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Johnson, David A; Ledbetter, Michael T; Burckle, Lloyd H (1977): Observation of manganese nodules and crusts recovered during the CHAIN 115 cruise from Nov 1973 until June 1974 in the Atlantic Ocean [dataset]. PANGAEA, https://doi.org/10.1594/PANGAEA.857913, Supplement to: Johnson, DA et al. (1977): Vema Channel Paleo-Oceanography: Pleistocene Dissolution Cycles and Episodic Bottom Water Flow. In: Influence of Abyssal Circulation on Sedimentary Accumulations in Space and Time, Developments in Sedimentology, Elsevier, 23, 1-33, https://doi.org/10.1016/S0070-4571(08)70548-X

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Abstract:
Investigations of piston cores from the Vema Channel and lower flanks of the Rio Grande Rise suggest the presence of episodic flow of deep and bottom water during the Late Pleistocene. Cores from below the present-day foraminiferal lysocline (at ~4000 m) contain an incomplete depositional record consisting of Mn nodules and encrustations, hemipelagic clay, displaced high-latitude diatoms, and poorly preserved heterogeneous microfossil assemblages. Cores from the depth range between 2900 m and 4000 m contain an essentially complete Late Pleistocene record, and consist of well-defined carbonate dissolution cycles with periodicities of ~100,000 years. Low carbonate content and increased dissolution correspond to glacial episodes, as interpreted by oxygen isotopic analysis of bulk foraminiferal assemblages. The absence of diagnostic high-latitude indicators (Antarctic diatoms) within the dissolution cyclss, however, suggests that AABW may not have extended to significantly shallower elevations on the lower flanks of the Rio Grande Rise during the Late Pleistocene. Therefore episodic AABW flow may not necessarily be the mechanism responsible for producing these cyclic events. This interpretation is also supported by the presence of an apparently complete Brunhes depositional record in the same cores, suggesting current velocities insufficient for significant erosion. Fluctuations in the properties and flow characteristics of another water mass, such as NADW, may be involved. The geologic evidence in core-top samples near the present-day AABW/NADW transition zone is consistent with either of two possible interpretations of the upper limit of AABW on the east flank of the channel. The foraminiferal lysocline, at ~4000 m, is near the top of the benthic thermocline and nepheloid layer, and may therefore correspond to the upper limit of relatively corrosive AABW. On the other hand, the carbonate compensation depth (CDD) at ~4250 m, which corresponds to the maximum gradient in the benthic thermocline, is characterized by rapid deposition of relatively fine-grained sediment. Such a zone of convergence and preferential sediment accumulation would be expected near the level of no motion in the AABW/NADW transition zone as a consequence of Ekman-layer veering of the mean velocity vector in the bottom boundary layer. It is possible that both of these interpretations are in part correct. The "level of no motion'' may in fact correspond to the CCD, while at the same time relatively corrosive water of Antarctic origin may mix with overlying NADW and therefore elevate the foraminifera] lysocline to depths above the level of no motion. Closely spaced observations of the hydrography and flow characteristics within the benthic thermocline will be required in order to use sediment parameters as more precise indicators of paleo-circulation.
Source:
Grant, John Bruce; Moore, Carla J; Alameddin, George; Chen, Kuiying; Barton, Mark (1992): The NOAA and MMS Marine Minerals Geochemical Database. National Geophysical Data Center, NOAA, https://doi.org/10.7289/V52Z13FT
Further details:
Warnken, Robin R; Virden, William T; Moore, Carla J (1992): The NOAA and MMS Marine Minerals Bibliography. National Geophysical Data Center, NOAA, https://doi.org/10.7289/V53X84KN
Coverage:
Median Latitude: -15.008077 * Median Longitude: -29.248538 * South-bound Latitude: -34.078000 * West-bound Longitude: -67.135000 * North-bound Latitude: 39.335000 * East-bound Longitude: 7.790000
Date/Time Start: 1973-11-21T00:00:00 * Date/Time End: 1974-06-17T00:00:00
Minimum DEPTH, sediment/rock: 0.000 m * Maximum DEPTH, sediment/rock: 7.100 m
Event(s):
CH115-4PC * Latitude: 39.335000 * Longitude: -67.135000 * Date/Time: 1973-11-21T00:00:00 * Elevation: -2536.0 m * Recovery: 213 cm * Location: Atlantic Ocean * Campaign: Chain115 (CH115) * Basis: Chain * Method/Device: Piston corer (PC) * Comment: Institute: WHOI
CH115-6PG * Latitude: 9.500000 * Longitude: -22.017000 * Date/Time: 1973-12-06T00:00:00 * Elevation: -4800.0 m * Recovery: 153 cm * Location: Atlantic Ocean * Campaign: Chain115 (CH115) * Basis: Chain * Method/Device: Trigger corer (TC) * Comment: Institute: WHOI
CH115-9D * Latitude: -30.213000 * Longitude: -39.358000 * Date/Time: 1974-05-11T00:00:00 * Elevation: -4789.0 m * Location: Atlantic Ocean * Campaign: Chain115 (CH115) * Basis: Chain * Method/Device: Dredge (DRG) * Comment: Institute: WHOI
Comment:
The CHAIN 115 dredges are described in: hdl:10013/epic.46769.d011.
From 1983 until 1989 NOAA-NCEI compiled the NOAA-MMS Marine Minerals Geochemical Database from journal articles, technical reports and unpublished sources from other institutions. At the time it was the most extended data compilation on ferromanganese deposits world wide. Initially published in a proprietary format incompatible with present day standards it was jointly decided by AWI and NOAA to transcribe this legacy data into PANGAEA. This transfer is augmented by a careful checking of the original sources when available and the encoding of ancillary information (sample description, method of analysis...) not present in the NOAA-MMS database.
Parameter(s):
#NameShort NameUnitPrincipal InvestigatorMethod/DeviceComment
1Event labelEventJohnson, David A
2Date/Time of eventDate/TimeJohnson, David A
3Latitude of eventLatitudeJohnson, David A
4Longitude of eventLongitudeJohnson, David A
5Elevation of eventElevationmJohnson, David A
6Method/Device of eventMethod/DeviceJohnson, David A
7Sample IDSample IDJohnson, David A
8DEPTH, sediment/rockDepth sedmJohnson, David AGeocode
9Depth, top/minDepth topmJohnson, David A
10Depth, bottom/maxDepth botmJohnson, David A
11PositionPositionJohnson, David A
12Deposit typeDeposit typeJohnson, David A
13Quantity of depositQuantityJohnson, David A
14SizeSizeJohnson, David A
15Substrate typeSubstrateJohnson, David A
16Sediment typeSedimentJohnson, David A
17CommentCommentJohnson, David A
18DescriptionDescriptionJohnson, David A
19Uniform resource locator/link to imageURL imageJohnson, David APhotographs of cores and samples
Size:
163 data points

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