A marine controlled-source electromagnetic application using towed and seafloor-based receivers capable of mapping seafloor and embedded massive sulfides

Author:

Ishizu Keiichi1ORCID,Kasaya Takafumi2ORCID,Goto Tada-Nori3,Koike Katsuaki4ORCID,Siripunvaraporn Weerachai5ORCID,Iwamoto Hisanori6ORCID,Kawada Yoshifumi2ORCID,Ishibashi Jun-Ichiro7ORCID

Affiliation:

1. Kyoto University, Department of Urban Management, Kyoto, Japan; Japan Agency for Marine-Earth Science and Technology (JAMSTEC), Research Institute for Marine Resources Utilization, Kanagawa, Japan; and University of Hyogo, Graduate School of Science, Hyogo, Japan. (corresponding author).

2. Japan Agency for Marine-Earth Science and Technology (JAMSTEC), Research Institute for Marine Resources Utilization, Kanagawa, Japan.

3. Kyoto University, Department of Urban Management, Kyoto, Japan and University of Hyogo, Graduate School of Science, Hyogo, Japan.

4. Kyoto University, Department of Urban Management, Kyoto, Japan.

5. Mahidol University, Department of Physics, Bangkok, Thailand and ThEP Center, Commission on Higher Education, Bangkok, Thailand.

6. Nippon Marine Enterprises, Ltd., Marine Survey Department, Kanagawa, Japan.

7. Kobe University, Ocean-Bottom Exploration Center, Hyogo, Japan.

Abstract

Deep-sea massive sulfide deposits formed by hydrothermal fluid circulation are potential metal resources. They can exist not only as mound manifestations on the seafloor (seafloor massive sulfides) but also as embedded anomalies buried beneath the seafloor (embedded massive sulfides). The distribution of embedded massive sulfides is largely unknown, despite their expected high economic value. Recent drilling surveys have revealed a complex model suggesting embedded massive sulfides coexist beneath seafloor massive sulfides. In the coexisting case, geophysical methods are required to distinguish and map seafloor and embedded massive sulfides for accurate resource estimation. Marine controlled-source electromagnetic (CSEM) methods are useful for mapping massive sulfides because they exhibit higher electrical conductivity compared with the surrounding host rock. However, CSEM applications capable of distinguishing and mapping the massive sulfides are lacking. We use a towed electric dipole transmitter with two types of receivers: stationary ocean-bottom electric (OBE) and short-offset towed receivers. This combination uses differences in sensitivity: the towed receiver data are sensitive to seafloor massive sulfides, and the stationary OBE receiver data are sensitive to embedded massive sulfides. Our synthetic data example demonstrates that the combined inversion of towed and OBE data can recover resistivities and positions of the massive sulfides more accurately than existing inversion methods using individual applications. We perform the combined inversion of measured CSEM data obtained from the middle Okinawa Trough. The inversion models demonstrate that a combined inversion can map the location and shape of embedded massive sulfides identified during drilling more accurately than the inversion of individual data sets.

Funder

Japan Society for the Promotion of Science

Cross-ministerial Strategic Innovation Promotion Program “Next Generation Technology for Ocean Resources Exploration”

Publisher

Society of Exploration Geophysicists

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