Εμφάνιση αναρτήσεων με ετικέτα Earth observatory. Εμφάνιση όλων των αναρτήσεων
Εμφάνιση αναρτήσεων με ετικέτα Earth observatory. Εμφάνιση όλων των αναρτήσεων

Πέμπτη 12 Νοεμβρίου 2015

World Soil Moisture


acquired May 27 - 31, 2015
download large image (444 KB, PNG, 1994x998)


Look at natural-color satellite images and it becomes clear that most of the water on Earth (about 97 percent) is stored in the oceans. Next you might notice some on the land: liquid water fills lakes and rivers, while frozen water blankets the poles and mountaintops. In the atmosphere, water is visible in the countless tiny droplets that compose the clouds, though there is plenty of moisture even in cloud-free skies.

Not immediately visible, however, is the water residing in the soil. This water does not appear brilliantly blue or white, like the oceans or ice. In fact, it is hard to spot in natural-color satellite images.

Compared to the amount of water stored elsewhere on the planet, the amount in the soil is minuscule. But that small volume has great significance. It can affect when, where, and what a farmer will plant. It can influence the weather. And at high northern latitudes, soil moisture has serious implications for global climate.

For all of these reasons, researchers have developed satellite instruments to measure the water hidden between soil particles. The instruments are either active or passive. Active sensors allow scientists to measure moisture in very specific areas (high resolution), but they are less accurate than other sensors. In contrast, passive measurements give better estimates of the amount of water, but over a broader area (coarse spatial resolution) than active radar. NASA’s Soil Moisture Active Passive (SMAP) satellite was launched in January 2015 and carries both a radiometer and radar. (Note: the radar stopped transmitting data in July 2015.)

The map above was produced with data collected by SMAP’s radar and radiometer from May 27–31, 2015. It shows the amount of moisture in the top 5 centimeters of the ground at a resolution of about 9 kilometers. Data are mapped as the fraction of the volume of water contained in a volume of soil. Dark green and blue areas are progressively wetter, up to a ratio of about 0.5; at that point, the ground is considered saturated.

As expected, deserts around the world have low soil moisture content, and appear light yellow in this map. Soils in areas such as rainforests, boreal forests, and vegetated mountain regions are generally wetter.

There is often good correspondence between areas where meteorologists observe high amounts of rainfall and areas of maximum soil moisture, as was the case in October 2015 following extreme rainfall in the eastern United States. But soil moisture depends on other factors, too, such as the state of the soil preceding an event. Soil that is already wet can saturate more quickly and cause runoff and flooding.

Space-based platforms like SMAP, combined with insights from ground-based sensors, contribute to a growing record of global soil moisture. The goal is to establish a standardized set of measurements for the entire planet so that everyone from meteorologists to climate modelers can track the movement of this small but vital reservoir of water.

Read more in our latest feature story: A Little Bit of Water, A Lot of Impact.

Selected ReadingLu, H. et al., (2009) Monitoring Soil Moisture from Spaceborne Passive Microwave Radiometers: Algorithm Developments and Applications to AMSR-E and SSM/I. Advances in Geoscience and Remote Sensing, Chapter 17.
NASA’s Jet Propulsion Laboratory (2015) Soil Moisture Active Passive (SMAP).
NASA’s Jet Propulsion Laboratory (2015, March 9) NASA’s Soil Moisture Mapper Takes First ‘SMAPshots’. Accessed September 16, 2015.
SMAP Mission Brochure (2014) Mapping Soil Moisture and Freeze/Thaw State from Space. Accessed September 16, 2015.

NASA Earth Observatory map by Joshua Stevens, using data courtesy of JPL and the SMAP science team. Caption by Kathryn Hansen.

Instrument(s): SMAP


Κυριακή 26 Ιουλίου 2015

Forests of the Cal Madow


acquired June 27, 2015download large image (5 MB, JPEG, 3996x2664)


acquired June 27, 2015



Editor’s Note: Today’s caption is the answer to Earth Observatory’s July 2015 image puzzler.

Sparsely-vegetated desert landscapes dominate most of northern Somalia. One notable exception is the Cal Madow Mountains, a narrow coastal range that runs parallel to the Gulf of Aden. Standing at least 800 meters (2,600 feet) above sea level and extending upward, the plateaus and upper slopes of the range support thriving forests. The highest point in the range, Mount Shimbiris, tops out at 2,460 meters (8,070 feet).

The Operational Land Imager (OLI) on Landsat 8 captured this image of the Cal Madow in the Sanaag province of Somaliland on June 27, 2015. The upper image shows a detailed view of forests and deeply-incised plateaus in the highlands, while the lower image offers a broader view of the range and the surrounding lowlands. The upper slopes of the range receive about 800 millimeters (30 inches) of rainfall per year. This provides enough moisture for the forests at higher elevations, but at lower elevations vegetation is concentrated in narrow stream valleys. In the second image, a long west-east running fault scarp lies just to the north of Mount Shimbiris. This scarp marks the edge of widening rift valley caused by the ongoing separation of the Arabian and Somalian plates.

In the detailed view, thin repeating strips of vegetation are visible on many of the hillsides, appearing much like the contour lines on a topographical map. These distinct bands form because of interactions between vegetation and soil that alter the permeability of the soil. While the presence of vegetation causes soil to absorb and retain more moisture, its absence makes it more difficult for soil to absorb water. As a result, runoff from rain storms tend to rush past areas with sparse vegetation until it reaches a more densely vegetated zone, amplifying the contrast between vegetated and non-vegetated areas in the process.

Of more than a thousand plant species that live in the Cal Madow, two of the most famous are Boswellia sacra(frankincense) and Commiphora myrrha (myrrh). The aromatic resin of these trees, which grow on rocky outcrops and cliffs, is highly prized for use in incense, perfume, and chewing gum. The resins are also widely used in Chinese medicine. Harvesting involves cutting the trunk of trees and returning later to collected the resin that flows out and hardens.

The city of Ceerigaabo serves as a key hub for gathering, sorting, and storing frankincense and myrrh in Somalia, which is one of the world’s leading exporters of the prized resins.

References and Related Reading


d‘Herbes et al, (2001) Banded Vegetation Patterns and Related Structures. 149, 1-19.
ESA (2014, December 25) Earth from Space: Cal Madow. Accessed July 24, 2015.
Global Post (2010, December 25) Somaliland fosters trade in frankincense and myrrh. Accessed July 24, 2015.
Hemming, C. (2008, June 28) The vegetation of the northern region of the Somali Republic. Proceedings of the Linnean Society of London, 177 (2), 173-250.
Institute for Environmental Diplomacy and Security at the University of Vermont (2011, May 29) Frankincense and Sustainable Livelihoods in Somaliland/Somalia. Accessed July 24, 2015.
Network for Natural Gums and Resins in Africa (NGARA) Production and Marking of Gum Resins. Accessed July 24, 2015.
NPR (2011, December 25) Trees In Trouble: Grim Future For Frankincense. Accessed July 24, 2015.
University of Vermont (2014, March) Sustainable Sourcing of Phytochemicals as a Development Tool: The Case of Somaliland's Frankincense Industry. Accessed July 24, 2015.

NASA Earth Observatory image by Joshua Stevens, using Landsat data from the U.S. Geological Survey.Photographs by Adam Voiland.Instrument(s): Landsat 8 - OLI