In-situ shear-strain profile assessment in geotechnical array with ground motion data. Issue 165 (February 2023)
- Record Type:
- Journal Article
- Title:
- In-situ shear-strain profile assessment in geotechnical array with ground motion data. Issue 165 (February 2023)
- Main Title:
- In-situ shear-strain profile assessment in geotechnical array with ground motion data
- Authors:
- Wang, Hai-Yun
Jiang, Wei-Ping - Abstract:
- Abstract: In-situ shear-strain profile can be used to evaluate soil dynamic behavior with depth, but also safety of buried lifeline and structures due to seismic wave propagation in soil during an earthquake. Using 199 sets of ground-motion data recorded by six geotechnical arrays with 3–7 sensors in 43 earthquakes, the seismic interferometry by deconvolution method is employed to extract shear-wave velocity profile ( V s, sw ) of seismic wave in each array; ratio of peak particle velocity (PPV) and V s, sw between two successive sensors, PPV/ V s, sw, is computed in each array and assumed to be proxy of the in-situ shear strain. The characteristics of in-situ shear strain profiles in the arrays are studied under seismic loadings in various earthquakes. The relationships of evaluating both the in-situ shear strain profile and the largest in-situ shear strains of the upper soil near the surface are derived from the regression analysis for D and E class sites, respectively. Based on the linear and volumetric threshold shear strains and PGAs and PGVs, the variations of soil behaviors (i.e., linear elastic, nonlinear and plastic behaviors) with the increase of the shear strain or PGA or PGV are studied in the shear strain profiles. The results are as follows. (1) With the increase of PGA and/or PGV in various earthquakes, the in-situ shear strain profiles move towards the larger shear strains and the soil behavior will change to a higher stage or a higher level in the sameAbstract: In-situ shear-strain profile can be used to evaluate soil dynamic behavior with depth, but also safety of buried lifeline and structures due to seismic wave propagation in soil during an earthquake. Using 199 sets of ground-motion data recorded by six geotechnical arrays with 3–7 sensors in 43 earthquakes, the seismic interferometry by deconvolution method is employed to extract shear-wave velocity profile ( V s, sw ) of seismic wave in each array; ratio of peak particle velocity (PPV) and V s, sw between two successive sensors, PPV/ V s, sw, is computed in each array and assumed to be proxy of the in-situ shear strain. The characteristics of in-situ shear strain profiles in the arrays are studied under seismic loadings in various earthquakes. The relationships of evaluating both the in-situ shear strain profile and the largest in-situ shear strains of the upper soil near the surface are derived from the regression analysis for D and E class sites, respectively. Based on the linear and volumetric threshold shear strains and PGAs and PGVs, the variations of soil behaviors (i.e., linear elastic, nonlinear and plastic behaviors) with the increase of the shear strain or PGA or PGV are studied in the shear strain profiles. The results are as follows. (1) With the increase of PGA and/or PGV in various earthquakes, the in-situ shear strain profiles move towards the larger shear strains and the soil behavior will change to a higher stage or a higher level in the same stage. (2) In the shear strain profile, with the increase of depth, the in-situ shear strains decrease gradually and the soil behavior will change to a lower stage or a lower level in the same stage. (3) Among the shear strain profiles, upper soil has the largest shear strain ( γ max ) and the shallower the soil depth, the larger the shear strain. The relationships between the γ max and PGV and between the γ max and PGA and PGV combination can be used to evaluate the dynamic behavior of upper soil with less than 30 m at a strong motion array or station for D and E class sites. (4) The in-situ shear strains are highly correlated with the PPV and average shear wave velocity measured by the drilling-hole methods ( V s, dh ) combination and with the PPV and V s, dh and center depth between two successive sensors ( H cd ) combination, and increase with the increase of the PPV and decrease with the increase of the V s, dh and/or H cd, respectively. The relationships are recommended to evaluate the in-situ shear strain profile with very high accuracy in the geotechnical array with more than two sensors for D and E class sites. Highlights: The characteristics of in-situ shear strain profiles in the geotechnical arrays are studied under various seismic loadings. Relationships of evaluating the in-situ shear strain profile with very high accuracy are derived for D and E class sites. The variations of soil behaviors with the increase of shear strain or PGA or PGV are studied in the shear strain profiles. … (more)
- Is Part Of:
- Soil dynamics and earthquake engineering. Issue 165(2023)
- Journal:
- Soil dynamics and earthquake engineering
- Issue:
- Issue 165(2023)
- Issue Display:
- Volume 165, Issue 165 (2023)
- Year:
- 2023
- Volume:
- 165
- Issue:
- 165
- Issue Sort Value:
- 2023-0165-0165-0000
- Page Start:
- Page End:
- Publication Date:
- 2023-02
- Subjects:
- In-situ shear strain -- Soil behavior -- Geotechnical array -- Ground motion data -- Linear and volumetric threshold PGAs and PGVs -- Shear-wave velocity
CESMD the Center for Engineering Strong Motion Data -- Hcd the central depth between two successive sensors in a geotechnical array -- PGA the peak ground acceleration in the acceleration time-history -- PGAtl the linear threshold PGA -- PGAtv the volumetric threshold PGA -- PGV the peak ground velocity in the velocity time-history -- PGVtl the linear threshold PGV -- PGVtv the volumetric threshold PGV -- PPV the average peak particle velocity between two successive sensors in a geotechnical array -- γ the shear strain -- γtl the linear threshold shear strain -- γtv the volumetric threshold shear strain -- γmax the largest shear strain of upper soil near the surface -- R the Pearson correlation coefficient -- RE the average relative error -- RMSE the root mean square error -- SID the seismic interferometry by deconvolution -- Vs, dh the average shear wave velocity between two successive sensors measured by the drilling-hole methods in a geotechnical array -- Vs, sw the average shear wave velocity of seismic wave between two successive sensors in a geotechnical array
Soil dynamics -- Periodicals
Earthquake engineering -- Periodicals
Sols -- Dynamique -- Périodiques
Génie parasismique -- Périodiques
624.176205 - Journal URLs:
- http://www.sciencedirect.com/science/journal/02677261 ↗
http://www.sciencedirect.com/science/journal/02617277 ↗
http://www.elsevier.com/journals ↗ - DOI:
- 10.1016/j.soildyn.2022.107667 ↗
- Languages:
- English
- ISSNs:
- 0267-7261
- Deposit Type:
- Legaldeposit
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