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Rapid shift and millennial-scale variations in Holocene North Pacific Intermediate Water ventilation
- Source :
- EPIC3Proceedings of the National Academy of Sciences of the United States of America, NATL ACAD SCIENCES, 115(21), pp. 5365-5370, ISSN: 0027-8424, PNAS Proceedings of the National Academy of Sciences of the United States of America, 115 (21). pp. 5365-5370.
- Publication Year :
- 2018
- Publisher :
- NATL ACAD SCIENCES, 2018.
-
Abstract
- The Pacific hosts the largest oxygen minimum zones (OMZs) in the world ocean, which are thought to intensify and expand under future climate change, with significant consequences for marine ecosystems, biogeochemical cycles, and fisheries. At present, no deep ventilation occurs in the North Pacific due to a persistent halocline, but relatively better-oxygenated subsurface North Pacific Intermediate Water (NPIW) mitigates OMZ development in lower latitudes. Over the past decades, instrumental data show decreasing oxygenation in NPIW; however, long-term variations in middepth ventilation are potentially large, obscuring anthropogenic influences against millennial-scale natural background shifts. Here, we use paleoceanographic proxy evidence from the Okhotsk Sea, the foremost North Pacific ventilation region, to show that its modern oxygenated pattern is a relatively recent feature, with little to no ventilation before six thousand years ago, constituting an apparent Early–Middle Holocene (EMH) threshold or “tipping point.” Complementary paleomodeling results likewise indicate a warmer, saltier EMH NPIW, different from its modern conditions. During the EMH, the Okhotsk Sea switched from a modern oxygenation source to a sink, through a combination of sea ice loss, higher water temperatures, and remineralization rates, inhibiting ventilation. We estimate a strongly decreased EMH NPIW oxygenation of ∼30 to 50%, and increased middepth Pacific nutrient concentrations and carbon storage. Our results (i) imply that under past or future warmer-than-present conditions, oceanic biogeochemical feedback mechanisms may change or even switch direction, and (ii) provide constraints on the high-latitude North Pacific’s influence on mesopelagic ventilation dynamics, with consequences for large oceanic regions.
- Subjects :
- Biogeochemical cycle
geography
Multidisciplinary
geography.geographical_feature_category
010504 meteorology & atmospheric sciences
Mesopelagic zone
Halocline
010502 geochemistry & geophysics
Oxygen minimum zone
01 natural sciences
Oceanography
North Pacific Intermediate Water
13. Climate action
Sea ice
Environmental science
Marine ecosystem
14. Life underwater
Holocene
0105 earth and related environmental sciences
Subjects
Details
- Database :
- OpenAIRE
- Journal :
- EPIC3Proceedings of the National Academy of Sciences of the United States of America, NATL ACAD SCIENCES, 115(21), pp. 5365-5370, ISSN: 0027-8424, PNAS Proceedings of the National Academy of Sciences of the United States of America, 115 (21). pp. 5365-5370.
- Accession number :
- edsair.doi.dedup.....dd387d7068c5a2cafdd72b1d06c78123