Spectral reflectance of ODP Leg 178 holes


Autoria(s): Wolf-Welling, Thomas C W; Cowan, Ellen A; Daniels, J; Eyles, N; Maldonado, Andrés; Pudsey, Carol J
Cobertura

MEDIAN LATITUDE: -65.890109 * MEDIAN LONGITUDE: -71.068700 * SOUTH-BOUND LATITUDE: -67.566810 * WEST-BOUND LONGITUDE: -78.488250 * NORTH-BOUND LATITUDE: -63.999500 * EAST-BOUND LONGITUDE: -64.207810 * DATE/TIME START: 1996-03-12T15:30:00 * DATE/TIME END: 1998-03-22T20:00:00

Data(s)

03/05/2001

Resumo

The routine use of spectrophotometry on the sediment surfaces of archive halves of each section during the onboard sedimentological core description process is a great stride toward development of real-time noninvasive characterization of deep-sea sediments. Spectral reflectance data have been used so far for mineral composition studies as well as for lithostratigraphic correlation between sites (Balsam and Deaton, 1991; Balsam et al., 1997; Mix et al., 1995; Ortiz et al., 1999). Their results demonstrate that spectrophotometry can estimate CaCO3 content by using the 4.65-, 5.25-, and 5.55-µm wavelength spectrums. A detailed overview of various other noninvasive methods is given in Ortiz and Rack (1999). The purpose of this study is to test whether spectrophotometry in the visible band can be used as a tool to gather further information about grain-size variation, sorting, compaction, and porosity, which are directly linked to the sedimentation process. From remote sensing data analyses, it is known that diffuse spectral reflectance data in the visible band in the wavelength window of 7.0-6.5 µm are sensitive to grain-size variations. It appears that a relationship between grain size and signal absorption exists only in this wavelength window. (e.g., Clark, 1999; Gaffey, 1986; Gaffey et al., 1993). Variations in grain size during a sedimentation process are linked to depositional energy, which affects sorting, compaction, and porosity of sediment deposits. As an example, we study here the spectrophotometric data of the sedimentary sequence of Hole 1098C, which was deposited under widely varying environmental conditions. Alternating turbidite and finely laminated sediments were recovered from Hole 1098C. The turbidites are related to a high depositional energy environment; the finely laminated sediments are related to a low depositional energy environment. Data from Hole 1098C were therefore used to test whether the spectral reflectance data can provide a proxy for these different depositional environments.

Formato

application/zip, 15 datasets

Identificador

https://doi.pangaea.de/10.1594/PANGAEA.737602

doi:10.1594/PANGAEA.737602

Idioma(s)

en

Publicador

PANGAEA

Direitos

CC-BY: Creative Commons Attribution 3.0 Unported

Access constraints: unrestricted

Fonte

Supplement to: Wolf-Welling, Thomas C W; Cowan, Ellen A; Daniels, J; Eyles, N; Maldonado, Andrés; Pudsey, Carol J (2001): Data report: Diffuse spectral reflectance data from rise Sites 1095, 1096, and 1101 and Palmer Deep Sites 1098 and 1099 (Leg 178, western Antarctic Peninsula). In: Barker, PF; Camerlenghi, A; Acton, GD; Ramsay, ATS (eds.) Proceedings of the Ocean Drilling Program, Scientific Results, College Station, TX (Ocean Drilling Program), 178, 1-22, doi:10.2973/odp.proc.sr.178.225.2001

Palavras-Chave #178-1095A; 178-1095B; 178-1095C; 178-1095D; 178-1096A; 178-1096B; 178-1096C; 178-1098A; 178-1098B; 178-1098C; 178-1099A; 178-1099B; 178-1101A; 178-1103A; a*; b*; Color, a*; Color, b*; Color, L*, lightness; Color 400; Color 410; Color 420; Color 430; Color 440; Color 450; Color 460; Color 470; Color 480; Color 490; Color 500; Color 510; Color 520; Color 530; Color 540; Color 550; Color 560; Color 570; Color 580; Color 590; Color 600; Color 610; Color 620; Color 630; Color 640; Color 650; Color 660; Color 670; Color 680; Color 690; Color 700; Color code HLS-system; Color HLS; Color reflectance at 400 nm wavelength; Color reflectance at 410 nm wavelength; Color reflectance at 420 nm wavelength; Color reflectance at 430 nm wavelength; Color reflectance at 440 nm wavelength; Color reflectance at 450 nm wavelength; Color reflectance at 460 nm wavelength; Color reflectance at 470 nm wavelength; Color reflectance at 480 nm wavelength; Color reflectance at 490 nm wavelength; Color reflectance at 500 nm wavelength; Color reflectance at 510 nm wavelength; Color reflectance at 520 nm wavelength; Color reflectance at 530 nm wavelength; Color reflectance at 540 nm wavelength; Color reflectance at 550 nm wavelength; Color reflectance at 560 nm wavelength; Color reflectance at 570 nm wavelength; Color reflectance at 580 nm wavelength; Color reflectance at 590 nm wavelength; Color reflectance at 600 nm wavelength; Color reflectance at 610 nm wavelength; Color reflectance at 620 nm wavelength; Color reflectance at 630 nm wavelength; Color reflectance at 640 nm wavelength; Color reflectance at 650 nm wavelength; Color reflectance at 660 nm wavelength; Color reflectance at 670 nm wavelength; Color reflectance at 680 nm wavelength; Color reflectance at 690 nm wavelength; Color reflectance at 700 nm wavelength; Depth; DEPTH, sediment/rock; Depth, sediment revised; Depth revised; Drake Passage; DRILL; Drilling/drill rig; Joides Resolution; L*; Label; Leg178; Munsell Color System (1994); Ocean Drilling Program; ODP; ODP sample designation; Recovery-corrected depth; Sample code/label; South Pacific Ocean; Spectrophotometer Minolta CM-2002; Var; Variance
Tipo

Dataset