<?xml version="1.0" encoding="UTF-8"?><resource xsi:schemaLocation="http://datacite.org/schema/kernel-4 http://schema.datacite.org/meta/kernel-4.3/metadata.xsd" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xmlns="http://datacite.org/schema/kernel-4"><identifier identifierType="DOI">10.1594/PANGAEA.774700</identifier><creators><creator><creatorName>Tomaru, Hitoshi</creatorName><givenName>Hitoshi</givenName><familyName>Tomaru</familyName><nameIdentifier schemeURI="http://orcid.org/" nameIdentifierScheme="ORCID">0000-0002-7555-4177</nameIdentifier></creator><creator><creatorName>Matsumoto, R</creatorName><givenName>R</givenName><familyName>Matsumoto</familyName></creator><creator><creatorName>Torres, Marta E</creatorName><givenName>Marta E</givenName><familyName>Torres</familyName><nameIdentifier schemeURI="http://orcid.org/" nameIdentifierScheme="ORCID">0000-0001-7284-733X</nameIdentifier></creator><creator><creatorName>Borowski, Walter S</creatorName><givenName>Walter S</givenName><familyName>Borowski</familyName></creator></creators><titles><title>(Table T1) Deuterium and oxygen isotope composition of interstitial waters from ODP Leg 204 sediments</title></titles><publisher>PANGAEA</publisher><publicationYear>2006</publicationYear><subjects><subject subjectScheme="Parameter">Event label</subject><subject subjectScheme="Parameter">Sample code/label</subject><subject subjectScheme="Parameter">DEPTH, sediment/rock</subject><subject subjectScheme="Parameter">δ Deuterium</subject><subject subjectScheme="Parameter">δ18O, water</subject><subject subjectScheme="Parameter">Sample comment</subject><subject subjectScheme="Method">Drilling/drill rig</subject><subject subjectScheme="Method">DSDP/ODP/IODP sample designation</subject><subject subjectScheme="Method">Mass spectrometer, Finnigan, MAT 252</subject><subject subjectScheme="Campaign">Leg204</subject><subject subjectScheme="Basis">Joides Resolution</subject><subject subjectScheme="Project">Ocean Drilling Program (ODP)</subject></subjects><dates><date dateType="Collected">2002-07-13T01:00:00/2002-09-01T00:00:00</date></dates><resourceType resourceTypeGeneral="Dataset">Supplementary Dataset</resourceType><relatedIdentifiers><relatedIdentifier relatedIdentifierType="DOI" relationType="IsSupplementTo">10.2973/odp.proc.sr.204.109.2006</relatedIdentifier></relatedIdentifiers><sizes><size>1744 data points</size></sizes><formats><format>text/tab-separated-values</format></formats><rightsList><rights rightsURI="https://creativecommons.org/licenses/by/3.0/" schemeURI="https://spdx.org/licenses/" rightsIdentifierScheme="SPDX" rightsIdentifier="CC-BY-3.0">Creative Commons Attribution 3.0 Unported</rights></rightsList><descriptions><description descriptionType="Abstract">The isotopic compositions of interstitial waters collected from Hydrate Ridge during Ocean Drilling Program Leg 204 were measured to evaluate the fluid evolution of this accretionary prism. At shallow depths, the dissolved Cl- concentrations and dD and d18O values of the interstitial water reflect changes in the salinity and the isotopic compositions of seawater from the Last Glacial Maximum to the present. The presence of disseminated gas hydrates, which is well identified by discrete low Cl- anomalies within the gas hydrate stability zone, is accompanied by high dD and d18O values of the freshened fluids. This is consistent with incorporation of heavy isotopes into the gas hydrate lattice, which is also apparent in the signals observed at the ridge summit. Here, massive gas hydrate formation in the upper 20 meters below seafloor leads the formation of brines with dissolved Cl- concentrations as high as 1400 mM. The interstitial waters sampled near massive gas hydrates at the ridge summit are extremely depleted in D and 18O. Clay mineral dehydration within the deep prism results in a progressive decrease in Cl- and dD with depth. Dehydration temperature estimates based on those data likely suggest a progressive increase in the temperature of isotopic fractionation between clay and water with distance from the prism toe. The oxygen isotope data probably reflect the combined effects of clay dehydration, carbonate precipitation, and alteration of oceanic basement; however, there are not enough data to constrain the relative contribution of these processes to the observed signals.</description><description descriptionType="Other">Supplement to: Tomaru, Hitoshi; Matsumoto, R; Torres, Marta E; Borowski, Walter S (2006): Geological and geochemical constraints on the isotopic composition of interstitial waters from the Hydrate Ridge region, Cascadia Continental Margin. In: Tréhu, AM; Bohrmann, G; Torres, ME; Colwell, FS (eds.), Proceedings of the Ocean Drilling Program, Scientific Results, College Station, TX (Ocean Drilling Program), 204, 1-20</description></descriptions><geoLocations><geoLocation><geoLocationBox><westBoundLongitude>-125.1525</westBoundLongitude><eastBoundLongitude>-125.07393000000002</eastBoundLongitude><southBoundLatitude>44.56843</southBoundLatitude><northBoundLatitude>44.5863</northBoundLatitude></geoLocationBox></geoLocation><geoLocation><geoLocationPlace>North Pacific Ocean</geoLocationPlace></geoLocation></geoLocations></resource>