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Статті в журналах з теми "Friction rate-and-state"
Sleep, Norman H. "Rake dependent rate and state friction." Journal of Geophysical Research: Solid Earth 103, B4 (April 10, 1998): 7111–19. http://dx.doi.org/10.1029/98jb00199.
Повний текст джерелаOzaki, Shingo, Takeru Matsuura, and Satoru Maegawa. "Rate-, state-, and pressure-dependent friction model based on the elastoplastic theory." Friction 8, no. 4 (January 4, 2020): 768–83. http://dx.doi.org/10.1007/s40544-019-0321-3.
Повний текст джерелаOzaki, Shingo. "Finite Element Analysis of Rate- and State-Dependent Frictional Contact Behavior." Key Engineering Materials 462-463 (January 2011): 547–52. http://dx.doi.org/10.4028/www.scientific.net/kem.462-463.547.
Повний текст джерелаD. Ghanim, Sattam, Qais ѕ. Banyhussan, and Thulfiqar А. Aboaljus. "THE PUSHOUT STRENGTH OF CONCRETE PAVEMENT SLAB AND CLAY SOIL LAYERS." Journal of Engineering and Sustainable Development 25, Special (September 20, 2021): 3–224. http://dx.doi.org/10.31272/jeasd.conf.2.3.22.
Повний текст джерелаPutelat, Thibaut, John R. Willis, and Jonathan H. P. Dawes. "Wave-modulated orbits in rate-and-state friction." International Journal of Non-Linear Mechanics 47, no. 2 (March 2012): 258–67. http://dx.doi.org/10.1016/j.ijnonlinmec.2011.05.016.
Повний текст джерелаGu, Jicheng. "Friction constitutive law with rate and state dependences." Pure and Applied Geophysics PAGEOPH 124, no. 4-5 (1986): 773–91. http://dx.doi.org/10.1007/bf00879610.
Повний текст джерелаBerthoud, P., T. Baumberger, C. G’Sell, and J. M. Hiver. "Physical analysis of the state- and rate-dependent friction law: Static friction." Physical Review B 59, no. 22 (June 1, 1999): 14313–27. http://dx.doi.org/10.1103/physrevb.59.14313.
Повний текст джерелаRezakhani, Roozbeh, Fabian Barras, Michael Brun, and Jean-François Molinari. "Finite element modeling of dynamic frictional rupture with rate and state friction." Journal of the Mechanics and Physics of Solids 141 (August 2020): 103967. http://dx.doi.org/10.1016/j.jmps.2020.103967.
Повний текст джерелаNAKATANI, Masao, and Kohei NAGATA. "Rate- and State-dependent Friction and its Underlying Physics." Zisin (Journal of the Seismological Society of Japan. 2nd ser.) 61, Supplement (2009): 519–26. http://dx.doi.org/10.4294/zisin.61.519.
Повний текст джерелаPutelat, Thibaut, and Jonathan H. P. Dawes. "Steady and transient sliding under rate-and-state friction." Journal of the Mechanics and Physics of Solids 78 (May 2015): 70–93. http://dx.doi.org/10.1016/j.jmps.2015.01.016.
Повний текст джерелаДисертації з теми "Friction rate-and-state"
Pipping, Elias [Verfasser]. "Dynamic problems of rate-and-state friction in viscoelasticity / Elias Pipping." Berlin : Freie Universität Berlin, 2015. http://d-nb.info/1064869637/34.
Повний текст джерелаNakano, Ryuji. "Experimental Research on Rate- and State- Dependent Friction Constitutive Law Focusing on the Transient Change of Frictional Strength at Intermediate to High Slip Velocities." Kyoto University, 2018. http://hdl.handle.net/2433/232259.
Повний текст джерелаLestrelin, Hugo. "Vers une approche physique de l'aléa glissement de terrain déclenché par un séisme." Electronic Thesis or Diss., Université Côte d'Azur, 2025. http://www.theses.fr/2025COAZ5005.
Повний текст джерелаCoseismic landslides contribute to casualties and economic losses during earthquakes.This phenomena is ubiquitous, and its consequences range from cutting off road portions to tsunamis. In order to understand the processes that lead to their instability, we asked ourselves: can we model landslides on pre-existing faults and their seismic triggering using a friction law derived from laboratory experiments, the rate-and-state law. In a first step, we identified the roles of the properties of the landslide (friction, thickness of these dimentary mass, etc.) and the incident wave (frequency, duration, and amplitude) through numerical simulations using the spectral element method and theoretical analyses. By following the state variable of the rate-and-state law, we can determine the stability state of a landslide considered in the case of single-frequency incident waves. In a second step, we applied these theoretical results to the case of the underwater slope of Nice airport. Using previous studies and recent sediment cores drilled near the 1979 landslide tear scar (IFREMER MaRoLyS-PenFeld oceanographic campaign), and rate-and-state laboratory tests at University La Sapienza in Rome, we constrained the geomechanical parameters of the landslide in our simulations. These values, combined with the use of empirical Green's functions for incident waves, allowed us to analyze the stability of the Nice submarine slope under different seismic triggering scenarios, in particular earthquakes of magnitude 6.5 with different epicentral distance
Hillers, G. "On the origin of earthquake complexity in continuum fault models with rate and state friction." Thesis, 2005. http://hdl.handle.net/2122/1024.
Повний текст джерелаInstitute of Geophysics, ETH Zurich. This work was sponsored by EC-Project RELIEF (EVG1-CT-2002-00069).
Unpublished
open
GIACOMEL, Piercarlo. "Frictional, transport properties, and microstructures of simulated basalt faults." Doctoral thesis, 2021. http://hdl.handle.net/11573/1509976.
Повний текст джерелаEarthquakes induced by anthropic activities are a major concern for the success of the industrial operations associated with in-situ underground wastewater injection, oil and gas withdrawals, geothermal energy exploitation, and geological carbon sequestration. Over the last few decades, basalt rocks have drawn heightened attention from the geo-energy industry and the scientific community because of their widespread occurrence in the oceanic lithosphere and their efficiency to act as carbon sinks, thus contributing to locally reduce the CO2 anthropogenic emissions. Given the direct implications for earthquake nucleation, propagation, and arrest in basaltic-dominated environments, understanding the frictional, mechanical, and transport properties of basalts-bearing faults and fractures has become of paramount importance. To gain better insights on the mechanical behavior of basalt-hosted faults, notably the earthquake nucleation phase, friction experiments were performed using the biaxial deformation machine BRAVA and the rotary-shear apparatus SHIVA, both installed at the National Institute of Geophysics and Volcanology (INGV, Rome), Italy. Whereas, to characterize the transport properties of basalt cores and simulated faults, hydraulic transmissivity was measured on the permeameter and before and after friction tests on SHIVA. Three main scientific topics were addressed using an experimental approach: 1) the frictional strength, stability, and healing properties of basalt-built experimental faults (i.e., simulated gouge and bare rock surfaces) under room-dry and wet conditions, by integrating the mechanical data with fault microstructures (Chapter 2); 2) the frictional instabilities and carbonation processes of simulated initially bare rock surfaces with different degree of alteration, triggered by injection of pressurized H2O, pure CO2 , CO2 - rich water, and Argon (Chapter 3); 3) the hydromechanical properties changes of simulated initially bare rock surfaces and their influence on the fault slip behavior during water pressurization (Chapter 4). The accurate stress paths analysis from rotary-shear tests involving hollow bare rock surfaces in Ch.4 required the development of an experimentally derived model accounting for the cylindrical geometry of SHIVA samples, that modifies the fluid pressure contribution on the effective normal stress acting on the laboratory fault, (Appendix 1). All the tests were performed at ambient temperature, which may mimic the temperature conditions in low enthalpy geo-energy sites in basalts. In this dissertation, overall, I demonstrate that the static friction coefficient of basalts is in the range of μ ~ 0.6 – 0.8, at conditions ranging from room-dry to supra-hydrostatic, regardless of the alteration state of basalts and the fluid chemistry during short-term laboratory experiments (< 60 min). Therefore, basalts are inherently frictionally strong and the high healing rates testify their ability to regain shear strength during the interseismic period. Secondly, I show that fault microstructure controls their frictional stability: while simulated gouge are more prone to host earthquake nucleation (i.e., velocity weakening behavior) when deformation becomes localized along well-developed shear zones formed in response to cataclasis and grain size reduction, bare rock surfaces show the opposite behavior, transitioning to velocity strengthening behavior promoted by dilatancy processes coupled with gouge production during shearing. Finally, I illustrate that changes in coupled hydromechanical properties during fluid pressurization can dominate over the effects of second-order frictional changes predicted by the rate-and state-friction laws. In this regard, I observed that hydromechanical weakening effects become more pronounced the lower the fault transmissivity. This evidence provides an effective mechanism for inducing fault weakening and ultimately, to bring about earthquake slip also in velocity-strengthening basalt fault patches.
Книги з теми "Friction rate-and-state"
Henriksen, Niels Engholm, and Flemming Yssing Hansen. Dynamic Solvent Effects: Kramers Theory and Beyond. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198805014.003.0011.
Повний текст джерелаЧастини книг з теми "Friction rate-and-state"
Cao, Tianqing, and Keiiti Aki. "Seismicity Simulation with a Rate- and State-Dependent Friction Law." In Friction and Faulting, 487–513. Basel: Birkhäuser Basel, 1986. http://dx.doi.org/10.1007/978-3-0348-6601-9_6.
Повний текст джерелаSinha, Nitish, Arun K. Singh, and Avinash D. Vasudeo. "The Effect of State Variables on Nucleation of Earthquake Using the Rate and State Friction." In Advances in Mechanical Engineering, 237–42. Singapore: Springer Singapore, 2020. http://dx.doi.org/10.1007/978-981-15-3639-7_28.
Повний текст джерелаUrata, Yumi, Futoshi Yamashita, Eiichi Fukuyama, Hiroyuki Noda, and Kazuo Mizoguchi. "Apparent Dependence of Rate- and State-Dependent Friction Parameters on Loading Velocity and Cumulative Displacement Inferred from Large-Scale Biaxial Friction Experiments." In Earthquakes and Multi-hazards Around the Pacific Rim, Vol. I, 23–43. Cham: Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-71565-0_3.
Повний текст джерелаEliseev, Alexander A., Tatiana A. Kalashnikova, Andrey V. Filippov, and Evgeny A. Kolubaev. "Material Transfer by Friction Stir Processing." In Springer Tracts in Mechanical Engineering, 169–88. Cham: Springer International Publishing, 2020. http://dx.doi.org/10.1007/978-3-030-60124-9_8.
Повний текст джерелаSinha, Nitish, Arun K. Singh, and Avinash D. Vasudeo. "Effect of Anthropogenic and Natural Activities on a Rock Slope Failure Using Rate, State, Temperature and Pore Pressure Friction." In Recent Advancements in Civil Engineering, 549–57. Singapore: Springer Singapore, 2021. http://dx.doi.org/10.1007/978-981-16-4396-5_47.
Повний текст джерелаGunnarsson, C. Allan, Tusit Weerasooriya, and Bryan Love. "Mechanical Response of Friction Stir Welded Aluminum 2139-T8 as a Function of Loading Rate and Stress-State." In Dynamic Behavior of Materials, Volume 1, 67–71. New York, NY: Springer New York, 2012. http://dx.doi.org/10.1007/978-1-4614-4238-7_9.
Повний текст джерелаAbe, Steffen, James H. Dieterich, Peter Mora, and David Place. "Simulation of the Influence of Rate- and State-dependent Friction on the Macroscopic Behavior of Complex Fault Zones with the Lattice Solid Model." In Earthquake Processes: Physical Modelling, Numerical Simulation and Data Analysis Part I, 1967–83. Basel: Birkhäuser Basel, 2002. http://dx.doi.org/10.1007/978-3-0348-8203-3_5.
Повний текст джерелаWalsh, J. B. "Mechanics of sliding in rate/state friction experiments." In Earthquakes: Radiated Energy and the Physics of Faulting, 295–99. Washington, D. C.: American Geophysical Union, 2006. http://dx.doi.org/10.1029/170gm29.
Повний текст джерелаMorgan, Julia K. "Particle Dynamics Simulations of Rate- and State-dependent Frictional Sliding of Granular Fault Gouge." In Computational Earthquake Science Part I, 1877–91. Basel: Birkhäuser Basel, 2004. http://dx.doi.org/10.1007/978-3-0348-7873-9_5.
Повний текст джерелаHe, Changrong, and Shengli Ma. "Dynamic Fault Motion under Variable Normal Stress Condition with Rate and State Dependent Friction." In Structural Geology and Geomechanics, 41–52. CRC Press, 2018. http://dx.doi.org/10.1201/9780203738061-4.
Повний текст джерелаТези доповідей конференцій з теми "Friction rate-and-state"
Arneson, Laura J., and Lucas K. Zoet. "USING RATE-AND-STATE FRICTION TO ESTIMATE SLIDING STABILITY OF GLACIERS." In 54th Annual GSA North-Central Section Meeting - 2020. Geological Society of America, 2020. http://dx.doi.org/10.1130/abs/2020nc-347965.
Повний текст джерелаNeves, Maria C., and Rui Gomes Neves. "Teaching the rate-and-state friction law using interactive computational modelling." In INTERNATIONAL CONFERENCE OF NUMERICAL ANALYSIS AND APPLIED MATHEMATICS: ICNAAM2022. AIP Publishing, 2024. http://dx.doi.org/10.1063/5.0210590.
Повний текст джерелаIto, S., K. Furui, and K. Tsusaka. "Analysis of Fluid-Injection-Induced Seismicity Using Dynamic Sliding Model with Rate-And State-Dependent Friction Law." In SPE Annual Technical Conference and Exhibition. SPE, 2023. http://dx.doi.org/10.2118/214891-ms.
Повний текст джерелаXie, Qifeng, Lei Wang, and Qi Li. "Simulation of Injection-Induced Slip on a Rate-and-State Fault Considering Poroelastic Effects: A Comparison with Coulomb Failure Stress Criterion." In 57th U.S. Rock Mechanics/Geomechanics Symposium. ARMA, 2023. http://dx.doi.org/10.56952/arma-2023-0638.
Повний текст джерелаShafiei, M., and A. T. Alpas. "Friction and Wear Behaviour of Nanocrystalline Cobalt." In ASME/STLE 2007 International Joint Tribology Conference. ASMEDC, 2007. http://dx.doi.org/10.1115/ijtc2007-44131.
Повний текст джерелаMa, Tianran, and Hamidreza M. Nick. "Role of the Hydromechanical Properties of Fault on Fluid Injection-Induced Seismicity with Rate-And-State Dependent Friction Model." In SPE EuropEC - Europe Energy Conference featured at the 84th EAGE Annual Conference & Exhibition. SPE, 2023. http://dx.doi.org/10.2118/214378-ms.
Повний текст джерелаKim, Tae Jin, and Carlos H. Hidrovo. "Superhydrophobic Friction Reduction Microtextured Surfaces." In ASME 2009 Second International Conference on Micro/Nanoscale Heat and Mass Transfer. ASMEDC, 2009. http://dx.doi.org/10.1115/mnhmt2009-18500.
Повний текст джерелаShafiei, M., and A. T. Alpas. "Friction and Wear Behaviour of Nanocrystalline Nickel." In World Tribology Congress III. ASMEDC, 2005. http://dx.doi.org/10.1115/wtc2005-64315.
Повний текст джерелаBobier, Carrie G., Shinichiro Joe, and J. Christian Gerdes. "Sliding Surface Envelope Control: Keeping the Vehicle Within a Safe State-Space Boundary." In ASME 2010 Dynamic Systems and Control Conference. ASMEDC, 2010. http://dx.doi.org/10.1115/dscc2010-4144.
Повний текст джерелаZhao, Xin, Prabhanjana Kalya, Robert G. Landers, and K. Krishnamurthy. "Empirical Dynamic Modeling of Friction Stir Welding Processes." In ASME 2007 International Manufacturing Science and Engineering Conference. ASMEDC, 2007. http://dx.doi.org/10.1115/msec2007-31047.
Повний текст джерела