A comprehensive study identifies specific ocean areas that must be protected to safeguard over 80% of endangered marine species' habitats and boost fishing catches. The research also finds that trawling is pumping hundreds of millions of tons of carbon dioxide into the ocean every year, highlighting the need for strict protection.
A groundbreaking global study maps ocean areas that, if strongly protected, can help solve climate, food and biodiversity crises. The research identified specific regions that could provide multiple benefits, including safeguarding nearly 80% of marine species and preventing the release of one billion tons of CO2 into the ocean.
A new study published in Nature reveals that transform faults are actively involved in shaping the ocean floors, contradicting a previous assumption. The research found that these faults cause extension of the seafloor and magmatism at their outer corners.
Researchers analyzed fossilized shells to reconstruct Earth's climate during the Paleocene-Eocene Thermal Maximum, a period of abrupt global warming and ocean acidification. The study found that foraminifera consumed less alkalinity from seawater to buffer increasing ocean acidity.
A study found that warming in the Indian Ocean led to extreme monsoon rainfall and Yangtze River flooding in 2020. The researchers used a global atmospheric model and observed data to predict the excessive rainfall, which was mainly caused by temperature anomalies in the Indian Ocean.
Sea butterflies are already experiencing difficulties building their shells due to ocean acidification, which will worsen in the future. They shift from growing thicker and larger shells to investing more in becoming larger, posing a major problem for local sea life that depend on them for food.
A new study uses a high-resolution ocean model to track the migration of baby sea turtles in their 'lost years'. The model shows that hatchlings are swept towards regions with favorable food availability, increasing their chances of survival. This research provides insights into the critical stages of sea turtle conservation efforts.
On calm days, sunlight warms the ocean surface in tropical oceans, driving atmospheric turbulence and affecting weather patterns. Researchers from Oregon State University used Doppler lidar technology to collect unprecedented measurements of turbulence over the ocean, revealing that such events occur during about 5% of days.
A study suggests that continued warming of Atlantic coastal waters may enhance the spread of invasive blue catfish within the Chesapeake Bay and other estuaries along the U.S. East Coast. Warmer waters favor the spread and establishment of blue cats, which can out-compete native species.
Researchers developed a machine learning-powered platform, OC-SMART, to process ocean color in satellite images, solving a 30-year-old problem in retrieving data from coastal regions and open ocean areas. The tool provides useful data on chlorophyll concentrations and phytoplankton presence, helping to understand the ocean's state.
A record-high amount of Arctic freshwater is expected to flow into the Labrador Sea, impacting local marine environments and global ocean currents. The freshwater, which has increased by 40% over the past two decades, will travel through the Canadian Archipelago rather than traditional marine passageways.
Researchers from GEOMAR have found that manganese, not iron, is the limiting factor for phytoplankton growth in some areas of the Southern Ocean. This finding has significant implications for understanding past changes and future climate change.
Researchers found that extensive sea ice prevented oxygen from reaching the deep ocean during the last ice age, contradicting previous assumptions. The study suggests that disequilibrium between surface and atmospheric oxygen levels played a crucial role in the ocean's carbon cycle.
A new trace fossil, Glossifungites gingrasi, has been named after University of Alberta paleontologist Murray Gingras. The discovery provides insight into ancient water salinity levels and helps narrow down the type of organism that created the burrow.
A group of scientists recommends four major improvements to enhance environmental observations in the Indian Ocean, a region warming faster than others. The enhancements aim to improve weather and climate forecasting for countries bordering its rim, vulnerable to climate change.
A new study reports the highest ocean temperatures since 1955, with the upper 2,000 meters absorbing 20 more Zettajoules than in 2019. The researchers warn of severe consequences for ocean ecosystems and human societies, including increased extreme weather events and wildfires.
The Ocean 100, a group of 100 transnational corporations, dominated the ocean economy with $1.1 trillion in revenues in 2018. The top industries were offshore oil and gas, seafood production, and container shipping.
A study has identified the Ocean 100, a group of 100 transnational corporations extracting majority of revenues from economic use of world's ocean. The largest companies in industries like offshore oil and gas, shipping, and cruise tourism dominate the market, taking an estimated 60% of all revenues.
Scientists have identified a novel skin disease in dolphins caused by climate change, with patchy and raised lesions covering up to 70% of their bodies. The study provides the first-ever case definition for freshwater skin disease in bottlenose dolphins.
A study analyzing 40 years of topsoil data finds that approximately 11.73 million square kilometers of land were affected by salt accumulation between 1980 and 2018. The likelihood of reoccurring salt-affected soils decreased globally, but certain regions like Brazil and Peru experienced increased soil salinity.
A study published in Frontiers in Marine Science reveals that fan mussel larvae can disperse from unaffected populations, potentially aiding the recovery of an endangered species. The larvae can travel hundreds of kilometers thanks to ocean currents and play a crucial role in the species' survival.
UC Riverside is receiving $6.3 million to combat the deadly fungus Laurel Wilt and other challenges threatening American avocado production. The university will develop next-generation technologies to manage diseases like Phytophthora root rot and soil salinity, which can severely reduce fruit yield and quality.
Researchers at RIKEN Center for Biosystems Dynamics Research use electric rays and sting rays to create maps of the seabed, collecting data on ocean wildlife and resources. The method is cost-effective and has been shown to be accurate, with positioning errors within 10cm of existing seabed maps.
A fleet of deep-diving ocean robots will investigate how marine life captures and stores carbon from the atmosphere. The research, called SOLACE, aims to improve our understanding of the 'carbon pump', a process responsible for pumping large volumes of carbon into the ocean.
A Purdue University team has been named a quarterfinalist in the US Department of Energy's Solar Desalination Prize for their innovative technology to purify high salinity water using solar power. The NoAir system aims to use high-temperature solar heat and hybrid desalination technologies to produce clean water from saltwater.
Recent measurements reveal a surprise increase in dense water sinking near Antarctica, following 50 years of decline. Changes in bottom water formation can impact global climate and deep ocean ecosystems. The study documents an increase in supply of bottom water to the Indian and Pacific Oceans.
Future emissions of greenhouse gases and aerosols will shift the North Atlantic's role in global ocean heat uptake, making it the main region of OHU by 2100. This is due to projected decline in anthropogenic aerosols, weakening the AMOC and diverging meridional ocean heat transport.
A new grant will enable scientists to deploy 500 robotic ocean-monitoring floats around the globe, collecting data on ocean chemistry and biology between the surface and 2,000 meters. The project aims to improve computer models of ocean fisheries and climate, and monitor the effects of ocean warming and acidification.
A new study reveals ocean acidification is a present-day reality on the Great Barrier Reef, with CO2 levels rising 6% over 10 years. This accelerated trend confirms atmospheric CO2's influence on seawater CO2 levels, posing significant threats to coral growth and health.
New study shows ocean acidification influences carbon content of sinking particles, affecting biological pump. The results, published in Nature Climate Change, indicate highly variable responses to CO2, with bacterial and animal plankton playing a key role.
A new study by a USC-led research team reveals that emissions from Chinese coal-fired power plants are fertilizing the North Pacific Ocean with iron and other metals, which could impact marine life. The researchers found peak iron concentrations in surface seawater corresponding to big wind events over east Asia.
A recent study using long-term ocean data from the North Atlantic Ocean reveals a decadal variability and recent acceleration of surface warming, salinification, deoxygenation, and ocean acidification. The data shows a significant increase in surface temperatures, salinity, and carbon dioxide levels, leading to an acidification trend.
A new study found that ocean carbon sequestration decreased as phytoplankton failed to devour macronutrients and trap carbon dioxide in the deep ocean. This process, called the biological pump, transfers carbon dioxide from the atmosphere and surface ocean into the dark, deep ocean.
New research suggests that ancient deep-sea corals provide a time machine to study changes in ocean circulation and carbon cycle during the last ice age. The study found that rapid changes in ocean circulation around Antarctica released CO2 to the atmosphere, ending the last ice age.
Researchers found a warming trend in the deep sea, with temperature fluctuations detectable at depths of up to 4,757 meters. The increase in temperatures is consistent with global climate change, but more research is needed to understand its causes.
A recent report by the Journal of Operational Oceanography reveals an unprecedented rise in sea temperatures worldwide, with the Arctic Ocean experiencing the largest increase. The report highlights the impact of climate change on ocean ecosystems and calls for improved monitoring to ensure sustainable use of seas and oceans.
A new study reveals that rapid ocean warming and acidification will exacerbate negative effects on planktonic communities, including reduced productivity and calcification. Researchers found that calcifying phytoplankton, such as coccolithophores, are particularly vulnerable to these changes.
A recent study has found that pteropods, or 'wing-footed' sea snails and slugs, are much older than previously thought and survived past environmental changes in the ocean. The research suggests that these creatures may be more adaptable to ocean acidification than expected.
As the atmosphere warms, ocean stability increases, leading to reduced carbon burial and decreased productivity. Cooler water layers not mixing due to stable conditions prevents oxygen and nutrient delivery.
The global ocean has become more stratified due to global warming, reducing nutrients and oxygen. This increase in stratification affects climate, ecosystems, and the ocean's ability to store carbon, exacerbating global warming.
Researchers investigate marine heatwaves and their effects on regional ocean circulation, marine life, and fisheries. They found that extreme warming events can extend to 300 meters below the surface in certain areas, impacting ecosystems and economies.
A new study reconstructed sea ice transported from the Arctic Ocean through the Fram Strait and into the North Atlantic Ocean over the last 1400 years. The reconstruction suggests that the Little Ice Age was triggered by an exceptionally large outflow of sea ice from the Arctic Ocean in the 1300s.
Researchers use natural seafloor earthquakes to determine ocean temperature across vast distances and depths, overcoming previous limitations. The technique, called seismic ocean thermometry, reveals a decadal warming trend exceeding previous estimates in the East Indian Ocean.
A new study estimates that studying the ocean's biological carbon pump could lead to more accurate climate models, improving policies on carbon emissions. The research suggests a global economic benefit of $500 billion if science informs policy decisions.
A new study has found substantial amplification of the global water cycle, with increased evaporation and precipitation rates, due to changes in ocean salinity. This change is largely driven by human influence and has significant implications for future climate, including more extreme weather events and droughts.
A multinational study has overturned a 130-year old assumption about seawater chemistry, finding that the ratios of key elements like calcium, magnesium and strontium vary considerably across the ocean. This discovery challenges past hypotheses and models, requiring scientists to re-examine their understanding of ocean chemistry.
Researchers find significant decline in coral skeleton density due to ocean acidification on the Great Barrier Reef and South China Sea. This effect will likely accelerate as ocean acidity increases over the next several decades.
Researchers found Arctic winter ice grew less than half as much as normal due to increased ocean heat from the interior. This weakening of the halocline barrier allows for more efficient mixing between warmer and colder waters, limiting sea ice growth.
A recent study published in Nature Communications found that the mass of microplastics in the upper waters of the Atlantic Ocean is approximately 12-21 million tonnes. This figure surpasses previous estimates and suggests a substantial underestimation of plastic waste entering the ocean over the past 65 years.
Scientists used an 'ocean-in-a-lab' to show that air pollution can change the makeup of gases and aerosols released by sea spray, influencing atmospheric composition and weather. The study found that adding pollutants like hydroxyl radicals transformed microbe-produced gases into new compounds.
The Stanford-developed rotating microscope allows scientists to track and measure microscopic plankton's behaviors and molecular processes as they migrate between the ocean's depths and surface. This innovation provides a new window into the secret life of ocean organisms and ecosystems.
Researchers describe daily variability of key deep currents in the South Atlantic Ocean, with variations linked to climate and weather globally. The study found that upper and deeper layers behave independently, impacting sea level rise and hurricane intensification.
The study highlights Guadalquivir and Guadiana estuaries as breeding areas due to specific water conditions, including salinity gradient and turbidity. These factors enable high densities of early stages fish and macro-zooplankton, crucial for fish growth.
New research reveals that ocean warming patterns will increasingly be influenced by atmospheric warming, making them easier to predict. This suggests a significant shift from past climate models, which struggled to simulate ocean warming.
Research from the University of Colorado Boulder shows that climate change is driving an increase in Arctic freshwater over the past two decades. This freshwater will eventually move into the North Atlantic Ocean, potentially disrupting ocean currents and temperatures in northern Europe.
Researchers have developed a new method to detect algae and measure key properties in the ocean's depths using laser-based lidar. The technique allows for measurements up to three times deeper than satellites, shedding light on ocean biology and its role in climate.
A study by GEOMAR Helmholtz Centre for Ocean Research Kiel predicts North Atlantic surface temperature variations several years into the future using wind field analysis. The researchers suggest a mechanism where winds cause changes in ocean circulation, resulting in anomalous heat accumulation and warming of the eastern North Atlantic.
A new relationship between humanity and the ocean is required to secure the continuity of the diverse life support roles provided by the sea. The paper proposes three key transition pathways to make complex ocean systems more resilient and ensure a more sustainable future.
Research reveals complex changes in the Arctic Ocean driven by anomalous influxes of oceanic water from lower-latitude oceans. This process, known as borealization, affects physical, chemical, and biological communities in distinct ways.
Researchers found a significant 57% increase in Arctic Ocean primary production between 1998 and 2018, with phytoplankton biomass driving the increase in recent years. This suggests an influx of new nutrients into some regions of the Arctic Ocean.