Tag Archives: Nasa

A Busy Day For Science @ NASA News – Voyager 1 Flies Out And Star Clusters Zoom In

Greetings fellow astrophiles!

There are untold numbers of places online that provide all kinds of astronomy news. The CNYO twitter feed is pushing 200 (following, that is. Still working on the follower count) accounts that range from UK Astronomy Clubs (they are exceptionally well organized on the other side of the pond) to equipment vendors to NASA astronauts. The same goes for RSS feeds from astronomy-centric news services, facebook groups, online magazines (or paper magazines with significant online contents), and a multitude of individuals hosting blog sites that report their own observing, study the news for proper amateur digestion, and generally produce really great content.

All that said, there is a lot of the same news online. With a large twitter feed count, you’ll see the same story a half-dozen times within an hour of its official reporting. Imagine following all the major news services to have them all post the same Associated Press tweet over and over and over again. One comes to question the veracity of the news services who happen to post articles hours or days after everyone else.

I subscribed a year ago to the NASA News Release Email List in the hopes of catching all of the major NASA happenings from the original source. The list is free to subscribe to and pumps out about 3000 news releases a year (some days being MUCH busier than others).

One can make their own subscription official by following the text at the footer of all their messages:

NASA news releases and other information are available automatically by sending an e-mail message with the subject line subscribe to hqnews-request@newsletters.nasa.gov. 
To unsubscribe from the list, send an e-mail message with the subject line unsubscribe to hqnews-request@newsletters.nasa.gov.

This past September 12 was a banner day for NASA News, as NASA made the official announcement of Voyager 1’s departure (sort of) from the Solar System and Hubble scientists reported the largest yet observed cluster of globular clusters (imagine having multiple M13’s in the same low-power field of view!) – featuring a rare image to complement the standard text-only announcements. I’ve included the two releases below (with an extra image showing the position of Voyager 1 – including an actual image of the distant traveler obtained using the Very Long Baseline Array (VLBA) and Green Bank Telescope (GBT).

Dwayne Brown – Headquarters, Washington – 202-358-1726 – dwayne.c.brown@nasa.gov

Jia-Rui C. Cook – Jet Propulsion Laboratory, Pasadena, Calif. – 818-354-0850 – jccook@jpl.nasa.gov

RELEASE 13-280 – NASA Spacecraft Embarks on Historic Journey into Interstellar Space

NASA’s Voyager 1 spacecraft officially is the first human-made object to venture into interstellar space. The 36-year-old probe is about 12 billion miles (19 billion kilometers) from our sun.

New and unexpected data indicate Voyager 1 has been traveling for about one year through plasma, or ionized gas, present in the space between stars. Voyager is in a transitional region immediately outside the solar bubble, where some effects from our sun are still evident. A report on the analysis of this new data, an effort led by Don Gurnett and the plasma wave science team at the University of Iowa, Iowa City, is published in Thursday’s edition of the journal Science.

“Now that we have new, key data, we believe this is mankind’s historic leap into interstellar space,” said Ed Stone, Voyager project scientist based at the California Institute of Technology, Pasadena. “The Voyager team needed time to analyze those observations and make sense of them. But we can now answer the question we’ve all been asking — ‘Are we there yet?’ Yes, we are.”

Voyager 1 first detected the increased pressure of interstellar space on the heliosphere, the bubble of charged particles surrounding the sun that reaches far beyond the outer planets, in 2004. Scientists then ramped up their search for evidence of the spacecraft’s interstellar arrival, knowing the data analysis and interpretation could take months or years.

Voyager 1 does not have a working plasma sensor, so scientists needed a different way to measure the spacecraft’s plasma environment to make a definitive determination of its location. A coronal mass ejection, or a massive burst of solar wind and magnetic fields, that erupted from the sun in March 2012 provided scientists the data they needed. When this unexpected gift from the sun eventually arrived at Voyager 1’s location 13 months later, in April 2013, the plasma around the spacecraft began to vibrate like a violin string. On April 9, Voyager 1’s plasma wave instrument detected the movement. The pitch of the oscillations helped scientists determine the density of the plasma. The particular oscillations meant the spacecraft was bathed in plasma more than 40 times denser than what they had encountered in the outer layer of the heliosphere. Density of this sort is to be expected in interstellar space.

The plasma wave science team reviewed its data and found an earlier, fainter set of oscillations in October and November 2012. Through extrapolation of measured plasma densities from both events, the team determined Voyager 1 first entered interstellar space in August 2012.

“We literally jumped out of our seats when we saw these oscillations in our data — they showed us the spacecraft was in an entirely new region, comparable to what was expected in interstellar space, and totally different than in the solar bubble,” Gurnett said. “Clearly we had passed through the heliopause, which is the long-hypothesized boundary between the solar plasma and the interstellar plasma.”

The new plasma data suggested a timeframe consistent with abrupt, durable changes in the density of energetic particles that were first detected on Aug. 25, 2012. The Voyager team generally accepts this date as the date of interstellar arrival. The charged particle and plasma changes were what would have been expected during a crossing of the heliopause.

“The team’s hard work to build durable spacecraft and carefully manage the Voyager spacecraft’s limited resources paid off in another first for NASA and humanity,” said Suzanne Dodd, Voyager project manager, based at NASA’s Jet Propulsion Laboratory (JPL), Pasadena, Calif. “We expect the fields and particles science instruments on Voyager will continue to send back data through at least 2020. We can’t wait to see what the Voyager instruments show us next about deep space.”

Voyager 1 and its twin, Voyager 2, were launched 16 days apart in 1977. Both spacecraft flew by Jupiter and Saturn. Voyager 2 also flew by Uranus and Neptune. Voyager 2, launched before Voyager 1, is the longest continuously operated spacecraft. It is about 9.5 billion miles (15 billion kilometers) away from our sun.

Voyager mission controllers still talk to or receive data from Voyager 1 and Voyager 2 every day, though the emitted signals are currently very dim, at about 23 watts — the power of a refrigerator light bulb. By the time the signals get to Earth, they are a fraction of a billion-billionth of a watt. Data from Voyager 1’s instruments are transmitted to Earth typically at 160 bits per second, and captured by 34- and 70-meter NASA Deep Space Network (DSN) stations. Traveling at the speed of light, a signal from Voyager 1 takes about 17 hours to travel to Earth. After the data are transmitted to JPL and processed by the science teams, Voyager data are made publicly available.

“Voyager has boldly gone where no probe has gone before, marking one of the most significant technological achievements in the annals of the history of science, and adding a new chapter in human scientific dreams and endeavors,” said John Grunsfeld, NASA’s associate administrator for science in Washington. “Perhaps some future deep space explorers will catch up with Voyager, our first interstellar envoy, and reflect on how this intrepid spacecraft helped enable their journey.”

Scientists do not know when Voyager 1 will reach the undisturbed part of interstellar space where there is no influence from our sun. They also are not certain when Voyager 2 is expected to cross into interstellar space, but they believe it is not very far behind.

JPL built and operates the twin Voyager spacecraft. The Voyagers Interstellar Mission is a part of NASA’s Heliophysics System Observatory, sponsored by the Heliophysics Division of NASA’s Science Mission Directorate in Washington. NASA’s DSN, managed by JPL, is an international network of antennas that supports interplanetary spacecraft missions and radio and radar astronomy observations for the exploration of the solar system and the universe. The network also supports selected Earth-orbiting missions.

The cost of the Voyager 1 and Voyager 2 missions — including launch, mission operations and the spacecraft’s nuclear batteries, which were provided by the Department of Energy — is about $988 million through September.

For a sound file of the oscillations detected by Voyager in interstellar space, animations and other information, visit: www.nasa.gov/voyager

For an image of the radio signal from Voyager 1 on Feb. 21 by the National Radio Astronomy Observatory’s Very Long Baseline Array, which links telescopes from Hawaii to St. Croix, visit: www.nrao.edu (image below – click for a large version).

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J.D. Harrington – Headquarters, Washington – 202-358-5241 – j.d.harrington@nasa.gov

Ray Villard – Space Telescope Science Institute, Baltimore, Md. – 410-338-4514 – villard@stsci.edu

RELEASE 13-282 – Hubble Uncovers Largest Known Group of Star Clusters, Clues to Dark Matter

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Hubble Space Telescope image of largest known population of globular clusters, in Abell 1689 galaxy grouping. Image Credit: NASA/ESA

NASA’s Hubble Space Telescope has uncovered the largest known population of globular star clusters, an estimated 160,000, swarming like bees inside the crowded core of the giant grouping of galaxies known as Abell 1689.

An international team of astronomers used Hubble’s Advanced Camera for Surveys to discover this bounty of stellar fossils and confirm such compact groupings can be used as reliable tracers for dark matter, the invisible gravitational scaffolding on which galaxies are built.

“We show how the relationship between globular clusters and dark matter depends on the distance from the center of the galaxy grouping,” Karla Alamo-Martinez of the Center for Radio Astronomy and Astrophysics of the National Autonomous University of Mexico in Morelia. “In other words, if you know how many globular clusters are within a certain distance, we can give you an estimate of the amount of dark matter.”

Alamo-Martinez is lead author of a paper on the findings published online Sept. 10 and appearing in the Sept. 20 print edition of The Astrophysical Journal, and part of a team led by John Blakeslee of National Research Council Canada’s Herzberg Institute of Astrophysics at the Dominion Radio Astrophysical Observatory in Victoria, British Columbia.

Globular clusters, dense bunches of hundreds of thousands of stars, are the homesteaders of galaxies. They contain some of the oldest surviving stars in the universe. Almost 95 percent of globular cluster formation occurred within the first 1 billion to 2 billion years after our universe was born in the theorized Big Bang 13.8 billion years ago.

Studying globular clusters is critical to understanding the early, intense star-forming events that mark galaxy formation. Understanding dark matter can yield clues on how large structures such as galaxies and galaxy clusters were assembled billions of years ago.

The globular star cluster in Abell 1689 is roughly twice as large as any other population found in previous globular cluster surveys — in comparison, our Milky Way galaxy hosts about 150 — and constitutes the most distant such systems ever studied, at 2.25 billion light-years away. The Hubble study shows most of the globular clusters in Abell 1689 formed near the center of the galaxy grouping, which contains a deep well of dark matter. The farther away from the galaxy core Hubble looked, the fewer globular clusters it detected. This observation corresponded with a comparable drop in the amount of dark matter, based on previous research.

“The globular clusters are fossils of the earliest star formation in Abell 1689, and our work shows they were very efficient in forming in the denser regions of dark matter near the center of the galaxy cluster,” Blakeslee said. “Our findings are consistent with studies of globular clusters in other galaxy clusters, but extend our knowledge to regions of higher dark matter density.”

Peering deep inside the heart of Abell 1689, Hubble detected the visible-light glow of 10,000 globular clusters, some as dim as 29th magnitude, which is 1 one-billionth the faintness of the dimmest star that can be seen with the naked eye. Based on that number, Blakeslee’s team estimated that more than 160,000 globular clusters are huddled within a diameter of 2.4 million light-years.

“Even though we are looking deep into the cluster, we’re only seeing the brightest globular clusters, and only near the center of Abell 1689 where Hubble was pointed,” he said.

For images and more information about the Abell 1689, visit:

www.nasa.gov/hubble or hubblesite.org/news/2013/36

The NASA News Release service is a great way to keep track of goings on in the nation’s space program, but goes much farther into all areas of NASA research, including climate research, geology, engineering, and administration. I encourage interested parties to sign up and get at least some of their space science news first-hand – then complain about all the twitter feeds taking so many minutes to report the same.

NASA Space Place – Size Does Matter, But So Does Dark Energy

Poster’s Note: One of the many under-appreciated aspects of NASA is the extent to which it publishes quality science content for children and Ph.D.’s alike. NASA Space Place has been providing general audience articles for quite some time that are freely available for download and republishing. Your tax dollars help promote science! The following article was provided for reprinting in August, 2013.

By Dr. Ethan Siegel

2013february2_spaceplaceHere in our own galactic backyard, the Milky Way contains some 200-400 billion stars, and that’s not even the biggest galaxy in our own local group. Andromeda (M31) is even bigger and more massive than we are, made up of around a trillion stars! When you throw in the Triangulum Galaxy (M33), the Large and Small Magellanic Clouds, and the dozens of dwarf galaxies and hundreds of globular clusters gravitationally bound to us and our nearest neighbors, our local group sure does seem impressive.

Yet that’s just chicken feed compared to the largest structures in the universe. Giant clusters and superclusters of galaxies, containing thousands of times the mass of our entire local group, can be found omnidirectionally with telescope surveys. Perhaps the two most famous examples are the nearby Virgo Cluster and the somewhat more distant Coma Supercluster, the latter containing more than 3,000 galaxies. There are millions of giant clusters like this in our observable universe, and the gravitational forces at play are absolutely tremendous: there are literally quadrillions of times the mass of our Sun in these systems.

The largest superclusters line up along filaments, forming a great cosmic web of structure with huge intergalactic voids in between the galaxy-rich regions. These galaxy filaments span anywhere from hundreds of millions of light-years all the way up to more than a billion light years in length. The CfA2 Great Wall, the Sloan Great Wall, and most recently, the Huge-LQG (Large Quasar Group) are the largest known ones, with the Huge-LQG — a group of at least 73 quasars – apparently stretching nearly 4 billion light years in its longest direction: more than 5% of the observable universe! With more mass than a million Milky Way galaxies in there, this structure is a puzzle for cosmology.

You see, with the normal matter, dark matter, and dark energy in our universe, there’s an upper limit to the size of gravitationally bound filaments that should form. The Huge-LQG, if real, is more than double the size of that largest predicted structure, and this could cast doubts on the core principle of cosmology: that on the largest scales, the universe is roughly uniform everywhere. But this might not pose a problem at all, thanks to an unlikely culprit: dark energy. Just as the local group is part of the Virgo Supercluster but recedes from it, and the Leo Cluster — a large member of the Coma Supercluster — is accelerating away from Coma, it’s conceivable that the Huge-LQG isn’t a single, bound structure at all, but will eventually be driven apart by dark energy. Either way, we’re just a tiny drop in the vast cosmic ocean, on the outskirts of its rich, yet barely fathomable depths.

Learn about the many ways in which NASA strives to uncover the mysteries of the universe: science.nasa.gov/astrophysics/. Kids can make their own clusters of galaxies by checking out The Space Place’s fun galactic mobile activity: spaceplace.nasa.gov/galactic-mobile/

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Caption: Digital mosaic of infrared light (courtesy of Spitzer) and visible light (SDSS) of the Coma Cluster, the largest member of the Coma Supercluster. Image credit: NASA / JPL-Caltech / Goddard Space Flight Center / Sloan Digital Sky Survey.

This article was provided by the Jet Propulsion Laboratory, California Institute of Technology, under a contract with the National Aeronautics and Space Administration.

About NASA Space Place

The goal of the NASA Space Place is “to inform, inspire, and involve children in the excitement of science, technology, and space exploration.” More information is available at their website: http://spaceplace.nasa.gov/

CNYO Observing Log: ShoppingTown Mall, 19 June 2013

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Greetings fellow astrophiles!

From the CNYO Facebook Group page on 17 June 2013:

Damian and I [Larry S.] have been talking about doing another impromptu observing session. We had some really good turn out for a Solar/Lunar observing session in the Shoppingtown upper parking lot. Wednesday’s forecast is looking promising. Anyone interested in doing another Solar/Lunar session at Shoppingtown at 6pm on Wednesday? I’m choosing Shoppingtown again, because I have a CNY Skeptics in the Pub meeting at Scotch and Sirloin at 7pm. Any one interested in joining us for a drink after is also welcome.


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The approximate location (at center) of the session.

CNYO hosted a half-dozen observers (and a half-dozen or so other stopper-by’s) at its second facebook-organized combined Solar/Lunar Observing Session in the parking lot of ShoppingTown Mall on Wednesday, 19 June 2013, just prior to the bimonthly CNY Skeptics In The Pub meeting at the Scotch & Sirloin.

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In attendance were Larry Slosberg with both his NMT 12” Dobsonian (and my custom Baader solar filter) and his Meade SCT 8”, myself with Baader-equipped Zhumell 25×100’s, and John Giroux with his Coronado Solarmax 60 II (which obviated the need for me to bring my Coronado PST, providing a low-magnification Baader view for onlookers instead through the binos). This event also featured the first official use of our CNYO Solar Observing brochure, which we will continue to update and have available at all of our Solar observing sessions (download the PDF for yourself at its CNYO post).

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The 11 day old waxing gibbous Moon hung quite pale blue but feature-rich through Larry’s 8” SCT. Outside of discussion with attendees, all attention was placed on the Sun, which was busy with several sunspots and prominences, include Sunspot 1772, which featured a surface prominence easily visible in John’s Solarmax. A gif of the 5 days prior and 5 following days is shown below from NASA SOHO images (the image for the 19th is in yellow).

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From NASA/SOHO images. Click for a full-sized version.

The Solar/Lunar Sessions are a perfect combination of interesting (and important!) objects and family-friendly observing times, making them one event we plan on committing to a more regular schedule this summer (with new potential locations under discussion). We will keep you posted on this website. Stay tuned!

CNYO Observing Log: NASA Climate Day, 2 April 2013

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Tuesday April 2nd marked the Museum of Science and Technology‘s hosting of NASA Climate Day in Syracuse, NY. For CNYO members and attendees attempting to observe the Sun, April 2nd also marked one of the more remarkable mixtures of weather patterns to hit CNY.

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Patient attendees waiting for a clearing. Photo by Simon Asbury.

CNYO solar scope setup at Walt the Blue Dragon commenced promptly at 5:00 p.m. Given the expectation of snow and considerable cloud cover over the next few hours before the 7:31 E.D.T. p.m. sunset, I left my Dobsonian at home and Larry Slosberg opted to keep his Meade SCT in the car. Our equipment for the event consisted of a pair of 25×100 and 10×30 binoculars (both with homemade Baader filters) and one Coronado PST. Also in tow were several garbage bags for rapid covering of all the equipment.

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The author looking for a clearing through Baader’d Zhumell 25×100’s. Photo by Simon Asbury.

The sky was windy, cloudy, patchy, and fast-moving, intermixing light snow with perfect blue patches near (but not always overlapping) the Sun. Over the course of about 80 minutes, only 10 good minutes of solar observing were had, and most of these involved some amount of cloud cover obscuring prominent Sunspot 1711 and several smaller Sunspots. The Coronado revealed a large triangular prominence and plenty of surface detail with a 20 mm Plossl and a TeleVue 3mm-6mm Nagler Zoom. It was during the Coronado observing that Bob Piekiel mentioned a certain tweak that can be performed to the PST (and other models) to improve the view (a forthcoming article documenting the procedure is in the works!).

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View of the Sun on April 2nd, 2013. From sohowww.nascom.nasa.gov.

The outside part of the NASA Climate Day festivities ended as a massive grey cloud approached from the distant East (that proved to drop the largest amount of snow on Syracuse not 30 minutes later), instigating the packing up of equipment and migration into the MOST itself to see the rest of the event. In all, only a few left the climate-controlled confines of the MOST to see the filtered Sun, but we did get a few passers by to look, at least one of whom made it onto our facebook page recently.

LESSON FOR THE SESSION: When it’s freezing cold, blustering-ly windy, dark-grey overcast, and only a slight hope for long patches of clear skies exists, keep the solar scopes close to the exterior doors of the building where the main event is going on.

The indoor part of the CNYO session consisted of a small presentation area for showing a few videos of solar events, how the Baader and Hydrogen-alpha filters (in the Coronado) work (having stolen an incandescent light bulb from a bicycle-powered demonstration for the Baader demo), and the relative sizes of the Sun and planets in our Solar System. We moved inside just as Dave Eichorn began his keynote lecture and unfortunately missed his presentation, but that did give us time to walk around the displays near our little setup (appropriate placed next to the vision display).

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The indoor presentation setup.

The demo of the Baader film with the incandescent bulb (to easily see the spring inside) was one of the indoor highlights (well, I thought is was interesting), then we finished the evening with a few students asking some very good questions about solar activity, the dangers of space flight, and potential plans for Moon and Mars Missions (which is always the real highlight of any CNYO session for me).

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First Announcement: NASA Climate Day At The MOST – 2 April 2013

Greetings fellow astrophiles!

I’m pleased to announce that The MOST is hosting a NASA-sponsored Climate Day on Tuesday, April 2nd. The combined indoor/outdoor (hopefully outdoor, if the skies hold) event includes demos and lectures on NASA’s Global View of Climate Change, understanding the differences between Weather & Climate, mini-Green House demonstrations, and Ocean Salinity.

Four notable presentations will also be made during the event, including:

Dave Eichorn: “Climate Impact” (6:30 – 7:15)

Anne Saltman, CNY Regional Planning and Development Board: “Regional Climate Impact – Responding To Climate Change in Central New York”

Todd Rodgers, National Energy Education Development (NEED) Project: “NEED & The SCSD Green Team”

Emily Alexander: “Nano And How It Relates To Climate Change – Reducing The Carbon Footprint Through Nanotechnology”

And, while everyone else considers our changing climate indoors, a few CNYO members will be hosting a solar observing session on the Creekwalk just North of The MOST (at the same location that the Syracuse Astronomical Society hosted the Venus Transit session on 6 June 2012). A google map of the proposed location (centered in the map between West Fayette and Walton) is provided below (The MOST is located just below the bottom of the map).


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There will be more information to follow (esp. for CNYO organization) as the event draws near, but we’ll be looking for a head count of available solar scopes (and solar scope operators). The first flyer from the MOST is reproduced below.

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We hope you can join us!

Banner image at top: Snow Cover and Sea Surface Temperatures – With an albedo of up to 80 percent or more, snow-covered terrain reflects most of the earth’s incoming solar radiation back into space, cooling the lower atmosphere. When snow cover melts, the albedo drops suddenly to less than about 30 percent, allowing the ground to absorb more solar radiation, heating the earth’s surface and lower atmosphere. Credit: NASA. Read more at www.nasa.gov/centers/goddard/earthandsun/climate_change.html.