Time‐Lapse Seafloor Surveys Reveal How Turbidity Currents and Internal Tides in Monterey Canyon Interact With the Seabed at Centimeter‐Scale

Author:

Wolfson‐Schwehr M.12ORCID,Paull C. K.1,Caress D. W.1ORCID,Gwiazda R.1ORCID,Nieminski N. M.3ORCID,Talling P. J.4ORCID,Carvajal C.15,Simmons S.6ORCID,Troni G.17ORCID

Affiliation:

1. Monterey Bay Aquarium Research Institute Moss Landing CA USA

2. Now at University of New Hampshire Center for Coastal and Ocean Mapping Durham NH USA

3. U.S. Geological Survey Pacific Coastal and Marine Science Center Santa Cruz CA USA

4. Departments of Geography and Earth Sciences Durham University Durham UK

5. Now at ConocoPhillips Houston TX USA

6. University of Hull Energy and Environment Institute Hull UK

7. Departamento de Ingeniería Mecánica y Metalúrgica Pontifica Universidad Católica de Chile Santiago Chile

Abstract

AbstractHere we show how ultra‐high resolution seabed mapping using new technology can help to understand processes that sculpt submarine canyons. Time‐lapse seafloor surveys were conducted in the axis of Monterey Canyon, ∼50 km from the canyon head (∼1,840 m water depth) over an 18‐month period. These surveys comprised 5‐cm resolution multibeam bathymetry, 1‐cm resolution lidar bathymetry, and 2‐mm resolution stereophotographic imagery. Bathymetry data reveal centimeter‐scale textures that would be undetectable by more traditional survey methods. Upward‐looking Acoustic Doppler Current Profilers at the site recorded the flow character of internal tides and the passage of three turbidity currents, while sediment cores collected from the site record flow deposits. Combined with flow and core data, the bathymetry shows how turbidity currents and internal tides modify the seabed. The turbidity currents drape sediment across the site, infilling bedform troughs and smoothing erosional features carved by the internal tides (e.g., rippled scours). Turbidity currents with speeds of 0.9–3.3 m/s failed to cause notable bedform movement, which is surprising given that flows with similar speeds produced rapid bedform migration elsewhere, including the upper Monterey Canyon. The lack of migration may be related to the character of the underlying substrate or indicate that turbidity currents at the site lack dense, near‐bed layers. The scale of scours produced by the internal tides (≤0.7 m/s) approaches the scale of features recorded in the ancient rock record. Thus, these results illustrate how the scale gap between seabed mapping technology and the rock record may eventually be bridged.

Funder

Natural Environment Research Council

Publisher

American Geophysical Union (AGU)

Subject

Earth-Surface Processes,Geophysics

Reference57 articles.

1. Preconditioning by sediment accumulation can produce powerful turbidity currents without major external triggers

2. Impact of debris flows and turbidity currents on seafloor structures;Bruschi R.;Nowegian Journal of Geology,2006

3. Flushing submarine canyons

4. Improved processing of Hydrosweep DS multibeam data on the R/V Maurice Ewing

5. Caress D. W. Chayes D. N. &dosFerreira C. S.(2020).MB‐system (version 5.7.6)[Software]. Retrieved fromhttps://github.com/dwcaress/MB-System/releases/5.7.6

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