Herbarium of France (Fungi of France)
By Bulliard, Pierre, 1752-1793,ht Publication info Paris, Chez l'auteur, Didot, Debure, Belin 0.1780 to 93.,fr BHL Collections: New York Botanical Garden

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Monterey Bay Aquarium

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almost home
Mike Driver
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Today's Document

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Love Begins
Cosmic Funnies
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Sweet Seals For You, Always

pixel skylines

shark vs the universe

Origami Around
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Herbarium of France (Fungi of France)
By Bulliard, Pierre, 1752-1793,ht Publication info Paris, Chez l'auteur, Didot, Debure, Belin 0.1780 to 93.,fr BHL Collections: New York Botanical Garden
Housing Estate (1968-79) in Ottobrunn, Germany, by Herbert Kochta
Photograph by mart-n
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The Petri Dish Project, The Bio-Infinity Series (4), by J.D Doria, 2015
The Panther (Neurosigma siva, Limenitidinae, Nymphalidae) by Sinobug (itchydogimages) on Flickr. Pu’er, Yunnan, China See more Chinese butterflies on my Flickr site HERE…..
Long-horned Orb-weaver Spiders (Macracantha arcuata, Araneidae) by Sinobug (itchydogimages) on Flickr. Pu'er, Yunnan, China See more Chinese spiders and arachnids on my Flickr site HERE…..
White Scarab Beetle (Cyphochilus insulanus, Melolonthinae, Scarabaeidae) Scarab beetles in the genus Cyphochilus are so white as to be considered one of the whitest whites that occurs in nature. The whiteness of its body is caused by a thin layer of a highly reflective natural photonic solid in its scales and has nothing to do with pigment. The secret is in the size of the filaments of which the scales are made and the spacing between the filaments. This structure scatters light in an unusually efficient manner. Unlike colours, which can be created by using highly ordered structures to scatter light, white is created by a random, simultaneous scattering of light. by Sinobug (itchydogimages) on Flickr. Pu’er, Yunnan, China See more Chinese beetles on my Flickr site HERE…..
Astronomers Pursue Renegade Supermassive Black Hole
NASA - Chandra X-ray Observatory patch. May 11, 2017
Supermassive holes are generally stationary objects, sitting at the centers of most galaxies. However, using data from NASA’s Chandra X-ray Observatory and other telescopes, astronomers recently hunted down what could be a supermassive black hole that may be on the move. This possible renegade black hole, which contains about 160 million times the mass of our Sun, is located in an elliptical galaxy about 3.9 billion light years from Earth. Astronomers are interested in these moving supermassive black holes because they may reveal more about the properties of these enigmatic objects. This black hole may have “recoiled,” in the terminology used by scientists, when two smaller supermassive black holes collided and merged to form an even larger one. At the same time, this collision would have generated gravitational waves that emitted more strongly in one direction than others. This newly formed black hole could have received a kick in the opposite direction of those stronger gravitational waves. This kick would have pushed the black hole out of the galaxy’s center, as depicted in the artist’s illustration. The strength of the kick depends on the rate and direction of spin of the two smaller black holes before they merge. Therefore, information about these important but elusive properties can be obtained by studying the speed of recoiling black holes. Astronomers found this recoiling black hole candidate by sifting through X-ray and optical data for thousands of galaxies. First, they used Chandra observations to select galaxies that contain a bright X-ray source and were observed as part of the Sloan Digital Sky Survey (SDSS). Bright X-ray emission is a common feature of supermassive black holes that are rapidly growing. Next, the researchers looked to see if Hubble Space Telescope observations of these X-ray bright galaxies revealed two peaks near their center in the optical image. These two peaks might show that a pair of supermassive black holes is present or that a recoiling black hole has moved away from the cluster of stars in the center of the galaxy. If those criteria were met, then the astronomers examined the SDSS spectra, which show how the amount of optical light varies with wavelength. If the researchers found telltale signatures in the spectra indicative of the presence of a supermassive black hole, they followed up with an even closer examination of those galaxies. After all of this searching, a good candidate for a recoiling black hole was discovered. The left image in the inset is from the Hubble data, which shows two bright points near the middle of the galaxy. One of them is located at the center of the galaxy and the other is located about 3,000 light years away from the center. The latter source shows the properties of a growing supermassive black hole and its position matches that of a bright X-ray source detected with Chandra (right image in inset). Using data from the SDSS and the Keck telescope in Hawaii, the team determined that the growing black hole located near, but visibly offset from, the center of the galaxy has a velocity that is different from the galaxy. These properties suggest that this source may be a recoiling supermassive black hole.
Chandra X-ray Observatory. Image Credits: NASA/CXC
The host galaxy of the possible recoiling black hole also shows some evidence of disturbance in its outer regions, which is an indication that a merger between two galaxies occurred in the relatively recent past. Since supermassive black hole mergers are thought to occur when their host galaxies merge, this information supports the idea of a recoiling black hole in the system. Moreover, stars are forming at a high rate in the galaxy, at several hundred times the mass of the Sun per year. This agrees with computer simulations, which predict that star formation rates may be enhanced for merging galaxies particularly those containing recoiling black holes. Another possible explanation for the data is that two supermassive black holes are located in the center of the galaxy but one of them is not producing detectable radiation because it is growing too slowly. The researchers favor the recoiling black hole explanation, but more data are needed to strengthen their case. A paper describing these results was recently accepted for publication in The Astrophysical Journal and is available online. The first author is Dongchan Kim from the National Radio Astronomy Observatory in Charlottesville, Virginia. NASA’s Marshall Space Flight Center in Huntsville, Alabama, manages the Chandra program for NASA’s Science Mission Directorate in Washington. The Smithsonian Astrophysical Observatory in Cambridge, Massachusetts, controls Chandra’s science and flight operations. Related link: The Astrophysical Journal: https://arxiv.org/abs/1704.05549 Read More from NASA’s Chandra X-ray Observatory: http://chandra.harvard.edu/photo/2017/rsmbh/ For more Chandra images, multimedia and related materials, visit: http://www.nasa.gov/chandra Images, Text, Credits: NASA/Lee Mohon/Illustration: CXC/M. Weiss; X-ray: NASA/CXC/NRAO/D.-C. Kim; Optical: NASA/STScI. Best regards, Orbiter.ch Full article
See the Crab Nebula from 5 different observatories
This well-known nebula has been cracked open to see all its glory.
NASA Study Finds Unexpectedly Primitive Atmosphere Around ‘Warm Neptune’
NASA - Hubble Space Telescope patch / NASA - Spitzer Space Telescope patch. May 11, 2017 A study combining observations from NASA’s Hubble and Spitzer space telescopes reveals that the distant planet HAT-P-26b has a primitive atmosphere composed almost entirely of hydrogen and helium. Located about 437 light years away, HAT-P-26b orbits a star roughly twice as old as the sun. The analysis is one of the most detailed studies to date of a “warm Neptune,” or a planet that is Neptune-sized and close to its star. The researchers determined that HAT-P-26b’s atmosphere is relatively clear of clouds and has a strong water signature, although the planet is not a water world. This is the best measurement of water to date on an exoplanet of this size. The discovery of an atmosphere with this composition on this exoplanet has implications for how scientists think about the birth and development of planetary systems. Compared to Neptune and Uranus, the planets in our solar system with about the same mass, HAT-P-26b likely formed either closer to its host star or later in the development of its planetary system, or both. “Astronomers have just begun to investigate the atmospheres of these distant Neptune-mass planets, and almost right away, we found an example that goes against the trend in our solar system,” said Hannah Wakeford, a postdoctoral researcher at NASA’s Goddard Space Flight Center in Greenbelt, Maryland, and lead author of the study published in the May 12, 2017, issue of Science. “This kind of unexpected result is why I really love exploring the atmospheres of alien planets.”
Image above: The atmosphere of the distant “warm Neptune” HAT-P-26b, illustrated here, is unexpectedly primitive, composed primarily of hydrogen and helium. By combining observations from NASA’s Hubble and Spitzer space telescopes, researchers determined that, unlike Neptune and Uranus, the exoplanet has relatively low metallicity, an indication of the how rich the planet is in all elements heavier than hydrogen and helium. Image Credits: NASA/GSFC. To study HAT-P-26b’s atmosphere, the researchers used data from transits— occasions when the planet passed in front of its host star. During a transit, a fraction of the starlight gets filtered through the planet’s atmosphere, which absorbs some wavelengths of light but not others. By looking at how the signatures of the starlight change as a result of this filtering, researchers can work backward to figure out the chemical composition of the atmosphere. In this case, the team pooled data from four transits measured by Hubble and two seen by Spitzer. Together, those observations covered a wide range of wavelengths from yellow light through the near-infrared region. “To have so much information about a warm Neptune is still rare, so analyzing these data sets simultaneously is an achievement in and of itself,” said co-author Tiffany Kataria of NASA’s Jet Propulsion Laboratory in Pasadena, California. Because the study provided a precise measurement of water, the researchers were able to use the water signature to estimate HAT-P-26b’s metallicity. Astronomers calculate the metallicity, an indication of how rich the planet is in all elements heavier than hydrogen and helium, because it gives them clues about how a planet formed. To compare planets by their metallicities, scientists use the sun as a point of reference, almost like describing how much caffeine beverages have by comparing them to a cup of coffee. Jupiter has a metallicity about 2 to 5 times that of the sun. For Saturn, it’s about 10 times as much as the sun. These relatively low values mean that the two gas giants are made almost entirely of hydrogen and helium.
Spitzer Space Telescope. Image Credits: NASA/JPL
The ice giants Neptune and Uranus are smaller than the gas giants but richer in the heavier elements, with metallicities of about 100 times that of the sun. So, for the four outer planets in our solar system, the trend is that the metallicities are lower for the bigger planets. Scientists think this happened because, as the solar system was taking shape, Neptune and Uranus formed in a region toward the outskirts of the enormous disk of dust, gas and debris that swirled around the immature sun. Summing up the complicated process of planetary formation in a nutshell: Neptune and Uranus would have been bombarded with a lot of icy debris that was rich in heavier elements. Jupiter and Saturn, which formed in a warmer part of the disk, would have encountered less of the icy debris. Two planets beyond our solar system also fit this trend. One is the Neptune-mass planet HAT-P-11b. The other is WASP-43b, a gas giant twice as massive as Jupiter. But Wakeford and her colleagues found that HAT-P-26b bucks the trend. They determined its metallicity is only about 4.8 times that of the sun, much closer to the value for Jupiter than for Neptune. “This analysis shows that there is a lot more diversity in the atmospheres of these exoplanets than we were expecting, which is providing insight into how planets can form and evolve differently than in our solar system,” said David K. Sing of the University of Exeter and the second author of the paper. “I would say that has been a theme in the studies of exoplanets: Researchers keep finding surprising diversity.”
Hubble Space Telescope. Animation Credits: NASA/ESA
The Hubble Space Telescope is a project of international cooperation between NASA and ESA (European Space Agency). NASA’s Goddard Space Flight Center in Greenbelt, Maryland, manages the telescope. The Space Telescope Science Institute (STScI) in Baltimore conducts Hubble science operations. STScI is operated for NASA by the Association of Universities for Research in Astronomy, Inc., in Washington. NASA’s Jet Propulsion Laboratory in Pasadena, California, manages the Spitzer Space Telescope for NASA’s Science Mission Directorate, Washington. Science operations are conducted at the Spitzer Science Center at Caltech in Pasadena. Spacecraft operations are based at Lockheed Martin Space Systems Company, Littleton, Colorado. Data are archived at the Infrared Science Archive housed at the Infrared Processing and Analysis Center at Caltech. Caltech manages JPL for NASA. For more information about Spitzer, visit: http://www.nasa.gov/spitzer For images and more information about Hubble, visit: http://www.nasa.gov/hubble Images (mentioned), Animation (mentioned), Text, Credits: NASA/Karl Hille/Goddard Space Flight Center/Elizabeth Zubritsky/Nancy Neal-Jones/JPL/Elizabeth Landau. Greetings, Orbiter.ch Full article
- 天啓 Divine revelation ( Circumzenithal arc )
Photograph by Eno Shun
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LomoHome of the Day by bonnelly
Photograph by Steve Schöfisch
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Team Member on CAMERA RAW
Lomography Film of the Day - Lomography Xpro Slide 200
赤羽北二丁目ハイツ(1977・1989年) 東京都北区赤羽北 2017
- Yosemite National Park
Photograph by c o m i n 2 a n e n d
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Lomography Tag of the Day - sunrise