Gravel Pack Monitoring With a Strain Sensing Fiber Optic Cable

被引:4
|
作者
Lipus, M. [1 ]
Reinsch, T. [1 ]
Schmidt-Hattenberger, C. [1 ]
Henninges, J. [1 ]
Reich, M. [2 ]
机构
[1] GFZ German Res Ctr Geosci, Potsdam, Germany
[2] TU Bergakad Freiberg, Drilling Engn & Min Machinery, Freiberg, Germany
来源
OIL GAS-EUROPEAN MAGAZINE | 2018年 / 44卷 / 04期
基金
欧盟地平线“2020”;
关键词
D O I
10.19225/181202
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Achieving and maintaining orehole integrity is a challenge in the successful and sustainable utilization of hydrocarbons, geothermal energy and sites for geological storage. Information about the integrity of casing and cement is mainly available from logs which only produce data at the moment of measurement and require running in hole with logging tools. This study investigates the potential for real-time monitoring of a fiber optic distributed strain sensor, which is permanently installed behind the casing of a geothermal well. Each location of the fiber conveys information about its temperature and mechanical stress state when interacting with a laser pulse, which is sent through the fiber. This article shows field data from a gravel pack installation and compares the results to conventional borehole measurement equipment during the completion of a geothermal well. It was found that the mechanical strain acting on the fiber matches results from conventional downhole logging tools for density measurements. Both downhole cable and casing pipe experience measurable axial compression at locations where wellbore fluid is being replaced by gravel. Moreover, observation of the strain response over the initial hours post completion of the gravel packing reveals an ongoing movement of annular material (sagging and compaction of filtergravel pack).
引用
收藏
页码:OG179 / OG185
页数:7
相关论文
共 50 条
  • [31] Embeddable Fiber Optic Strain Sensor for Structural Monitoring
    Kaur, Amardeep
    Nagarajan, Sriram
    Anandan, Sudharshan
    Yuan, Lei
    Chandrashekhara, K.
    Watkins, Steve E.
    Xiao, Hai
    SENSORS AND SMART STRUCTURES TECHNOLOGIES FOR CIVIL, MECHANICAL, AND AEROSPACE SYSTEMS 2013, 2013, 8692
  • [32] Rockslide deformation monitoring with fiber optic strain sensors
    Moore, J. R.
    Gischig, V.
    Button, E.
    Loew, S.
    NATURAL HAZARDS AND EARTH SYSTEM SCIENCES, 2010, 10 (02) : 191 - 201
  • [33] Distributed Fiber-Optic Sensing and Integrity Monitoring
    Glisic, Branko
    Inaudi, Daniele
    TRANSPORTATION RESEARCH RECORD, 2010, (2150) : 96 - 102
  • [34] Application of fiber optic sensing technology in anchor monitoring
    Liang, L
    Jiang, DS
    Sun, DY
    INTERNATIONAL CONFERENCE ON SENSORS AND CONTROL TECHNIQUES (ICSC 2000), 2000, 4077 : 109 - 111
  • [35] Fiber optic shape sensing for monitoring of flexible structures
    Lally, Evan M.
    Reaves, Matt
    Horrell, Emily
    Klute, Sandra
    Froggatt, Mark E.
    SENSORS AND SMART STRUCTURES TECHNOLOGIES FOR CIVIL, MECHANICAL, AND AEROSPACE SYSTEMS 2012, PTS 1 AND 2, 2012, 8345
  • [36] Distributed fiber optic sensing for traffic monitoring purposes
    Hlavac, M.
    THIRD EUROPEAN WORKSHOP ON OPTICAL FIBRE SENSORS, 2007, 6619
  • [37] Unified inverse isogeometric analysis and distributed fiber optic strain sensing for monitoring structure deformation and stress
    Aung, Thein Lin
    Ma, Ninshu
    Kishida, Kinzo
    Lu, Fenggui
    APPLIED MATHEMATICAL MODELLING, 2023, 120 : 733 - 751
  • [38] High performance fiber optic strain and ultrasonic wave sensing
    Nguyen, A. -D.
    STRUCTURAL HEALTH MONITORING 2007: QUANTIFICATION, VALIDATION, AND IMPLEMENTATION, VOLS 1 AND 2, 2007, : 1182 - 1189
  • [39] Dynamic Distributed Fiber Optic Strain Sensing on Movement Detection
    Luo, Linqing
    Sekiya, Hidehiko
    Soga, Kenichi
    IEEE SENSORS JOURNAL, 2019, 19 (14) : 5639 - 5644
  • [40] Shape sensing using distributed fiber optic strain measurements
    Miller, GA
    Askins, CG
    Friebele, EJ
    SECOND EUROPEAN WORKSHOP ON OPTICAL FIBRE SENSORS: PROCEEDINGS, 2004, 5502 : 528 - 531