Acoustic Rapid Detection Technology and Its Application for Rare Earth Element (REE)-Rich Sediments in the Pigafetta Basin of the Western Pacific
Abstract
:1. Introduction
2. Geological Setting
3. Methods
3.1. Field Collection and Fine Processing
3.2. Sample Analysis
4. Discussion
4.1. Classification and Characterization of Acoustic Facies
4.2. The Corresponding Relationship between Sub-Bottom Profile Measurement Results and Different Types of Sediments
4.3. Distribution of Rare Earth Element-Rich Sediment Thickness
5. Conclusions
- Acoustic Facies Classification: We have classified the sub-bottom profile data into three distinct acoustic facies, differentiated by the morphology and pattern of the reflection profiles: opaque facies (O-type), transparent facies (T -type), and layered facies (L-type).
- Profile Characteristics: The survey lines with significant seabed topography undulations—ranging up to 2500 ms and 3750 ms—predominantly exhibit features of O-type and T-type facies. In contrast, where the seabed undulation is less than 1500 ms, the survey line profiles display characteristics of O-type, L-type, and T-type facies.
- Sediment Analysis: Examination of the depth variations in sediment lithology, element content, and mineral composition at the GC1 and GC2 cores from the T-type facies region has led to the conclusion that the rare earth element content is closely associated with phosphorus (P). The transparent facies (T-type), corresponding to rare earth-rich mud, is identified as a potential target horizon for the REY-rich sediment layers.
- Spatial Distribution of REY-Rich Sediments: The REY-rich sedimentary layer in our research area exhibits a distinct east–west zoning pattern. It is thinner at the peripheries, with the western part being thicker than the eastern part, and the central region showing the greatest thickness. The layer’s thickness generally varies from 12 m to 36 m, reaching a maximum of 36 m. A particularly thick strip in the northwestern area, ranging from 30 m to 36 m, is identified as a pivotal region for future exploration of rare earth resources. By comparing the geographic locations of the two regions depicted in Figure 1 (the EEZ and our research area) with known areas of rich rare earth accumulation, it is inferred that the area extending from the southeastern edge of the EEZ to the northwestern boundary of our study area likely forms part of a REY-rich accumulation zone.
- Method for Identifying Enriched Layers: The methodology presented in this article enables the identification of the potential lower boundary of the enriched layer by assessing the thickness range of the REY-rich sedimentary layer. However, further research is essential for the precise delineation of enrichment layers that may extend beyond the core’s length. This could involve analyzing the acoustic characteristics of the enriched layers within sediment cores, conducting attribute analysis along the top and bottom boundaries of deep-sea REY-rich sedimentary layers, and identifying the attribute signatures of enriched layers in sediment cores. Ultimately, this process aims to determine the possible REY-enriched layers within the broader sedimentary context through comparative analyses.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Xue, H.; Du, M.; Zeng, F.; Yang, L.; Yang, Y.; He, G.; Sun, X. Acoustic Rapid Detection Technology and Its Application for Rare Earth Element (REE)-Rich Sediments in the Pigafetta Basin of the Western Pacific. J. Mar. Sci. Eng. 2024, 12, 1283. https://doi.org/10.3390/jmse12081283
Xue H, Du M, Zeng F, Yang L, Yang Y, He G, Sun X. Acoustic Rapid Detection Technology and Its Application for Rare Earth Element (REE)-Rich Sediments in the Pigafetta Basin of the Western Pacific. Journal of Marine Science and Engineering. 2024; 12(8):1283. https://doi.org/10.3390/jmse12081283
Chicago/Turabian StyleXue, Hua, Min Du, Fanxiang Zeng, Li Yang, Yong Yang, Gaowen He, and Xiaoming Sun. 2024. "Acoustic Rapid Detection Technology and Its Application for Rare Earth Element (REE)-Rich Sediments in the Pigafetta Basin of the Western Pacific" Journal of Marine Science and Engineering 12, no. 8: 1283. https://doi.org/10.3390/jmse12081283