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On compressional wave attenuation in muddy marine sediments
Charles W Holland1, Stan E Dosso2
1Portland State University, Portland, Oregon 97201, USA.
The Journal of the Acoustical Society of America
|July 9, 2021
Summary
Compressional wave attenuation in fine-grained sediments is influenced by sand-mud transition zones. Accounting for these intervals improves predictions of acoustic attenuation in muddy continental shelf environments.
Area of Science:
- Geophysics
- Acoustics
- Sedimentology
Background:
- Compressional wave attenuation is a key parameter for understanding acoustic propagation in marine sediments.
- Fine-grained sediments, such as those found in the New England Mud Patch, exhibit complex acoustic properties.
- Previous methods for measuring attenuation in situ have limitations in complex sediment structures.
Purpose of the Study:
- To measure in situ compressional wave attenuation in fine-grained sediments.
- To investigate the influence of sediment structure, specifically sand-mud transition intervals, on acoustic attenuation.
- To develop a predictive model for compressional wave attenuation in muddy continental shelf environments.
Main Methods:
- Application of a novel method measuring in situ compressional wave attenuation using spectral decay of reflection coefficient Bragg resonances.
- In situ measurements were conducted in the New England Mud Patch on mud layers of varying thickness (10.3 m and 3.2 m).
- Analysis focused on the impact of a sand-mud transition interval on measured attenuation values.
Main Results:
- Layer-averaged compressional wave attenuation was measured at 0.04 dB/m/kHz in a 10.3 m mud layer.
- Attenuation was found to be twice as large in a site with a 3.2 m mud thickness.
- Both measurements were significantly influenced by a ~1 m sand-mud transition interval at the base of the mud layer.
Conclusions:
- The spatial dependence of compressional wave attenuation in muddy sediments can be predicted by accounting for the sand-mud transition interval.
- Simple scaling methods incorporating the transition interval can improve attenuation predictions.
- The findings suggest that this predictive scaling approach is applicable to muddy continental shelf environments globally.
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