Key technology and application of DRY-1B capacitive component borehole strain gauge

This paper briefly describes the theoretical basis of the DRY-1B capacitive component drilling strain gauge (drilling strain gauge). It discusses critical technologies such as micro-displacement sensing, noise reduction, temperature control, performance testing, and calibration. The strain gauge ach...

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Main Authors: PENG Hua, MA Xiumin, SUN Yao, JIANG Jingjie, HAO Fei
Format: Article
Language:zho
Published: Institute of Geomechanics, Chinese Academy of Geological Sciences 2023-06-01
Series:Dizhi lixue xuebao
Subjects:
Online Access:https://journal.geomech.ac.cn//article/doi/10.12090/j.issn.1006-6616.20232902
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author PENG Hua
MA Xiumin
SUN Yao
JIANG Jingjie
HAO Fei
author_facet PENG Hua
MA Xiumin
SUN Yao
JIANG Jingjie
HAO Fei
author_sort PENG Hua
collection DOAJ
description This paper briefly describes the theoretical basis of the DRY-1B capacitive component drilling strain gauge (drilling strain gauge). It discusses critical technologies such as micro-displacement sensing, noise reduction, temperature control, performance testing, and calibration. The strain gauge achieved high resolution (≥5×10−11ε), wideband (10–100 Hz optional), extensive dynamic range (≥1×10−3ε), 24-bit AD recording, low power consumption (< 3W), and other technical indicators. Its performance is better than the United States PBO and Japan borehole strain gauge of the same period, and it is an international leading long-term observation instrument for crustal movement, which can basically meet the observation requirements of creep movement with slow accumulation of long-term strain and seismic and volcanic activity with a rapid change of short-term strain. Since 2008, through the application of more than 20 geostress stations, the borehole strain gauge has recorded a large amount of strain information, such as crustal deformation, fault activity, co-seismic strain wave, strain step, and ore pressure activity. Based on the results of the self-consistency test of strain monitoring data of the geostress station in the Beichangshan Mountain and the analysis of seismic mapping capacity of the Turkey earthquake, it is found that the strain curves of the 1#+3# and 2#+4# capacitance sensors at the Beichangshan Mountain stress station are generally stable, and the correlation coefficient R2 is 0.95. The annual variation rate of the differential strain of 1#–3# and 2#–4# elements is 10−8 magnitude, which reflects that the shear stress is dominant in the Long Island area and the stress environment of seismic activity is relatively high. The strain gauge was used to observe the apparent co-seismic strain response of Turkey’s M 7.8 and M 7.5 earthquakes on February 6, 2023. In particular, it obtained the M 7.8 main seismic surface wave period of 50–60 s, presenting an out-facing wave anomaly. Theoretically, the strain wave generated by the M 0.74 earthquakes within 100 km can be distinguished, and the application demonstration effect has been achieved. The borehole strain gauge has good popularization value and application prospects in geodynamics research and internal dynamic geological disaster monitoring.
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spelling doaj.art-c7d65b7dfead42828fb731e7194f4aa92023-07-27T06:30:08ZzhoInstitute of Geomechanics, Chinese Academy of Geological SciencesDizhi lixue xuebao1006-66162023-06-0129331332310.12090/j.issn.1006-6616.20232902Key technology and application of DRY-1B capacitive component borehole strain gaugePENG HuaMA XiuminSUN YaoJIANG JingjieHAO FeiThis paper briefly describes the theoretical basis of the DRY-1B capacitive component drilling strain gauge (drilling strain gauge). It discusses critical technologies such as micro-displacement sensing, noise reduction, temperature control, performance testing, and calibration. The strain gauge achieved high resolution (≥5×10−11ε), wideband (10–100 Hz optional), extensive dynamic range (≥1×10−3ε), 24-bit AD recording, low power consumption (< 3W), and other technical indicators. Its performance is better than the United States PBO and Japan borehole strain gauge of the same period, and it is an international leading long-term observation instrument for crustal movement, which can basically meet the observation requirements of creep movement with slow accumulation of long-term strain and seismic and volcanic activity with a rapid change of short-term strain. Since 2008, through the application of more than 20 geostress stations, the borehole strain gauge has recorded a large amount of strain information, such as crustal deformation, fault activity, co-seismic strain wave, strain step, and ore pressure activity. Based on the results of the self-consistency test of strain monitoring data of the geostress station in the Beichangshan Mountain and the analysis of seismic mapping capacity of the Turkey earthquake, it is found that the strain curves of the 1#+3# and 2#+4# capacitance sensors at the Beichangshan Mountain stress station are generally stable, and the correlation coefficient R2 is 0.95. The annual variation rate of the differential strain of 1#–3# and 2#–4# elements is 10−8 magnitude, which reflects that the shear stress is dominant in the Long Island area and the stress environment of seismic activity is relatively high. The strain gauge was used to observe the apparent co-seismic strain response of Turkey’s M 7.8 and M 7.5 earthquakes on February 6, 2023. In particular, it obtained the M 7.8 main seismic surface wave period of 50–60 s, presenting an out-facing wave anomaly. Theoretically, the strain wave generated by the M 0.74 earthquakes within 100 km can be distinguished, and the application demonstration effect has been achieved. The borehole strain gauge has good popularization value and application prospects in geodynamics research and internal dynamic geological disaster monitoring.https://journal.geomech.ac.cn//article/doi/10.12090/j.issn.1006-6616.20232902capacitive component typedrilling strain gaugedifferential capacitance displacement sensorcoseismic strain responseinternal dynamic geological hazard monitoring
spellingShingle PENG Hua
MA Xiumin
SUN Yao
JIANG Jingjie
HAO Fei
Key technology and application of DRY-1B capacitive component borehole strain gauge
Dizhi lixue xuebao
capacitive component type
drilling strain gauge
differential capacitance displacement sensor
coseismic strain response
internal dynamic geological hazard monitoring
title Key technology and application of DRY-1B capacitive component borehole strain gauge
title_full Key technology and application of DRY-1B capacitive component borehole strain gauge
title_fullStr Key technology and application of DRY-1B capacitive component borehole strain gauge
title_full_unstemmed Key technology and application of DRY-1B capacitive component borehole strain gauge
title_short Key technology and application of DRY-1B capacitive component borehole strain gauge
title_sort key technology and application of dry 1b capacitive component borehole strain gauge
topic capacitive component type
drilling strain gauge
differential capacitance displacement sensor
coseismic strain response
internal dynamic geological hazard monitoring
url https://journal.geomech.ac.cn//article/doi/10.12090/j.issn.1006-6616.20232902
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AT sunyao keytechnologyandapplicationofdry1bcapacitivecomponentboreholestraingauge
AT jiangjingjie keytechnologyandapplicationofdry1bcapacitivecomponentboreholestraingauge
AT haofei keytechnologyandapplicationofdry1bcapacitivecomponentboreholestraingauge