Showing posts with label Canada. Show all posts
Showing posts with label Canada. Show all posts

Tuesday, April 1, 2014

Satellite Shows High Productivity from U.S. Corn Belt


The magnitude of fluorescence portrayed in this visualization prompted researchers to take a closer look at the productivity of the U.S. Corn Belt. The glow represents fluorescence measured from land plants in early July, over a period from 2007 to 2011.

Data from satellite sensors show that during the Northern Hemisphere's growing season, the Midwest region of the United States boasts more photosynthetic activity than any other spot on Earth, according to NASA and university scientists.

Healthy plants convert light to energy via photosynthesis, but chlorophyll also emits a fraction of absorbed light as a fluorescent glow that is invisible to the naked eye. The magnitude of the glow is an excellent indicator of the amount of photosynthesis, or gross productivity, of plants in a given region.

Research in 2013, led by Joanna Joiner of NASA's Goddard Space Flight Center in Greenbelt, Maryland, demonstrated that fluorescence from plants could be teased out from existing data from satellites that were designed and built for other purposes. The new research, led by Luis Guanter of the Freie Universität Berlin, used the data for the first time to estimate photosynthesis from agriculture. Results were published March 25 in the Proceedings of the National Academy of Sciences.

According to co-author Christian Frankenberg of NASA's Jet Propulsion Laboratory in Pasadena, Calif., "The paper shows that fluorescence is a much better proxy for agricultural productivity than anything we've had before. This can go a long way regarding monitoring -- and maybe even predicting -- regional crop yields."

Guanter, Joiner and Frankenberg launched their collaboration at a 2012 workshop, hosted by the Keck Institute for Space Studies at the California Institute of Technology (Caltech) in Pasadena, to explore measurements of photosynthesis from space. The team noticed that on an annual basis, the tropics are the most active in photosynthesis. But during the Northern Hemisphere's growing season, the U.S. Corn Belt "really stands out," Frankenberg said. "Areas all over the world are not as productive as this area."

The researchers set out to describe the phenomenon observed by carefully interpreting data from the Global Ozone Monitoring Experiment 2 (GOME-2) on Metop-A, a European meteorological satellite. Data showed that fluorescence from the U.S. Corn Belt peaks in July at levels 40 percent greater than those observed in the Amazon.

Comparison with ground-based measurements from carbon flux towers and yield statistics confirmed the results.

"The match between ground-based measurements and satellite measurements was a pleasant surprise," said Joiner, a co-author on the paper.

Ground-based measurements have a resolution of about 0.4 square mile (1 square kilometer), while the satellite measurements currently have a resolution of more than 1,158 square miles (3,000 square kilometers). The study confirms that even with coarse resolution, the satellite method could estimate the photosynthetic activity occurring inside plants at the molecular level for areas with relatively homogenous vegetation like the Corn Belt.

Challenges remain in estimating the productivity of fragmented agricultural areas not properly sampled by current space-borne instruments. That's where missions with better resolution could help, such as NASA's Orbiting Carbon Observatory-2 (OCO-2) -- a mission planned for launch in July 2014 that will also measure solar-induced fluorescence.

The research could also help scientists improve the computer models that simulate Earth's carbon cycle, as Guanter found a strong underestimation of crop photosynthesis in models. The analysis revealed that carbon cycle models -- which scientists use to understand how carbon cycles through the ocean, land and atmosphere over time -- underestimate the productivity of the U.S. Corn Belt by 40 to 60 percent.

Unlike most vegetation, food crops are managed to maximize productivity. They usually have access to abundant nutrients and are irrigated. The U.S. Corn Belt, for example, receives water from the Mississippi River. Accounting for the region's irrigation is currently a challenge for models, which is one reason why they underestimate agricultural productivity.

"If we don't take into account irrigation and other human influences in the agricultural areas, we're not going to correctly estimate the amount of carbon taken up by vegetation, particularly corn," Joiner said. "Corn plants are very productive in terms of assimilating carbon dioxide from the atmosphere. This needs to be accounted for going forward in trying to predict how much of the atmospheric carbon dioxide will be taken up by crops in a changing climate."

According to Frankenberg, the remote sensing-based techniques now available could be a powerful monitoring tool for food security, especially data from OCO-2 in combination with data from other upcoming satellites such as NASA's Soil Moisture Active Passive (SMAP), scheduled for launch later this year.

Image credit: NASA's Goddard Space Flight Center

Saturday, March 22, 2014

Lakes Huron, Erie and Ontario


Three of North America’s five Great Lakes are pictured in this Envisat image: Lake Huron (left), Lake Ontario (right) and Lake Erie (bottom).

About 100,000 years ago, a major ice sheet formed over most of Canada and part of the US. As the ice sheet formed, giant glaciers flowed into the land carving out valleys and leveling mountains.

Some 14,000 years ago, higher temperatures began to melt the ice sheet, and meltwater filled the small and large holes left by the glaciers. Many of these holes today still contain water and form the thousands of lakes of the central USA and Canada. The biggest remnants of this process are the Great Lakes.

Covering an area of over 244,000 sq km and containing about 22,600 cubic km of water, together the Great Lakes form the largest connected area of fresh, surface water on Earth. The only place where more fresh water is contained is in the polar ice caps.

They have played an important role in North America’s economic development by providing a transportation system between the agricultural and mining regions on the western shores with the market centers on the East Coast. The ability to ship materials such as coal, iron and ore also gave rise to the steel and automobile industries in the area. Detroit – nicknamed ‘Motor City’ – is located on the Detroit River (lower left).

This image was acquired on 6 March 2010. Snow cover is evident across the land, and we can see ice build-up along some of the lakes’ edges.

A green algal bloom is also visible in Lake Erie. These toxic blooms have been a problem for the lake in recent years. Caused by heightened levels of phosphorus – found in fertilizers and common household products – finding its way into the water, these blooms have increased the size of the lake’s low-oxygen 'dead zone'.

This image is featured on the Earth from Space video program.

Photo credit: ESA

Thursday, March 6, 2014

Arctic Ocean Ice Melt From Warm Mackenzie River Flows


These images show sea surface temperatures of the Beaufort Sea where Canada's Mackenzie River discharges into the Arctic Ocean, as measured by the Moderate Resolution Imaging Spectroradiometer (MODIS) instrument on NASA's Terra spacecraft. The image at left was obtained June 14, 2012, before discharged waters from the Mackenzie River (located in the bottom center of the image) broke through the adjacent sea ice barrier (shown in light blue) stuck along the shore of the Mackenzie River delta. The image at right, acquired July 5, 2012, shows the extensive intrusion of heat carried by the river waters once they breached the sea ice barrier (shown in yellow, orange and red). Scientists saw an increase of 11.7 degrees Fahrenheit (6.5 degrees Celsius) in the surface temperature of the open water, which enhanced sea ice melt.

Image credit: NASA

Note: For more information, see PIA18035: Warm Rivers Play Role in Arctic Sea Ice Melt (Animation) and NASA: Warm Rivers Play Role in Arctic Sea Ice Melt.

Tuesday, July 10, 2012

Dawson, Canada


Dawson, Canada was a boom town in 1898, with a population of 40,000. Discovery of gold in the Klondike fueled the massive influx of miners, merchants, and other support professions to this town on the Yukon River. The current population is just over 1,000, with over 60,000 tourists invading the town each summer. Shortly after gold discovery, large gold dredges began an industrial mining operation, leaving large tailings piles in their wake. These can be clearly seen along the creek east of Dawson. The image was acquired September 19, 2010, and is located at 64.1 degrees north latitude, 136.4 degrees west longitude.

Photo credit: NASA/GSFC/METI/ERSDAC/JAROS, and U.S./Japan ASTER Science Team

Sunday, March 18, 2012

Nunavut Territory, Canada


Nunavut, in northern Canada, is the largest and newest federal territory of the country. The name means "our land" in Inuktitut, given to the territory in 1999. With a population of about 33,000 and an area about the size of Western Europe, Nunavut is the largest and least populous of the provinces in Canada. The land is mostly flat as a result of the actions of the large ice sheet that completely covered the land tens of thousands of years ago. The evidence of this past glaciation is apparent in the thousands of lakes gouged out of the land surface. In the summer the lakes each harbor different biota, and have varying amounts of sediments; hence the great variety of colors seen. The image was acquired July 18, 2001, covers an area of 58 x 59 km, and is located at 67 degrees north latitude, 97.6 degrees west longitude.

Photo credit: NASA/GSFC/METI/ERSDAC/JAROS, and U.S./Japan ASTER Science Team