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Pore-Scale Phenomena of Gravity-Driven Unstable Flow - supplemental video files

dc.contributor.authorMin, Xinying
dc.date.accessioned2023-08-01T18:12:29Z
dc.date.available2023-08-01T18:12:29Z
dc.date.issued2023-08-01
dc.description.abstractUnderstanding gravity-driven preferential flow in uniform porous materials is important as they can facilitate the movement of pollutants, pathogens, and pesticides to groundwater. Previous studies suggested the dynamic contact angle could be used to model unstable gravity-driven flow in coarse sand. This study aimed to examine this theory in a broader context involving a range of porous media with different static contact angles. The results show that pore water movement was discontinuous. After a period in which the pressure in the water increased, the water moved through the smallest pore with high velocity. After the initial breakthrough, the flow stopped within 0.01 seconds. The relationship between the dynamic contact angle followed the Hoffman-Jiang equation for media that exhibited unstable gravity drive flows. The acid-washed sand that only under very dry conditions had an unstable wetting front did not show a relationship between velocity and contact angle.en_US
dc.identifier.urihttps://hdl.handle.net/1813/113352
dc.rightsCC0 1.0 Universal*
dc.rights.urihttp://creativecommons.org/publicdomain/zero/1.0/*
dc.subjectInfiltrationen_US
dc.subjectUnsaturated flowen_US
dc.subjectPorous mediaen_US
dc.subjectPreferential flowen_US
dc.titlePore-Scale Phenomena of Gravity-Driven Unstable Flow - supplemental video filesen_US
dc.typevideo/moving imageen_US
schema.accessibilityFeaturelongDescriptionen_US
schema.accessibilityHazardnoneen_US
schema.accessibilitySummarySilent video microscope images of dyed water moving into granular media. Completely unusable by blind people. Use the thesis document instead.en_US

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video capture of water infiltration into unwashed glass beads. Recorded frame rate: 500 fps. Display frame rate: 5fps. Resolution: 1.4 micron/pixel .
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video capture of water infiltration into unwashed glass beads. Recorded frame rate: 500 fps. Display frame rate: 5fps. Resolution: 1.35 micron/pixel.
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video capture of water infiltration into unwashed sand. Recorded frame rate: 500 fps. Display frame rate: 5fps. Resolution: 1.4 micron/pixel.
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3.98 MB
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video capture of water infiltration into unwashed sand. Recorded frame rate: 500 fps. Display frame rate: 5fps. Resolution: 1.4 micron/pixel.
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1.79 MB
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video capture of water infiltration into acid-washed glass beads. Recorded frame rate: 500 fps. Display frame rate: 5fps. Resolution: 1.79 micron/pixel.