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An effective-medium model for P-wave velocities of saturated, unconsolidated saline permafrost
Author(s) -
Shan Dou,
Seiji Nakagawa,
Douglas S. Dreger,
Jonathan AjoFranklin
Publication year - 2017
Publication title -
geophysics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.178
H-Index - 172
eISSN - 1942-2156
pISSN - 0016-8033
DOI - 10.1190/geo2016-0474.1
Subject(s) - mixing (physics) , geology , permafrost , calibration , pore water pressure , geotechnical engineering , soil science , mineralogy , mathematics , physics , statistics , oceanography , quantum mechanics
To better understand the relationship between P-wave velocities and ice content in saturated, unconsolidated saline permafrost, we constructed an effective-medium model based upon ultrasonic P-wave data that were obtained from earlier laboratory studies. The model uses a two-end-member mixing approach in which an ice-filled, fully frozen end member and a water-filled, fully unfrozen end member are mixed together to form the effective medium of partially frozen sediments. This mixing approach has two key advantages: (1) It does not require parameter tuning of the mixing ratios, and (2) it inherently assumes mixed pore-scale distributions of ice that consist of frame-strengthening (i.e., cementing and/or load-bearing) ice and pore-filling ice. The model-predicted P-wave velocities agree well with our laboratory data, demonstrating the effectiveness of the model for quantitatively inferring ice content from P-wave velocities. The modeling workflow is simple and is largely free of calibration paramete...

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