Ultrasonic vibrations and coal permeability: Laboratory experimental investigations and numerical simulations

Ultrasonic vibrations in coal lead to cavitation bubble oscillation, growth, shrinkage, and collapse, and the strong vibration of cavitation bubbles not only makes coal pores break and cracks propagate, but plays an important role in enhancing the permeability of coal. In this paper, the influence o...

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Main Authors: Junwen Zhang, Yulin Li
Format: Article
Language:English
Published: Elsevier 2017-03-01
Series:International Journal of Mining Science and Technology
Online Access:http://www.sciencedirect.com/science/article/pii/S2095268617300472
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spelling doaj-539200f5390a40adaec18a8f0782de542020-11-25T02:26:03ZengElsevierInternational Journal of Mining Science and Technology2095-26862017-03-01272221228Ultrasonic vibrations and coal permeability: Laboratory experimental investigations and numerical simulationsJunwen Zhang0Yulin Li1Heilongjiang University of Science and Technology, School of Mining Engineering, Harbin 150022, China; Corresponding author.Heilongjiang University of Science and Technology, School of Mining Engineering, Harbin 150022, China; China University of Mining and Technology, School of Mechanics and Architectural Engineering, Beijing 100083, ChinaUltrasonic vibrations in coal lead to cavitation bubble oscillation, growth, shrinkage, and collapse, and the strong vibration of cavitation bubbles not only makes coal pores break and cracks propagate, but plays an important role in enhancing the permeability of coal. In this paper, the influence of ultrasonic cavitation on coal and the effects of the sonic waves on crack generation, propagation, connection, as well as the effect of cracks on the coal permeability, are studied. The experimental results show that cracks in coal are generated even connected rapidly after ultrasonic cavitation. Under the effect of ultrasonic cavitation, the permeability increases between 30% and 60%, and the number of cracks in coal also significantly increased. Numerical experiments show that the effective sound pressure is beneficial to fracture propagation and connection, and it is closely related to the permeability. Moreover, the numerical simulations and physical experiments provide a guide for the coal permeability improvement. Keywords: Ultrasonic cavitation, Rock-coal, Coal fracture, Permeability, Experimental analysishttp://www.sciencedirect.com/science/article/pii/S2095268617300472
collection DOAJ
language English
format Article
sources DOAJ
author Junwen Zhang
Yulin Li
spellingShingle Junwen Zhang
Yulin Li
Ultrasonic vibrations and coal permeability: Laboratory experimental investigations and numerical simulations
International Journal of Mining Science and Technology
author_facet Junwen Zhang
Yulin Li
author_sort Junwen Zhang
title Ultrasonic vibrations and coal permeability: Laboratory experimental investigations and numerical simulations
title_short Ultrasonic vibrations and coal permeability: Laboratory experimental investigations and numerical simulations
title_full Ultrasonic vibrations and coal permeability: Laboratory experimental investigations and numerical simulations
title_fullStr Ultrasonic vibrations and coal permeability: Laboratory experimental investigations and numerical simulations
title_full_unstemmed Ultrasonic vibrations and coal permeability: Laboratory experimental investigations and numerical simulations
title_sort ultrasonic vibrations and coal permeability: laboratory experimental investigations and numerical simulations
publisher Elsevier
series International Journal of Mining Science and Technology
issn 2095-2686
publishDate 2017-03-01
description Ultrasonic vibrations in coal lead to cavitation bubble oscillation, growth, shrinkage, and collapse, and the strong vibration of cavitation bubbles not only makes coal pores break and cracks propagate, but plays an important role in enhancing the permeability of coal. In this paper, the influence of ultrasonic cavitation on coal and the effects of the sonic waves on crack generation, propagation, connection, as well as the effect of cracks on the coal permeability, are studied. The experimental results show that cracks in coal are generated even connected rapidly after ultrasonic cavitation. Under the effect of ultrasonic cavitation, the permeability increases between 30% and 60%, and the number of cracks in coal also significantly increased. Numerical experiments show that the effective sound pressure is beneficial to fracture propagation and connection, and it is closely related to the permeability. Moreover, the numerical simulations and physical experiments provide a guide for the coal permeability improvement. Keywords: Ultrasonic cavitation, Rock-coal, Coal fracture, Permeability, Experimental analysis
url http://www.sciencedirect.com/science/article/pii/S2095268617300472
work_keys_str_mv AT junwenzhang ultrasonicvibrationsandcoalpermeabilitylaboratoryexperimentalinvestigationsandnumericalsimulations
AT yulinli ultrasonicvibrationsandcoalpermeabilitylaboratoryexperimentalinvestigationsandnumericalsimulations
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