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A Week of Smoky Skies Across North America

22 July 2026 at 00:00

Wildland fire activity in Canada ramped up in July 2026, a time of year when lightning ignitions typically increase, according to a seasonal outlook published by several North American fire agencies. The blazes sent smoke plumes pouring across the U.S. and Canada, affecting air quality in both countries. Β 

This animation tracks brown carbon, the organic aerosols emitted by fires that give smoke plumes their characteristic yellow, orange, and brown tint. Brown carbon is a major component of a fire’s PM2.5 emissions, a type of air pollution that can aggravate cardiovascular and respiratory conditions. Here, the plume drifts across North American skies from July 14 through July 20, 2026.

Data for the animation come from a version of theΒ GEOSΒ (Goddard Earth Observing System) model, which assimilates data from satellites, aircraft, and ground-based observing systems. In addition to satellite observations of aerosols and fires, the model also incorporates meteorological data such as air temperature, moisture, and winds to project the plume’s behavior.

On July 14, at the start of the animation, numerous fires had already cropped up, including more than 180 in Ontario and several in northern Minnesota. Winds carried the smoke southeast, and by July 15, skies turned hazy and air quality declined from southern Ontario in Canada to the Upper Midwest and Northeast in the U.S. July 16 and 17 saw air quality in many areas continue to plummet, including in Detroit, where it stayed in the hazardous range for several consecutive days. Toronto, Chicago, New York City, and Washington, D.C., saw air quality ranging from unhealthy to hazardous.

On July 19 and 20, smoke continued to affect air quality downwind, including in the Great Lakes region, according to the National Weather Service. Storms began clearing it away in parts of the East, where air quality improved to good or moderate. Meanwhile, fires in the Pacific Northwest began degrading air quality there.Β 

The brown carbon shown in this animation represents organic carbon that comes specifically from wildfire smoke. Wildfires also emit black carbon, or soot, which contributes to their PM2.5 output. Black carbon has long served as a tracer for smoke plumes, but human sourcesβ€”such as vehicle exhaust and industrial combustionβ€”produce it too, blending in with the black carbon from fires. The GEOS model has been able to make that distinction for brown carbon since February 2026, when an update enabled it to split organic carbon into its anthropogenic and biomass-burning components.

NASA Earth Observatory animation by Lauren Dauphin,Β usingΒ GEOS-FPΒ data from theΒ Global Modeling and Assimilation OfficeΒ at NASA GSFC.Β Story by Kathryn Hansen.

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NewΒ NASAΒ Earth Missions Gear UpΒ to Start Science FlightsΒ Β 

20 July 2026 at 14:25
6 Min Read

NewΒ NASAΒ Earth Missions Gear UpΒ to Start Science FlightsΒ Β 

Satellite imagery captured wildfires burning hot enough to generate pyrocumulonimbus clouds north of Lake Superior in July 2026. NASA aircraft will help scientists study the powerful storms as they develop.
Credits:
CSU/CIRA & NOAA

Landslides in Alaska. Air quality inΒ Atlanta.Β FireΒ cloudsΒ outΒ West. From the Arctic fringes toΒ farm country, NASA’s newestΒ class ofΒ suborbitalΒ Earth VentureΒ missionsΒ isΒ gearing upΒ toΒ deliver scienceΒ that will benefitΒ communities in theΒ United StatesΒ and beyond.Β 

The six projectsΒ willΒ mobilizeΒ hundreds of scientistsΒ and pilotsΒ from NASA,Β theΒ U.S.Β Navy,Β universities, and otherΒ institutionsΒ over the next several years.Β While the investigations rangeΒ across topics,Β aΒ defining feature ofΒ suborbitalΒ missions is theΒ use ofΒ sensorsΒ mounted onΒ aircraft.Β 

AirborneΒ remoteΒ sensingΒ servesΒ as aΒ bridgeΒ betweenΒ ground-based instruments and satellites.Β Data collected viaΒ planes, helicopters, drones, and balloonsΒ canΒ fill in gaps inΒ computerΒ modelsΒ used by weather forecasters,Β cityΒ planners, and others.Β Β 

When wildfires create their own weatherΒ 

The first project to take wing this summer isΒ Injected Smoke and PYRocumulonimbus ExperimentΒ (INSPYRE), led by the Naval Research Laboratory. From mission headquarters in Colorado, the team will chase one of the least understood forms of severe weather on Earth: towering β€œfire clouds” generated when extreme wildfires burn hot enough to brew their own thunderstorms.Β Β 

Pyrocumulonimbus clouds crackle with lighting in imagery captured over Utah and Colorado by the GOES-18 satellite in early July 2026.
CSU/CIRA & NOAA

Smoky and crackling with lightning, these unique storms can create blind spots for aviators above and spark new blazes below. Measuring and mapping the dangerous storms as they develop in real-time will help scientists forecast them in the future. Several aircraft, including NASA’s high-altitude ER-2, flying out of Montana, will carry a large suite of instruments over wildfire-generated storm systems. Among them will be two state-of-the-art infrared wildfire trackers, which were developed at NASA’s Jet Propulsion LaboratoryΒ (JPL)Β in Southern CaliforniaΒ and will be flying as part of the agency’sΒ FireSenseΒ program.Β Β 

Testing the air over farmland, megacitiesΒ 

Agricultural emissions represent an important and understudiedβ€―partΒ of Earth’s land and atmosphere systems.β€―Theβ€―FarmFluxβ€―mission, which kicks off thisΒ year, willβ€―deploy more than a dozen sensors toβ€―measure ozone, methane, ammonia,β€―particulates, and other pollutants rising from agricultural lands and animal farms stretching from the Midwest to California’s Central Valley. These emissionsβ€―affectΒ human health, global climate, andβ€―stratospheric ozone.Β The mission is led by NASA’s Goddard Space Flight CenterΒ in Greenbelt, Maryland,Β along withΒ Colorado State University, and Boston University.Β 

A Boeing 777 wide-body twin-engine aircraft looms on a taxiway, viewed directly from the front.
NASA’s 777 aircraft is gearing up to start science flights. Structural modifications – like enlarged cabin windows and instrument portals – have transformed the former passenger plane into a flying laboratory. It’s seen here at Langley Research Center in Hampton, Virginia, in April 2026.
NASA/Ryan Hill

Two North AmericanΒ citiesΒ with air quality concerns are Atlanta and Mexico City. But the causes differ, with weather and terrain playing a role. To explore these differences, theβ€―Hemispheric Airborne Measurements of Air QualityΒ (HAMAQ)β€―mission will investigate areas of poor air in the two capitals and test how satellite information can helpΒ forecasting and mitigation efforts. The team willΒ deployΒ two aircraft at different altitudes:Β NASA’sΒ P-3B will fly close to the surface, directly measuring fine particle and gaseous pollutants, while the recently acquiredΒ 777 science jetΒ will soarΒ highΒ above, mapping pollution with remote sensors.Β  NASA’s Langley Research Center in Hampton, Virginia,Β is leadingΒ the mission.Β 

Fast-changing northΒ 

As theΒ ArcticΒ warmsΒ at least twice as fast asΒ the rest ofΒ Earth, dataΒ collectedΒ todayΒ can help guideΒ communities on the front lines of change.Β Β 

Amid a rugged landscape, a snow-white glacier spills into dark blue water.
Alaska’s glaciers are losing ice and contributing to sea level rise. NASA is tracking the changes from land, air, and space.
NASA

TheΒ Snow4FlowΒ campaign,Β led by the University of Arizona, seeks to measure and model how far and fast glaciers are retreating in the far north. Traversing remote icescapes across Alaska, the Yukon, Arctic Canada, Greenland, and Svalbard,Β Norway,Β they’ll sound both the near-surface and frozen depths of hundreds of glaciersΒ while flying over in a modernized WWII-era aircraft outfitted with a scanning laser altimeter and two custom radars.Β TheirΒ observations, combined withΒ satellite data andΒ advanced models of snowfall and glacier flow, will advance our understanding of how glaciers behave in different regions of the Arctic. The mission seeks to uncoverΒ not just what these glaciers look like beneath the surface today, butΒ theΒ processes that will drive changes in the future.Β 

As permafrost thaws, rivers on the doorstep of the Arctic becomeβ€―conveyor beltsβ€―of carbon and sediment. NASA Goddard,Β and the City College of New YorkΒ leadΒ aβ€―multidisciplinaryβ€―team studying how rivers, lagoons, and estuaries across Alaska’s North Slopeβ€―interact with the Arctic Ocean. The project, calledΒ Frontlines of Rapidly Transforming EcosystemsΒ (FORTE)β€―will combine optical and radar measurements fromβ€―satellites,β€―planes, high-techβ€―research vessels, drones,β€―and underwater autonomous systems to track microscopic marine life, water flow, andβ€―chemistry. The team will collaborate with localΒ and tribalΒ communities to sustain observations over timeβ€―and apply NASA assets to address emerging local needs and decision-making priorities.Β Β 

Landslide triggersΒ 

WhenΒ a slow-moving landslideΒ in CaliforniaΒ suddenly collapsedΒ and buriedΒ a sectionΒ ofΒ coastal highway inΒ 2017,Β scientists at NASA JPL wanted to know how precipitation swings played aΒ role. JPLΒ studiesΒ how waterΒ infiltrates andΒ destabilizes hillslopesΒ all over the world.Β TheΒ LandslideΒ Change CharacterizationΒ ExperimentΒ (LACCE)Β projectΒ will combine airborne synthetic aperture radar with land-based sensors to track how slopes in California are responding to a world of intensifying droughts and downpours. The project also takes aim at emerging landslideΒ hazards in Alaska, where rapidly retreatingΒ glaciers are accelerating slope movements that haveΒ theΒ potential to create mega-tsunamis.β€―Β 

This series of images shows the collapse of the Mud Creek landslide in May 2017 along the Big Sur coast in Central California, and the subsequent repairs to Highway 1, which was damaged during the event.
Andy Ritchie/USGS Pacific Coastal and Marine Science Center

NASA’s Earth Venture Suborbital program, designed to be nimble and high impact, was established following a recommendation by the National Research Council in 2007. In the decades since, teams have studied phenomena,Β including blizzards, coral reefs, and ocean whirlpools.Β Β 

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Sally Younger

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Last Updated
Jul 21, 2026

Ontario Wildfire Smoke Moves East

16 July 2026 at 00:00
A satellite image shows brown smoke from wildfires in Ontario, Canada, streaming east across parts of Canada and the U.S. Areas of white clouds are mixed in with the smoke.
Smoke from wildland fires pours eastward over Canada and the U.S. in an image captured on the afternoon of July 14, 2026, by theΒ VIIRSΒ (Visible Infrared Imaging Radiometer Suite)Β on theΒ NOAA-21Β satellite.
NASA Earth Observatory/Lauren Dauphin

After a slow start to Canada’s 2026 fire season, activity picked up by the end of June amid dry, warm conditions and returned closer to the 25-year average. By mid-July, almost 850 fires were actively burning across the country, according to the Canadian Interagency Forest Fire Centre. More than 180 of those were burning in Ontario.

This NOAA-21Β image, acquired on the afternoon of July 14, 2026, shows smoke billowing from the Ontario fires. Winds carried the smoke primarily southeast over much of the southern part of the province, as well as parts of Quebec and the U.S. Midwest and Northeast, tinting the sky shades of gray and yellow and the Sun orange in many areas.

The smoke’s impact on air quality varied, depending largely on altitude. In areas where smoke was high in the atmosphere, air quality impacts were negligible; where it drifted closer to the ground, conditions worsened. Air quality in Toronto, for instance, reached unhealthy levels, according to AirNow. People in the southern parts of the province were also grappling with a heat wave, compounding the health risks.

Much of the smoke came from fires in Northwestern Ontario, where eight blazes saw significant growth on July 13 and 14. The fires prompted officials to issue evacuation orders for several communities in this part of the province, according to news reports.

As of July 14, fires across Canada have burned 1.9 million hectares (4.7 million acres) since the start of the yearβ€”still well below the season totals from the extreme fire years of 2023 and 2025. How the rest of the season plays out remains to be seen. A seasonal fire outlookβ€”compiled by wildland fire experts from the U.S., Canada, and Mexicoβ€”shows where fire conditions are more or less likely through July, August, and September.

NASA Earth Observatory image by Lauren Dauphin, using VIIRS data from NASA EOSDIS LANCE , GIBS/Worldview , and the Joint Polar Satellite System (JPSS). Story by Kathryn Hansen.

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A satellite image shows brown smoke from wildfires in Ontario, Canada, streaming east across parts of Canada and the U.S. Areas of white clouds are mixed in with the smoke.

July 14, 2026

JPEG (3.96 MB)

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Examining Algal Blooms in Blue Mesa

6 July 2026 at 00:01




November 15, 2017
November 17, 2021

The first of a pair of satellite images shows the reservoir in November 2017, when water levels were relatively high and its color was mostly blue.
Cyanobacteria blooms turned Blue Mesa Reservoir green from September through November 2021, when water levels were among the lowest on record. The OLI (Operational Land Imager) on Landsat 8 captured this image (right) of a bloom on November 17, 2021, when the water was near its lowest level; the left image shows the same area on November 15, 2017, when water levels were closer to normal.
NASA Earth Observatory / Lauren Dauphin

The second image in the pair shows the same part of the reservoir in November 2021, when water levels were much lower and its color was much greener.
Cyanobacteria blooms turned Blue Mesa Reservoir green from September through November 2021, when water levels were among the lowest on record. The OLI (Operational Land Imager) on Landsat 8 captured this image (right) of a bloom on November 17, 2021, when the water was near its lowest level; the left image shows the same area on November 15, 2017, when water levels were closer to normal.
NASA Earth Observatory / Lauren Dauphin

The first of a pair of satellite images shows the reservoir in November 2017, when water levels were relatively high and its color was mostly blue.
Cyanobacteria blooms turned Blue Mesa Reservoir green from September through November 2021, when water levels were among the lowest on record. The OLI (Operational Land Imager) on Landsat 8 captured this image (right) of a bloom on November 17, 2021, when the water was near its lowest level; the left image shows the same area on November 15, 2017, when water levels were closer to normal.
NASA Earth Observatory / Lauren Dauphin
The second image in the pair shows the same part of the reservoir in November 2021, when water levels were much lower and its color was much greener.
Cyanobacteria blooms turned Blue Mesa Reservoir green from September through November 2021, when water levels were among the lowest on record. The OLI (Operational Land Imager) on Landsat 8 captured this image (right) of a bloom on November 17, 2021, when the water was near its lowest level; the left image shows the same area on November 15, 2017, when water levels were closer to normal.
NASA Earth Observatory / Lauren Dauphin

November 15, 2017

November 17, 2021


Cyanobacteria blooms turned Blue Mesa Reservoir green from September through November 2021, when water levels were among the lowest on record. The OLI (Operational Land Imager) on Landsat 8 captured this image (right) of a bloom on November 17, 2021, when the water was near its lowest level; the left image shows the same area on November 15, 2017, when water levels were closer to normal.

The summers of 2021 and 2022 were tough seasons for Colorado’s Blue Mesa Reservoir. A severe drought gripped much of the western U.S., prompting emergency water releases that brought the reservoir to its lowest level since 1984. Marinas and boat ramps closed, remnants of a ghost town emerged from the muck, and parts of the reservoir turned greenish and swirled with toxic cyanobacteria blooms.

Research conducted by scientists at the U.S. Geological Survey and the National Park Service analyzed decades of Blue Mesa Reservoir data and found a connection between low water levels, warm water temperatures, and harmful blooms.

β€œAlgal blooms were more common when water levels were below 7,470 feet and water temperatures were above approximately 19.5 degrees Celsius (67.1 degrees Fahrenheit),” said Tyler King, a research hydrologist with U.S. Geological Survey. Water levels that low are relatively common and have occurred every few years in recent decades. Β 

While some cyanobacteria, also called blue-green algae, are always present in the reservoir in small numbers, problems occur when certain types proliferate. Aphanizomenon, Dolichospermum, and Woronichinia, for instance, thrive when the reservoir’s waters become warm and stagnant, releasing a toxin called microcystin that can cause skin and eye irritation, respiratory problems, and liver damage. Children and pets are particularly vulnerable to microcystin poisoning because of their size and tendency to ingest more water than adults.

King and colleagues analyzed in situ water samples and satellite observations from the European Space Agency’s Sentinel-2 mission and the NASA/U.S. Geological Survey Landsat satellites. A Sentinel-2 sensor that detects the light-harvesting pigment chlorophyll was particularly useful for mapping the blooms, while Landsat sensors were used to map water temperatures over time.

The National Park Service and U.S. Geological Survey launched the project in 2021 after anecdotal reports and water sampling suggested elevated cyanobacteria concentrations, King said. The scientists collected water samples but also turned to historical records and satellite data—”like a time machine,” he saidβ€”to examine conditions before regular water sampling had begun. Their analysis included satellite records of chlorophyll levels that extended back to 2016 and temperature records that reached back to 2000. The research team also studied in situ data on water levels dating to the 1970s.

A photograph taken from a rocky shoreline along the Iola Basin show mats of green growth coating the surface of the water.
A cyanobacteria bloom turned the water surface of Iola Basin green on September 8, 2021. Photo by Nicole Gibney/National Park Service.

The satellite data showed that blooms typically start in the eastern end of the reservoir, an area known as Iola Basin. The basin, where the Gunnison River flows into the reservoir, is the shallowest part of the reservoir. Occasionally, the satellite data showed, blooms spread westward into other parts of the reservoir, sometimes moving about two-thirds of the way across. However, concentrations of toxins rarely reached levels that posed health concerns beyond Iola Basin.

The same dynamics that caused challenges for Blue Mesa in 2021 and 2022 are present in 2026, said King. Drought again plagues much of the western U.S., the mountains hold little snow, and water levels in Blue Mesa are low. On June 27, 2026, the reservoir stored about 43 percent of the water it typically does on that date, the lowest value observed for that day in the past 30 years. Water levels are expected to continue dropping until October, according to U.S. Bureau of Reclamation projections.Β 

If cyanobacteria blooms emerge in 2026, the researchers expect that satellites will help scientists track them. The researchers use the U.S. Geological Survey’s WaterMAP (Water Monitoring Above the Planet) tool to monitor for potential bloom conditions within hours of satellite overpasses. NASA’s STREAM (Satellite-based Tool for Rapid Evaluation of Aquatic Environments) project also uses data from Landsat and Sentinel-2 to map potential blooms within hours of a satellite overpass, and the multi-agency CyAN (Cyanobacteria Assessment Network) project collects daily data from other satellites to map blooms in larger water bodies.

β€œIt’s amazing that we can use satellites to map the impacts of microscopic organisms from almost 500 miles away,” King said. Yet it will still be crucial to get people out on the water taking samples and directly testing for toxins, he emphasized. β€œThe satellites aren’t definitive,” he added. β€œThey can tell us where there might be a problem, but toxins often aren’t present until the later stages of a bloom.”

A photograph shows two female researchers collecting green, algae-rich water in a cylindrical container.
Satellite observations can help managers decide where to send personnel to collect water samples for more detailed analysis of bloom toxicity. Photo by Katie Walton-Day/USGS.

NASA Earth Observatory images by Michala Garrison, using Landsat data from theΒ U.S. Geological Survey. Photos by Katie Walton-Day (USGS) and Nicole Gibney (NPS). Story by Adam Voiland.

Downloads

The first of a pair of satellite images shows the reservoir in November 2017, when water levels were relatively high and its color was mostly blue.

November 15, 2017

JPEG (8.98 MB)

The second image in the pair shows the same part of the reservoir in November 2021, when water levels were much lower and its color was much greener.

November 17, 2021

JPEG (8.46 MB)

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