One of the more stubborn puzzles in Earth science has long been why atmospheric carbon dioxide dropped so dramatically during glacial periods, only to rebound as the planet warmed again. A new study published in SCIENCE CHINA Earth Sciences offers a compelling piece of that puzzle from an unexpected place: the muddy seafloor of the South Yellow Sea. By drilling deep into the sediment archive of the Chinese continental shelf, a research team led by Associate Researcher Zhang Jin and Researcher Wan Shiming of the Institute of Oceanology, Chinese Academy of Sciences, in collaboration with Tongji University, University College London, and other institutions, has reconstructed a 600,000-year record of silicate weathering and its associated carbon consumption. Their conclusion is striking: during ice ages, when sea level fell and vast stretches of shelf sediment were exposed to the air, chemical weathering on the shelf accelerated dramatically, drawing down carbon at rates far exceeding those of warmer interglacial intervals.
Silicate weathering is one of the fundamental thermostats of the Earth system. When rainwater, charged with atmospheric carbon dioxide in the form of carbonic acid, attacks silicate minerals in rocks, the carbon is converted into dissolved bicarbonate and carried by rivers to the ocean, where much of it is ultimately buried in carbonate sediments. Over geological timescales, this process acts as a long-term sink for atmospheric CO2, and its intensity is conventionally assumed to track temperature and runoff: hot, humid climates accelerate chemical denudation, while cold, dry glacial climates slow it down. That assumption underpins much of how scientists model the carbon cycle over glacial-interglacial cycles, which is precisely why the new findings are so consequential. The study suggests that during the very intervals when the conventional model predicts weakened weathering, an enormous and previously overlooked weathering engine was running at full tilt on the exposed mid-latitude shelves of East Asia.
The evidence comes from Site CSDP-1, a core recovered by the Chinese Continental Shelf Drilling Program in the South Yellow Sea. The team conducted a comprehensive analysis of the mineralogical and geochemical properties of the sediments, layer by layer, building a continuous archive that spans six hundred millennia of alternating glacial and interglacial conditions. Among the key indicators they examined was the Chemical Index of Alteration, or CIA, a widely used proxy that measures the degree to which feldspars and other primary silicate minerals have been chemically transformed into clay minerals through hydrolysis. They also tracked the ratio of potassium to aluminum, K/Al, which decreases as labile potassium-bearing minerals are leached away during weathering, and the ratio of smectite to illite plus chlorite, which captures the balance between newly formed alteration products and relatively unweathered detrital minerals transported from the river basin.
All of these proxies told the same story. The weathering intensity recorded in glacial shelf sediments was consistently and markedly higher than that recorded in interglacial sediments. In quantitative terms, the team calculated that the rate of carbon consumption through silicate weathering during glacial periods was approximately 1.5 times that of interglacial periods. This inversion of the expected pattern, in which colder climates should yield weaker chemical denudation, is the heart of the discovery. The researchers interpret it as evidence that glacial weathering on the shelf was decoupled from climate in the conventional sense. It was not temperature or precipitation over the source basin that controlled the signal, but rather the physical state of the sediment itself and the amount of time it spent exposed at the surface.
The mechanism hinges on sea level. During glacial periods, global sea level fell by well over a hundred meters as water was locked into continental ice sheets. This regression exposed the loosely consolidated, unconsolidated sediments that had accumulated on the continental shelf during earlier highstands. Rather than being rapidly buried beneath the ocean, these fine-grained deposits were left stranded on the emergent plain, where they remained for thousands of years, subjected to repeated wetting and drying, oxidation, and infiltration by CO2-charged meteoric water. Because the sediments were fine-grained, freshly deposited, and largely unweathered when first delivered by the Yellow River, they presented an enormous reactive surface area to chemical attack. The long residence time of these materials on the exposed shelf gave weathering reactions the opportunity to proceed far beyond what would have been possible had the sediment been quickly sequestered on the seafloor.
Interglacial conditions reversed this arrangement. As sea level rose, the river mouth retreated landward and the previously exposed shelf was flooded once more. Fine-grained material eroded from the basin was then rapidly transported through the estuary and dispersed across the shelf and into the deep sea, sharply reducing both the time and the space available for reweathering of the sediment. In other words, the same sediment that lingered and weathered during glacial lowstands was efficiently exported and buried during highstands. The sediment routing system, rather than the climate system, emerged as the dominant control on chemical weathering intensity in this basin-shelf configuration, a conclusion that challenges how weathering signals in marine sediments are commonly interpreted.
To appreciate the scale of the overlooked sink, the researchers extended their quantitative estimates beyond the Yellow Sea. Taking into account the exposed shelves of the Yellow Sea and the East China Sea, along with comparable low-latitude marine areas that experience similar sea-level-driven exposure, they calculated that the increased silicate weathering of shelf sediments during glacial periods may account for approximately 9.3 percent of the total reduction in atmospheric CO2 during glacial times. For a mechanism that had previously gone essentially unrecognized in glacial carbon budgets, nearly a tenth of the glacial drawdown is a substantial contribution. It implies that the mid-latitude shelf region functioned as an active and underestimated silicate weathering carbon sink precisely during the intervals when the global climate was coldest and atmospheric CO2 was at its lowest.
This finding also reframes comparisons with earlier work in low-latitude seas, where enhanced glacial weathering had been documented but attributed to specific tropical conditions. The new study demonstrates that the phenomenon is not confined to the tropics. Mid-latitude shelves fed by major sediment-discharging rivers, of which the Yellow River is one of the largest on Earth, can host equally vigorous weathering during lowstands. Given the abundance of such river-shelf systems around the world, from the Sunda Shelf of Southeast Asia to the shelves of other major river depocenters, the implication is that shelf weathering may be a globally significant and systematically underestimated term in glacial carbon cycle accounting.
Methodologically, the study is notable as the first quantitative reconstruction of the Late Quaternary history of silicate weathering carbon consumption in the Yellow River basin-continental shelf system. By combining multiple independent weathering proxies with calculated carbon consumption fluxes, the team was able to move beyond qualitative statements about alteration intensity and place firm numbers on the carbon sink, both through time at the study site and extrapolated across the broader shelf systems of the western Pacific margin. The 600,000-year record captures numerous glacial-interglacial cycles, giving the researchers the statistical confidence to distinguish a systematic glacial enhancement of weathering from episodic or local effects.
The broader significance of the work lies in the perspective it opens for understanding the mechanisms of glacial-interglacial climate evolution. If exposed continental shelves acted as a meaningful carbon sink during ice ages, then models of the glacial carbon cycle must incorporate sea-level-driven shelf exposure as a first-order process, alongside the ocean’s biological pump, changes in ocean circulation, and carbonate compensation dynamics that have traditionally dominated the discussion. The study, authored by Zhang, Wan, and colleagues in SCIENCE CHINA Earth Sciences, thus adds a continental margin process to the roster of mechanisms that helped the planet cool into glacial states and, by implication, helped release that carbon as shelves were reflooded during deglaciation. For a field that has long focused its attention on the open ocean and the terrestrial biosphere, the message from the muddy floor of the South Yellow Sea is that some of the most important carbon chemistry of the ice ages may have happened in plain sight, on land that is now underwater.
Subject of Research: Enhanced silicate weathering on the South Yellow Sea continental shelf during glacial periods and its role in the glacial carbon cycle
Article Title: Enhanced silicate weathering on the South Yellow Sea shelf during glacial periods and its influence on the glacial carbon cycle
Article References: Enhanced silicate weathering on the South Yellow Sea shelf during glacial periods and its influence on the glacial carbon cycle. (n.d.). Original publication
Image Credits: AI Generated
DOI: Not provided
Keywords: silicate weathering, South Yellow Sea, continental shelf, glacial periods, carbon cycle, atmospheric CO2, sea level, Chemical Index of Alteration, Yellow River, CSDP-1, Science China Earth Sciences, Quaternary climate
Cite Scienmag News
Violet Maxwell. (October 6, 2026). Glacial Sea-Level Falls Turned the Yellow Sea Shelf Into a Hidden Carbon Sink. Scienmag. https://scienmag.com/glacial-sea-level-falls-turned-the-yellow-sea-shelf-into-a-hidden-carbon-sink/
Violet Maxwell. "Glacial Sea-Level Falls Turned the Yellow Sea Shelf Into a Hidden Carbon Sink." Scienmag, 6 October 2026, https://scienmag.com/glacial-sea-level-falls-turned-the-yellow-sea-shelf-into-a-hidden-carbon-sink/. Accessed 6 October 2026.
Violet Maxwell. "Glacial Sea-Level Falls Turned the Yellow Sea Shelf Into a Hidden Carbon Sink." Scienmag. October 6, 2026. https://scienmag.com/glacial-sea-level-falls-turned-the-yellow-sea-shelf-into-a-hidden-carbon-sink/

