Guardado en:
| Autores principales: | Ikari, Matt J, Roesner, Alexander |
|---|---|
| Formato: | Dataset Open Access |
| Lenguaje: | en |
| Publicado: |
PANGAEA
2026
|
| Materias: | |
| Acceso en línea: | https://doi.org/10.1594/PANGAEA.976757 |
| Etiquetas: |
Agregar Etiqueta
Sin Etiquetas, Sea el primero en etiquetar este registro!
|
Ejemplares similares
Velocity-dependent friction measurements, inverse modeling results (aging law) on powdered gouge of ash and scoria samples from Anak Krakatau, Sunda Strait, Indonesia (Table 4)
por: Stoepke, Fiene, et al.
Publicado: (2024)
por: Stoepke, Fiene, et al.
Publicado: (2024)
Velocity-dependent friction measurements, inverse modeling results (slip law) on powdered gouge of ash and scoria samples from Anak Krakatau, Sunda Strait, Indonesia (Table 5)
por: Stoepke, Fiene, et al.
Publicado: (2024)
por: Stoepke, Fiene, et al.
Publicado: (2024)
Results of direct shear experiments on intact and powdered samples from the submarine flank of Kilauea volcano (Hawaii, USA): Inverse Modeling Results (Slip Law)
por: Stoepke, Fiene, et al.
Publicado: (2025)
por: Stoepke, Fiene, et al.
Publicado: (2025)
Results of direct shear experiments on intact and powdered samples from the submarine flank of Kilauea volcano (Hawaii, USA): Inverse Modeling Results (Aging Law)
por: Stoepke, Fiene, et al.
Publicado: (2025)
por: Stoepke, Fiene, et al.
Publicado: (2025)
Velocity-dependent friction measurements, inverse modeling results (Aging Law) of the cation exchange capacity (CEC) laboratory experiment
por: Ikari, Matt J, et al.
Publicado: (2024)
por: Ikari, Matt J, et al.
Publicado: (2024)
Velocity-dependent friction measurements, inverse modeling results (Slip Law) of the cation exchange capacity (CEC) laboratory experiment
por: Ikari, Matt J, et al.
Publicado: (2024)
por: Ikari, Matt J, et al.
Publicado: (2024)
Velocity-dependent friction measurements, inverse modeling with 2 state variables using sample displacement (slip law) on a Nankai Trough sample
por: Ikari, Matt J, et al.
Publicado: (2026)
por: Ikari, Matt J, et al.
Publicado: (2026)
Velocity-dependent friction measurements, inverse modeling with 2 state variables using sample displacement (aging law) on a Nankai Trough sample
por: Ikari, Matt J, et al.
Publicado: (2026)
por: Ikari, Matt J, et al.
Publicado: (2026)
Velocity-dependent friction measurements, inverse modeling with 2 state variables using load point displacement (slip law) on a Nankai Trough sample
por: Ikari, Matt J, et al.
Publicado: (2026)
por: Ikari, Matt J, et al.
Publicado: (2026)
Velocity-dependent friction measurements, inverse modeling results (aging law) of samples from IODP Hole 362-U1480G (Table 5)
por: Stanislowski, Katja, et al.
Publicado: (2025)
por: Stanislowski, Katja, et al.
Publicado: (2025)
Frictional data for the experiments performed under a standardized effective normal stress of 10 MPa of samples from IODP Site 375-U1520
por: Eijsink, Agathe, et al.
Publicado: (2022)
por: Eijsink, Agathe, et al.
Publicado: (2022)
Frictional data for the experiments performed under in-situ effective normal stress of samples from IODP Site 375-U1520
por: Eijsink, Agathe, et al.
Publicado: (2022)
por: Eijsink, Agathe, et al.
Publicado: (2022)
Rate and state friction parameters measured on core samples from IODP Hole 370-C0023A
por: Zhang, Junli, et al.
Publicado: (2024)
por: Zhang, Junli, et al.
Publicado: (2024)
Results of direct shear experiments on intact and powdered samples from the submarine flank of Kilauea volcano (Hawaii, USA): Velocity-dependent Friction Measurements, Input Parameters for Forward Modeling
por: Stoepke, Fiene, et al.
Publicado: (2025)
por: Stoepke, Fiene, et al.
Publicado: (2025)
Rate- and state friction (RSF) parameters obtained from inverse modelling of velocity step test data of marine sediments from IODP Site 301-U1301, Juan de Fuca plate
por: Stanislowski, Katja, et al.
Publicado: (2022)
por: Stanislowski, Katja, et al.
Publicado: (2022)
Velocity-dependent friction measurements, input parameters for forward modeling on powdered gouge of ash and scoria samples from Anak Krakatau, Sunda Strait, Indonesia (Table 3)
por: Stoepke, Fiene, et al.
Publicado: (2024)
por: Stoepke, Fiene, et al.
Publicado: (2024)
Measured rate-and-state friction coefficients, with input parameters for the forward model and the best fit model parameters as obtained by an inverse modelling technique during laboratory shear experiments
por: Eijsink, Agathe, et al.
Publicado: (2023)
por: Eijsink, Agathe, et al.
Publicado: (2023)
Velocity-dependent friction measurements, input parameters for forward modeling of samples from IODP Hole 362-U1480G (Table 4)
por: Stanislowski, Katja, et al.
Publicado: (2025)
por: Stanislowski, Katja, et al.
Publicado: (2025)
Input parameters for RSF forward modeling with 2 state variable using load point displacement on a Nankai Trough sample
por: Ikari, Matt J, et al.
Publicado: (2026)
por: Ikari, Matt J, et al.
Publicado: (2026)
Input parameters for RSF forward modeling with 2 state variables using sample displacement on a Nankai Trough sample
por: Ikari, Matt J, et al.
Publicado: (2026)
por: Ikari, Matt J, et al.
Publicado: (2026)
Velocity-dependent friction measurements, inverse modeling with 1 state variable using load point displacement (slip law) on a Nankai Trough sample
por: Ikari, Matt J, et al.
Publicado: (2026)
por: Ikari, Matt J, et al.
Publicado: (2026)
Velocity-dependent friction measurements, input parameters for forward modeling of the cation exchange capacity (CEC) laboratory experiment
por: Ikari, Matt J, et al.
Publicado: (2024)
por: Ikari, Matt J, et al.
Publicado: (2024)
Velocity-dependent friction measurements, inverse modeling with 1 state variable using sample displacement (aging law) on a Nankai Trough sample
por: Ikari, Matt J, et al.
Publicado: (2026)
por: Ikari, Matt J, et al.
Publicado: (2026)
Velocity-dependent friction measurements, inverse modeling with 1 state variable using sample displacement (slip law) on a Nankai Trough sample
por: Ikari, Matt J, et al.
Publicado: (2026)
por: Ikari, Matt J, et al.
Publicado: (2026)
Velocity-dependent friction measurements, inverse modeling with 1 state variable using load point displacement (aging law) on a Nankai Trough sample
por: Ikari, Matt J, et al.
Publicado: (2026)
por: Ikari, Matt J, et al.
Publicado: (2026)
Input parameters for RSF forward modeling with 1 state variable using load point displacement on a Nankai Trough sample
por: Ikari, Matt J, et al.
Publicado: (2026)
por: Ikari, Matt J, et al.
Publicado: (2026)
Input parameters for RSF forward modeling with 1 state variable using sample displacement on a Nankai Trough sample
por: Ikari, Matt J, et al.
Publicado: (2026)
por: Ikari, Matt J, et al.
Publicado: (2026)
Table 2: Input parameters to model velocity-dependent friction parameters
por: Ikari, Matt J
Publicado: (2020)
por: Ikari, Matt J
Publicado: (2020)
Table 3: Friction measurements for calculation of "net" friction velocity dependence
por: Ikari, Matt J
Publicado: (2020)
por: Ikari, Matt J
Publicado: (2020)
Supplementary Table 1: Constitutive parameters from rate-and-state friction modeling of velocity step data
por: Ikari, Matt J, et al.
Publicado: (2020)
por: Ikari, Matt J, et al.
Publicado: (2020)
Table 1: Model-extracted velocity-dependent friction parameters
por: Ikari, Matt J
Publicado: (2020)
por: Ikari, Matt J
Publicado: (2020)
(Table 3) Rate-and-state dependent friction parameters from inverse modeling of velocity upsteps
por: Ikari, Matt J
Publicado: (2019)
por: Ikari, Matt J
Publicado: (2019)
Table 3. Experimental SSE Parameters
por: Ikari, Matt J, et al.
Publicado: (2020)
por: Ikari, Matt J, et al.
Publicado: (2020)
Frictional velocity dependence of laboratory shearing experiments
por: Ikari, Matt J, et al.
Publicado: (2020)
por: Ikari, Matt J, et al.
Publicado: (2020)
Velocity-dependent measurements of Nankai Trough basalts
por: Ikari, Matt J, et al.
Publicado: (2020)
por: Ikari, Matt J, et al.
Publicado: (2020)
Rate- and state-dependent friction parameters
por: Ikari, Matt J
Publicado: (2020)
por: Ikari, Matt J
Publicado: (2020)
Table 2: Input parameters to model velocity-dependent friction parameters
por: Ikari, Matt J
Publicado: (2020)
por: Ikari, Matt J
Publicado: (2020)
(Table 2) Velocity-dependent friction parameters for DFDP-1A ultramylonite, 77.8 m
por: Ikari, Matt J
Publicado: (2020)
por: Ikari, Matt J
Publicado: (2020)
Table 2: Frictional healing and creep relaxation measurements on SAFOD samples
por: Ikari, Matt J
Publicado: (2020)
por: Ikari, Matt J
Publicado: (2020)
(Table 3) Velocity-dependent friction parameters for DFDP-1A and DFDP-1B core samples at 100 MPa and 160 °C
por: Ikari, Matt J
Publicado: (2020)
por: Ikari, Matt J
Publicado: (2020)
Ejemplares similares
-
Velocity-dependent friction measurements, inverse modeling results (aging law) on powdered gouge of ash and scoria samples from Anak Krakatau, Sunda Strait, Indonesia (Table 4)
por: Stoepke, Fiene, et al.
Publicado: (2024) -
Velocity-dependent friction measurements, inverse modeling results (slip law) on powdered gouge of ash and scoria samples from Anak Krakatau, Sunda Strait, Indonesia (Table 5)
por: Stoepke, Fiene, et al.
Publicado: (2024) -
Results of direct shear experiments on intact and powdered samples from the submarine flank of Kilauea volcano (Hawaii, USA): Inverse Modeling Results (Slip Law)
por: Stoepke, Fiene, et al.
Publicado: (2025) -
Results of direct shear experiments on intact and powdered samples from the submarine flank of Kilauea volcano (Hawaii, USA): Inverse Modeling Results (Aging Law)
por: Stoepke, Fiene, et al.
Publicado: (2025) -
Velocity-dependent friction measurements, inverse modeling results (Aging Law) of the cation exchange capacity (CEC) laboratory experiment
por: Ikari, Matt J, et al.
Publicado: (2024)