Synchronization of multifractal properties of continuous acoustic emission during the preparation and implementation of dynamic slip in model fault

According to the stick-slip model, the relative movement of the fault planes is an act of unstable sliding, where movement begins when the stresses tangential to the fault plane reach a certain limit. The physical mechanism of dynamic slip along a fault consists of the sequential formation of conglo...

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Main Authors: Ivan A. Panteleev, Vladimir I. Okunev, Victor A. Novikov
Format: Article
Language:English
Published: Дальневосточного отделения Российской академии наук, Южно-Сахалинск, Федеральное государственное бюджетное учреждение науки Институт морской геологии и геофизики 2023-12-01
Series:Геосистемы переходных зон
Subjects:
Online Access:http://journal.imgg.ru/web/m-e2023-4-4.pdf
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author Ivan A. Panteleev
Vladimir I. Okunev
Victor A. Novikov
author_facet Ivan A. Panteleev
Vladimir I. Okunev
Victor A. Novikov
author_sort Ivan A. Panteleev
collection DOAJ
description According to the stick-slip model, the relative movement of the fault planes is an act of unstable sliding, where movement begins when the stresses tangential to the fault plane reach a certain limit. The physical mechanism of dynamic slip along a fault consists of the sequential formation of conglomerates of loaded particles (force chains) in the contact zone and their subsequent destruction. These chains together form a force skeleton characterized by a specific spatial structure and strength properties. An increase in shear stress on the fault banks leads to local destruction of the strength skeleton; further evolution of the system brings destruction processes to higher spatial levels, ultimately leading to a shift in the fault banks. Since the evolution of the process of destruction of force chains in the contact zone of a fault along the hierarchy of scales from bottom to top is similar to the evolution of crack formation in a loaded medium from microscale to macroscale (specimen scale), the authors hypothesized the coherent behavior of acoustic noise accompanying the preparation of dynamic slip and recorded in different areas of fault zones. This work is devoted to testing this hypothesis on a laboratory scale, using an installation that simulates movement along a fault. As a result of the analysis, the hypothesis about the synchronization of the statistical properties of the acoustic emission during the preparation and implementation of the dynamic movement was confirmed. It is shown that the observation (detection) of the effect of the synchronization of the statistical properties of acoustic emission depends both on the set of parameters for which the spectral coherence measure is calculated and on the location of the recording of the initial data.
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publisher Дальневосточного отделения Российской академии наук, Южно-Сахалинск, Федеральное государственное бюджетное учреждение науки Институт морской геологии и геофизики
record_format Article
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spelling doaj.art-2c590291521c4a959a33c5133319d4872024-01-30T07:59:34ZengДальневосточного отделения Российской академии наук, Южно-Сахалинск, Федеральное государственное бюджетное учреждение науки Институт морской геологии и геофизикиГеосистемы переходных зон2541-89122713-21612023-12-017405418https://doi.org/10.30730/gtrz.2023.7.4.405-418Synchronization of multifractal properties of continuous acoustic emission during the preparation and implementation of dynamic slip in model faultIvan A. Panteleev0https://orcid.org/0000-0002-7430-3667Vladimir I. Okunev1https://orcid.org/0000-0001-6024-0848Victor A. Novikov2https://orcid.org/0000-0001-9009-8862Institute of Continuum Mechanics, Ural Branch of the Russian Academy of Sciences, Perm, RussiaJoint Institute for High Temperatures of the Russian Academy of Sciences, Moscow, RussiaJoint Institute for High Temperatures of the Russian Academy of Sciences, Moscow, RussiaAccording to the stick-slip model, the relative movement of the fault planes is an act of unstable sliding, where movement begins when the stresses tangential to the fault plane reach a certain limit. The physical mechanism of dynamic slip along a fault consists of the sequential formation of conglomerates of loaded particles (force chains) in the contact zone and their subsequent destruction. These chains together form a force skeleton characterized by a specific spatial structure and strength properties. An increase in shear stress on the fault banks leads to local destruction of the strength skeleton; further evolution of the system brings destruction processes to higher spatial levels, ultimately leading to a shift in the fault banks. Since the evolution of the process of destruction of force chains in the contact zone of a fault along the hierarchy of scales from bottom to top is similar to the evolution of crack formation in a loaded medium from microscale to macroscale (specimen scale), the authors hypothesized the coherent behavior of acoustic noise accompanying the preparation of dynamic slip and recorded in different areas of fault zones. This work is devoted to testing this hypothesis on a laboratory scale, using an installation that simulates movement along a fault. As a result of the analysis, the hypothesis about the synchronization of the statistical properties of the acoustic emission during the preparation and implementation of the dynamic movement was confirmed. It is shown that the observation (detection) of the effect of the synchronization of the statistical properties of acoustic emission depends both on the set of parameters for which the spectral coherence measure is calculated and on the location of the recording of the initial data.http://journal.imgg.ru/web/m-e2023-4-4.pdfmodel faultacoustic emissionsynchronization multifractal properties
spellingShingle Ivan A. Panteleev
Vladimir I. Okunev
Victor A. Novikov
Synchronization of multifractal properties of continuous acoustic emission during the preparation and implementation of dynamic slip in model fault
Геосистемы переходных зон
model fault
acoustic emission
synchronization
multifractal properties
title Synchronization of multifractal properties of continuous acoustic emission during the preparation and implementation of dynamic slip in model fault
title_full Synchronization of multifractal properties of continuous acoustic emission during the preparation and implementation of dynamic slip in model fault
title_fullStr Synchronization of multifractal properties of continuous acoustic emission during the preparation and implementation of dynamic slip in model fault
title_full_unstemmed Synchronization of multifractal properties of continuous acoustic emission during the preparation and implementation of dynamic slip in model fault
title_short Synchronization of multifractal properties of continuous acoustic emission during the preparation and implementation of dynamic slip in model fault
title_sort synchronization of multifractal properties of continuous acoustic emission during the preparation and implementation of dynamic slip in model fault
topic model fault
acoustic emission
synchronization
multifractal properties
url http://journal.imgg.ru/web/m-e2023-4-4.pdf
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AT victoranovikov synchronizationofmultifractalpropertiesofcontinuousacousticemissionduringthepreparationandimplementationofdynamicslipinmodelfault