al.,2014).In our case,through the time-frequency analysis we can obtain how frequency and amplitude of these resonant signals change with time at different stations.For the^13Hz resonant signal,its amplitude generally decreases at stations farther away from the well site,indicating that the signal is most likely originated from the surface well site.As a result,by using these stable resonant signals,it could provide us a way to monitor the vibration condition of high-pressure pipes used for hydraulic fracturing.Based on these facts,we propose that these resonant signals are caused by vibrations of high-pressure pipes triggered by periodic pressure pulses of triplex pumps.We further suggest that the interpretation of these resonant signals due to Stonely waves or nonlaminar flows by Tary et al.(2014)may be wrong based on several contradictive points with observations.They are also likely caused by vibrations of high-pressure pipes,similar to what we derived from our experiments.
作者 于辉 张海江
出处 《物探化探计算技术》 CAS CSCD 2017年第1期90-95,共6页 Computing Techniques For Geophysical and Geochemical Exploration
基金 自然科学基金项目(41274055)
关键词 水力压裂 共振信号 高压管线振动 斯通利波 非层流 hydraulic fracturing resonant signals vibration of high-pressure pipes Stonely wave nonlaminar flow
  • 相关文献

参考文献3

二级参考文献21

  • 1张振华,吴梵,冯文山.输液管道系统动力响应的研究进展[J].海军工程大学学报,2000,12(5):25-33. 被引量:5
  • 2朱永有,叶永彪,周容,张维.泥浆泵运动学、动力学分析[J].通用机械,2005(5):65-67. 被引量:7
  • 3王鑫伟.微分求积法在结构力学中的应用[J].力学进展,1995,25(2):232-240. 被引量:90
  • 4Belhnan R, Casti J. Differential quadrature and long term integration [J] . Journal of Math Analysis and Application, 1971, 34 : 235- 238.
  • 5Zhongxian Huang,Yanju Peng,Yan Luo,Yuejun Zheng,Wei Su.Azimuthal anisotropy of Rayleigh waves in East Asia [J].Geophys Res Letters,2004,31,L1561.
  • 6Jurkevics A.Polarization analysis of three-component array data[J].Bull Seism Soc Am,1988,78(5):1725~1743.
  • 7Park J,Vernon F L,Lindberg C R.Frequency dependent polarization analysis of high-frequency seismograms[J].J Geophys Res,1987,92:12667~ 12674.
  • 8Chun K-Y,Zhu T,West G F.Teleseismic P-wave attenuation and nuclear explosion source function inferred from Yellowknife array data[J].J Geophys Res,1991,96:12083~12087.
  • 9Jarpe S,Dowle F.Performance of High-frequency three-component station for azimuth estimation from regional seismic phase,Bull.Seism[J].Soc Am,1991,81(3):987~999.
  • 10Hu Ge,William Menke.Polarization tomography for P-wave velocity structure in southern California[J].J Geophys Res,1994,99:15245 ~ 15256.

共引文献32

同被引文献35

引证文献2

二级引证文献13

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部