Tampilkan postingan dengan label 2013 at 11:40PM. Tampilkan semua postingan
Tampilkan postingan dengan label 2013 at 11:40PM. Tampilkan semua postingan

Senin, 30 Desember 2013

Hidden faces can be found by zooming into hi-res photos of eyes onlinecollegedegreee.blogspot.com

Written By 12; About: Hidden faces can be found by zooming into hi-res photos of eyes onlinecollegedegreee.blogspot.com on Senin, 30 Desember 2013

onlinecollegedegreee.blogspot.com Hidden faces can be found by zooming into hi-res photos of eyes

Hidden faces can be found by zooming into hi-res photos of eyes S


Talk about a scene right out of Blade Runner: By zooming in on high-resolution photographs of faces, researchers recovered images of unseen bystanders from reflections in the subjects' eyes. The technique could eventually be used in criminal investigations.


The dark and shiny areas of our cornea are like a black mirror reflecting the surrounding environment off of it. Given the power of high-resolution photography these days, it's conceivable that these reflections could contain decipherable information — the kind that could help investigators in crimes in which victims are photographed, like hostage taking or child sex abuse. Indeed, previous research has shown that faces can be identified from even the poorest quality images.


Hidden faces can be found by zooming into hi-res photos of eyes S


To see if recognizable images could be extracted from extreme zoom-ins, psychologist Rob Jenkins and Christie Kerr from York University asked volunteers to participate in a face-matching task.


Hidden faces can be found by zooming into hi-res photos of eyes S


They were presented with highly pixelated — but still identifiable — images drawn from the cornea of images taken by a 38 megapixel camera. On average, the whole-face area for the reflected bystanders was about 322 pixels. Incredibly, these images were reconstructed from a sliver of digital information about 30,000 times smaller than the subjects' face.


Hidden faces can be found by zooming into hi-res photos of eyes S


Observers who were unfamiliar with the bystanders' faces achieved 71% recognition accuracy, while those who were familiar were recorded at 84% accuracy. And in a test of spontaneous recognition, they could accurately name a familiar face from an eye reflection image.


Hidden faces can be found by zooming into hi-res photos of eyes S


Interestingly, the researchers insist that the photos don't need to be taken at such a high megapixel rate. What's more important, they say, is to find people familiar with the faces in question.


For those of you concerned about privacy, this should give you some food for thought the next time you upload your images to Instagram or Facebook.


Read the entire study at PLoS One: "Identifiable Images of Bystanders Extracted from Corneal Reflections."


Image: Jenkins & Kerr/PLoS One.

Follow me on Twitter: @dvorsky

onlinecollegedegreee.blogspot.com Hidden faces can be found by zooming into hi-res photos of eyes

Jumat, 27 Desember 2013

This ancient burial box contains the earliest known reference to Jesus onlinecollegedegreee.blogspot.com

Written By 12; About: This ancient burial box contains the earliest known reference to Jesus onlinecollegedegreee.blogspot.com on Jumat, 27 Desember 2013

onlinecollegedegreee.blogspot.com This ancient burial box contains the earliest known reference to Jesus

This ancient burial box contains the earliest known reference to Jesus


After a 10-year investigation and criminal trial, an Israeli antiquities collector has been cleared of forgery charges. That means the modest limestone burial box pictured above — an ossuary inscribed with the earliest-known reference to Jesus – is the real deal.


Back in 2003, skeptics questioned the authenticity of the box, claiming that the owner, Oded Golan, had forged the mention of Jesus. He was arrested and charged with forgery. He's now been cleared of those charges after a thorough analysis of the artifact. Golan plans to put the box on display in Israel. It has not been seen in public since it was briefly displayed in Toronto in 2002.


Chiselled on the side are the words, "James, son of Joseph, brother of Jesus." The inscription is written in Jewish script and was done using a sharp instrument.


The Guardian explains:



James the Just was the first leader of the Christians in Jerusalem after the Crucifixion. He was executed for apostasy by the local rabbinical court.


At that time, Jews were not buried but laid in a cave. The bones were collected after a year and placed in an ossuary. Thousands have been discovered, some of them inscribed with names to identify whose bones they contain. One other ossuary mentions a brother.


"This is the oldest evidence that mentions the name of Jesus Christ," said Golan, who bought the box in the 1970s but did not realise its significance until Sorbonne professor Andre Lemaire noticed it in Golan's collection. Lemaire published his findings in 2002 and the ossuary was briefly displayed at a Toronto museum, causing a worldwide sensation.



So yes, this 2,000-year-old box belonged to Jesus's brother, James. If it's legit — and some experts still think it's not — it's an extremely rare piece of physical evidence of Jesus and his family.


Related: Papyrus fragment mentions Jesus's wife


onlinecollegedegreee.blogspot.com This ancient burial box contains the earliest known reference to Jesus

Senin, 23 Desember 2013

A huge reservoir of meltwater has been discovered beneath Greenland onlinecollegedegreee.blogspot.com

Written By 12; About: A huge reservoir of meltwater has been discovered beneath Greenland onlinecollegedegreee.blogspot.com on Senin, 23 Desember 2013

onlinecollegedegreee.blogspot.com A huge reservoir of meltwater has been discovered beneath Greenland

A huge reservoir of meltwater has been discovered beneath Greenland


Scientists working in Greenland have discovered an extensive aquifer of meltwater that sits under the Greenland ice sheet all year round — but it's not known if this reservoir, which is about the size of Ireland, will ever make its way to the ocean.


Meltwater pouring off from Greenland's extensive ice sheets is a known contributor to rising sea levels. And in fact, high meltwater runoff is responsible for half of Greenland's mass loss — and it's a phenomenon that's progressively getting worse. It now appears, however, that much of Greenland's meltwater isn't getting to the ocean, which may help explain disparities seen between climate models and satellite observations.


The discovery came as a complete surprise to a team of geoscientists who were expecting to find layers of dry snow. In a new study published in Nature Geoscience, they describe how the water, instead of being stored in the air space between subsurface rock particles, sits in the air space between the ice particles. It's similar to the way fruit juice stays liquid in a slushie.


A huge reservoir of meltwater has been discovered beneath Greenland S


Image: Beeld: Universiteit Utrecht.


The team, led by the University of Utah's Richard Forster, had been drilling in Greenland in early spring — a time before the annual melt. As they brought up a core sample, water started gushing out of it. The new observations suggest that a significant amount of water is stored in this partially compacted snow, which is called firn. This water remains in liquid form all year round — even when freezing air temperatures reach -5ºF (-15ºC). The water is insulated by the large amounts of snow that fall on the surface of the ice sheet in late summer.


Unsure of just how much water was below the ice, the researchers used ice penetrating radar to identify the top of reservoir near the watery cores. The resulting data was used to search for and map how much more water sat below. The survey revealed a gigantic area — about 27,000 square miles (70,000 square km). But what the scans did not reveal was the depth of the aquifer, the top layer of which just sits a few dozen feet below the icy surface. The geoscientists think the depth of the reservoir is about 16 to 165 feet (5-50 meters).


Should this be the case, that's about 140 billion tonnes of water. That's equal to 0.4 mm of sea level rise per year, which is about half of Greenland's contribution to the sea each year. The researchers don't know if the water will ever make its way to the ocean.


"It depends on whether it is currently connected to a system that is draining into the ocean or if it is a bit isolated and completely acting as a storage source without a current connection," said Forster. "We don't know the answer to this right now. It's massive, it's a new system we haven't seen before — we need to understand it more completely if we are to predict sea level rise."


Read the entire study at Nature Geoscience: "Extensive liquid meltwater storage in firn within the Greenland ice sheet."


Top image: Surface melt water rushed along the surface of the Greenland Ice Sheet through a supra-glacial stream channel, southwest of Ilulissat. via. Ian Joughlin/Associated Press.


onlinecollegedegreee.blogspot.com A huge reservoir of meltwater has been discovered beneath Greenland

Jumat, 20 Desember 2013

Scientists develop an 'elixir' that reverses a known cause of aging onlinecollegedegreee.blogspot.com

Written By 12; About: Scientists develop an 'elixir' that reverses a known cause of aging onlinecollegedegreee.blogspot.com on Jumat, 20 Desember 2013

onlinecollegedegreee.blogspot.com Scientists develop an 'elixir' that reverses a known cause of aging

Scientists develop an 'elixir' that reverses a known cause of aging


To date, we know of only two things that can reverse the effects of aging: caloric restriction and extensive exercise. But in a recent experiment, researchers applied a new compound to 2-year old mice, causing their muscles to regenerate to 6-month old levels. Incredibly, human trials may start next year.


The new compound, nicotinamide mono nucleotide (NMN), worked surprisingly quickly when tested on mice. When administered early enough in the aging process, it was found to work within one week; the muscles of older 2-year old mice were "indistinguishable" from the younger 6-month old animals. It improved muscle wastage, restored mitochondrial function and communication, and improved inflammation and insulin resistance, both of which are known causes of aging.


To put it into perspective, this result was like regenerating the muscles of a 60-year old human to those of a 20-year old.


Quite obviously, this comparison should be taken with a grain of salt; human aging and metabolism is quite different from that of mice. What's more, muscle strength did not improve (though the researchers are hoping to correct that). It's also an example of partial age reversal; the mice still have other age-related problems, like neurodegenerative decline and the shortening of telomeres.


But let's not get too down on the findings. What these Harvard Medical School researchers did is nothing short of amazing. Aging reversal. Moreover, the scientists are optimistic that the same compound will benefit healthy, young humans. To that end, the researchers are hoping to conduct human trials late next year. But realistically, even if it's found to have a similar effect on humans — and with no side-effects — therapies likely won't be put into place for about 20 years.


The focus of the research, like so many studies into aging, was directed at mitochondria, the power-packs of cells that carry out key biological functions. In this case, UNSW Medicine's David Sinclair isolated the molecular processes inside cells that enable communication between the mitochondria and the nucleus. Over time, the integrity of this communication breaks down, which accelerates the aging process. The key to Sinclair's research was in finding a way to restore this communication.


As we age, our levels of the chemical NAD decline, facilitating this unfortunate communication cascade. But by applying the new compound to both muscle tissue culture and lab mice, the researchers were able to restore these critical NAD levels. Cells actually convert this compound into NAD, which repairs the broken network and rapidly restores communication and mitochondrial function. In essence, it mimics the effects of diet and exercise.


Read the entire study at Cell: "Declining NAD+ Induces a Pseudohypoxic State Disrupting Nuclear-Mitochondrial Communication during Aging."


Image: The Curious Case of Benjamin Button.

Follow me on Twitter: @dvorsky

onlinecollegedegreee.blogspot.com Scientists develop an 'elixir' that reverses a known cause of aging

Kamis, 19 Desember 2013

San Diego Traffic, Organized by Color onlinecollegedegreee.blogspot.com

Written By 12; About: San Diego Traffic, Organized by Color onlinecollegedegreee.blogspot.com on Kamis, 19 Desember 2013

onlinecollegedegreee.blogspot.com San Diego Traffic, Organized by Color

Filmmaker Cy Kuckenbaker is back to delight our eyeballs with a meticulously edited 4-minute video of traffic footage shot from San Diego's Washington Street bridge – which doesn't sound something you'd want to spend four minutes watching, but then maybe you don't know who Kuckenbaker is, or the time-(col)lapse wizardry he's capable of.


Writes Kuckenbaker:



The source footage for this video is a 4-minute shot from the Washington Street bridge above State Route 163 in San Diego captured at 2:39pm Oct 1, 2013. My aim is to reveal the color palette and color preferences of contemporary San Diego drivers in addition to traffic patterns and volumes. There are no CG elements, these are all real cars that have been removed from one sample and reorganized.



Here is the source video from which the above edit is compiled:


You'll find more details on Kuckenbaker's methodology on his website.


onlinecollegedegreee.blogspot.com San Diego Traffic, Organized by Color

Rabu, 18 Desember 2013

Nope. Oxytocin isn't going to become the "trust me" drug. onlinecollegedegreee.blogspot.com

Written By 12; About: Nope. Oxytocin isn't going to become the "trust me" drug. onlinecollegedegreee.blogspot.com on Rabu, 18 Desember 2013

onlinecollegedegreee.blogspot.com Nope. Oxytocin isn't going to become the "trust me" drug.

Nope. Oxytocin isn't going to become the "trust me" drug. S


Oxytocin is often referred to as the "trust hormone," a claim that was reinforced by a 2005 study in which participants became more trusting after it was administered via a nasal spray. Trouble is, few studies have been able to reproduce this result, prompting at least one neuroscientist to suggest it's high-time we stop believing the hype.


The study in question, "Oxytocin increases trust in humans," was conducted by Michael Kosfeld and published in Nature. He wrote: "Here we show that intranasal administration of oxytocin, a neuropeptide that plays a key role in social attachment and affiliation in non-human mammals, causes a substantial increase in trust among humans, thereby greatly increasing the benefits from social interactions."


As part of the experiment, Kosfeld had his participants play the Trust Game — a standard two-player game in which one player takes on the role of an Investor (who is administered the oxytocin [OT]) and the other takes on the role of the Trustee. This experiment produced data showing a correlation — albeit a slight one — between OT and trust, or more accurately, the willingness of an investor to conduct transfers.


But as neuroscientist Mike McCullough points out in the inaugural post of his new blog, Social Science Evolving, follow-up studies have largely failed to reproduce these results. McCullough directs the Evolution & Human Behavior Lab at the University of Miami and is author of Beyond Revenge: The Evolution of Forgiveness.


Specifically, McCullough looked at five post-Kosfeld experiments (you can read his breakdown and analysis of them here). He came up with a scoring system and found that the original Kosfeld results have been succeeded by 1.25 studies' worth of successful replications and 3.75 studies' worth of failures to replicate. He concluded thusly,



With the relevant post-Kosfeld data favoring failures to replicate by 3:1, I think a dispassionate reader is justified in not believing that OT increases trusting behavior–at least not in the context of the trust game. Should we do a few more studies just to make sure? Fine by me, but it seems to me that we, as a field, should have some sort of stop-rule that would tell us when to turn away from this hypothesis entirely–as well, of course, as how much data in support of the hypothesis we would need to justify our acceptance of it. In addition, I'm struck by the fact that no one has ever gotten around to reporting the results of an exact replication of Kosfeld. In light of the Many Labs Projects' recent successes in identifying experimental results that do and do not replicate, I'd personally be content to believe the results of several (five, perhaps?) large-N, coordinated, pre-registered exact replications of the Kosfeld experiment. But until then, or until new data come in that are relevant to this question, I know what I am going to believe.



It's worth noting that McCullough is not debunking oxytocin as a trust hormone per se. All he's saying is that it appears unlikely that you can become more trusting by snorting OT through your nose.


Related: Oxytocin keeps committed men away from attractive women | 10 ways to trick your brain into feeling like you're in love


Image: Picsfive/Shutterstock.


onlinecollegedegreee.blogspot.com Nope. Oxytocin isn't going to become the "trust me" drug.

Jumat, 13 Desember 2013

Take a trip over Titan's massive methane-filled lakes onlinecollegedegreee.blogspot.com

Written By 12; About: Take a trip over Titan's massive methane-filled lakes onlinecollegedegreee.blogspot.com on Jumat, 13 Desember 2013

onlinecollegedegreee.blogspot.com Take a trip over Titan's massive methane-filled lakes

NASA has compiled the most detailed map ever made of Titan's methane-drenched surface, including this unprecedented 3D fly-over video. One of these lakes, Ligeia Mare, contains about 40 times the amount of oil and gas reserves on Earth, prompting some to wonder if we should bring it back to Earth.


Ligeia Mare is about twice the size of Lake Michigan — and it's not even Titan's biggest lake. That distinction goes to Kraken Mare, which is roughly five times as big.


Other than Earth, Titan is the only terrestrial object in the solar system capable of fostering stable liquids on the surface. This methane is essentially liquified natural gas. But as Randy Kirk from the U.S. Geological Survey pointed out to the BBC, "People ask me if you could bring it to Earth, and that's a dumb idea on many levels. But what you might not realize is that there simply wouldn't be enough oxygen here to burn it all."


As for the new map, it was obtained by Cassini's radar instruments from 2004 to 2013. The view, with Titan's north pole at the center, extends down to 50 degrees north latitude.


Take a trip over Titan's massive methane-filled lakes S


More from NASA:



Kraken Mare, Titan's largest sea, is the body in black and blue that sprawls from just below and to the right of the north pole down to the bottom right. Ligeia Mare, Titan's second largest sea, is a nearly heart-shaped body to the left and above the north pole. Punga Mare is just below the north pole.


The area above and to the left of the north pole is dotted with smaller lakes. Lakes in this area are about 30 miles (50 kilometers) across or less.


Most of the bodies of liquid on Titan occur in the northern hemisphere. In fact nearly all the lakes and seas on Titan fall into a box covering about 600 by 1,100 miles (900 by 1,800 kilometers). Only 3 percent of the liquid at Titan falls outside of this area.



[ Image: NASA/JPL-Caltech/ASI/USGS | Source: NASA ]


onlinecollegedegreee.blogspot.com Take a trip over Titan's massive methane-filled lakes

Selasa, 10 Desember 2013

These Avengers and Villains-Style Gowns Are Badass and Gorgeous onlinecollegedegreee.blogspot.com

Written By 12; About: These Avengers and Villains-Style Gowns Are Badass and Gorgeous onlinecollegedegreee.blogspot.com on Selasa, 10 Desember 2013

onlinecollegedegreee.blogspot.com These Avengers and Villains-Style Gowns Are Badass and Gorgeous

These Avengers and Villains-Style Gowns Are Badass and Gorgeous S


I'll take one in every color and two of that sick Loki dress. (Tom Hiddleston comes with, correct?)


You gotta go see them all over at unidentifiedspoon and then let's each say which ones we'd wear and to what occasion. Since these gowns don't actually exist, you can make up the occasion, as well. For instance, I'd wear the Loki one to storm the Fannie Mae offices and pay off my entire loan in sexy glances and high-fives (it would work in that gown) and then afterwards, I'd make out with Hiddleston (IN FULL LOKI GARB) at the Olive Garden in Times Square. Yes, we'd share the same breadstick a la a dirtier Lady and the Tramp.


Your turn!


[h/t The Mary Sue]


onlinecollegedegreee.blogspot.com These Avengers and Villains-Style Gowns Are Badass and Gorgeous

​Almost Human is barely tolerable onlinecollegedegreee.blogspot.com

onlinecollegedegreee.blogspot.com ​Almost Human is barely tolerable

​Almost Human is barely tolerable S


Our two favorite murder-cops are back the beat, this time dealing with The Wacky Witness They Must Protect and The Evil Genius Manipulating Things from a Cell. And somehow, the show is getting stupider.


Let me first admit that I am still furious at the show for last week's debacle where our hero — and to be clear, Almost Human thinks he's a hero — gunned down an unarmed man and neither Kennex nor the show gave any indication what just transpired was morally questionable in the slightest. That said, even if I'd liked last week's episode, I'm pretty sure I would have found "Blood Brothers" idiotic.


Captain Maldonado is testifying at the murder trial of one Ethan Avery, which she's super-passionate about for no apparent reason (as in she can't even control herself when she's testifying, because she hates the man so much). The man is, of course, transparently evil, even moreso when one of the two witnesses — attending via hologram — is gunned down "in front of" the courts and he smiles smugly (directly at Maldonaldo, because he's just as meaninglessly obsessed with her as she is with him).


The other witness is named Maya, and she manages to escape. She is wacky in the sense that she believes she talks to ghosts when she touches thing. This is a gift apparently received after she took part in an experiment called Cerebellex (or something), which is supposed to allow people to use more of their brain. Did you catch that? Almost Human thinks brain surgery is the key to talking to the dead, and that sound you're hearing is the last pretense the show cares about the "science" part of "science fiction" exploding and dying.


Anyways, Maya didn't see who shot the other witness, but the ghost of the now-deceased witness tells Maya it was Avery. Wha?! But he's in jail! How is this even possible? Well, Avery did kill a reproductive doctor, so Mika Kelly suggests cloning, but Maldonado says it can't possibly be cloning because they didn't find any evidence of it, and the police definitely would have (after less than five minutes of light investigating, the police will suddenly find out that that Avery was totally involved in cloning). Also, Rudy bursts in with a vocal recording that matches Avery's, too. No one really notices that the girl who talks to dead people was correct.


Speaking of, the wacky witness needs to be wackier, so she leaves the police station to take a walk despite being in mortal danger. Kennex and Dorian chase after her. They manage to get her in a car just before Avery's clones show up and empty several million rounds into it; Kennex manages to shoot one before they get away (to be fair, at least this guy shot first) and it's... drumroll... Avery. This is the point where Maldonado yells "He's winning!" as if Avery is going to get away with these murders, despite the fact that 1) cloning is illegal, 2) his clones just tried to murder a bunch of cops, and 3) they have plenty of evidence of both, so even if he does somehow get out of the murder charge, there's plenty of shit he's obviously guilty of. Sigh.


Minka Kelly goes to Avery's mothers place, finds evidence of his clonery and his motive for killing the doctor (he was going to expose Avery's clones in a research paper) and manages to stay far away from her robot partner so her capture by the other Averys completely inevitable. The Avery Bunch demands a trade, Avery Prime for Minka Kelly, although they tell the cops they can only bring one car to the exchange, not one person, like every other fictional hostage-taker ever. Here, Almost Human does something clever (because they have a car of people to work with, you see). Maldonado walks Avery down the prison hall, ostensibly for his release, but Rudy projects it outside pf the car, so that she appears to be marching him towards the clones.


Of course, this immediately gets fucked when a bird flies through the hologram, but luckily Minka Kelly manages to free herself and Kennex shoots everybody so the day is murdered saved. Oh, except for one clone, who manages to drive away until Dorian speed-runs after the van, punches it, flips it over, and then it explodes because ALL CRIMINALS NEED TO DIE ALL THE TIME. Hell, it's amazing Avery managed to survive his arrest in the first place.


This recap doesn't account for all the terribleness in "Blood Brothers" — I've detailed some more things below — but seriously, Almost Human is a science fiction show that is now shitting on its science. And once you take out the scifi in Almost Human, all you're left with is one incredibly shitty cop show.


​Almost Human is barely tolerable S


Assorted Musings/Other Horrible Scenes in This Episode:



  • Why the hell do the cops-droid have giant action figure leg joints? Was that Ken doll joke really worth that ridiculous detail which will now be a fact of all the robo-cops? No, it wasn't.

  • Also, why the hell do the cop-droids wear clothes at all? Why don't they build them with armor instead of giving them fake skin and making them put on police uniforms? Ergh.

  • That scene where Avery belittles Maldonaldo for like five minutes and she slinks away without saying a word in defense, thus proving Avery completely right. I was waiting for a defiant response, a snappy line, or even a brusque dismissal so the supposedly not pathetic chief of police would appear to at least have some pride, but nope! She just walks away, sad that men don't notice her.

  • This scene is made infinitely more wretched by the scene at the end, where a man tells Maldonaldo she looks pretty today and she beams like a flower seeing the sun.

  • In the future, the police's safe houses will be lightly guarded with absolutely no outer defenses or surveillance. Good to know.

  • At Avery's mom's house, there was a letter clearly explaining Avery's motive for killing the doctor, as well as scads of evidence about Avery's illegal clones. Meaning in all the time leading up to the murder trial, no one ever bothered to investigate the house or its contents. Jesus, this show is terrible.

  • I found the Dorian's penis scene to be horrible. This might be because of my distaste from last week carrying over, or it might be because the show clearly feels that racial stereotypes are fine as long as they're complimentary. Of course the black robot has a big dick! Why wouldn't he? I look forward to learning the Jewish robots are good with money and the Asian robots are good at math.

  • Holy shit. There's no way Almost Human isn't going to give us an Asian robot that's really good at math, is there?

  • Oh, one more thing: Early in the show, Maya the psychic tells Kennex she has a vision of him watching people running while drinking bourbon. At the end of the episode, Kennex is watching soccer when Minka Kelly sits down with him, bringing a bottle of bourbon with her. Kennex is floored that Maya's vision came true, conveniently forgetting that THE LADY ALREADY CORRECTLY IDENTIFIED A KILLER WITH THE HELP OF A FUCKING GHOST.

  • What the fuck did Avery need the clones for? The show literally never said. Was it even for some evil goal? Did he just need more people to play a decent game of Clue?


onlinecollegedegreee.blogspot.com ​Almost Human is barely tolerable

Jumat, 06 Desember 2013

Fox wants to build the new Fantastic Four with the help of the X-Men onlinecollegedegreee.blogspot.com

Written By 12; About: Fox wants to build the new Fantastic Four with the help of the X-Men onlinecollegedegreee.blogspot.com on Jumat, 06 Desember 2013

onlinecollegedegreee.blogspot.com Fox wants to build the new Fantastic Four with the help of the X-Men

Fox wants to build the new Fantastic Four with the help of the X-Men


Simon Kinberg, who has produced X-Men: First Class, Elysium and is now on X-Men: Days of Future Past, is staying at Fox to set up the Fantastic Four franchise and set-up Fox's version of the Marvel movie-verse. This is good news.


THR is reporting that Kinberg just re-upped his three-year contract which will allow him to expand both the X-Men franchises and the Fantastic Four franchises into something even bigger "with the hope of creating for Fox something akin to the Marvel model of interlocking movies." We would argue that after Marvel, Fox is really the only other studio with any sort of established comic continuity; we're still pretty invested in the X-Men, and yeah, that includes the less lovable mutant movie The Last Stand, so it'll be to have the rebooted Fantastic Four franchise brought into it. And we're equally excited to see the producer and screenwriter for First Class is going to be overseeing these movies.


onlinecollegedegreee.blogspot.com Fox wants to build the new Fantastic Four with the help of the X-Men

Rabu, 04 Desember 2013

What a Habitable Planet Twice the Size of Earth Would Be Like onlinecollegedegreee.blogspot.com

Written By 12; About: What a Habitable Planet Twice the Size of Earth Would Be Like onlinecollegedegreee.blogspot.com on Rabu, 04 Desember 2013

onlinecollegedegreee.blogspot.com What a Habitable Planet Twice the Size of Earth Would Be Like

What a Habitable Planet Twice the Size of Earth Would Be Like S


To date, astronomers have catalogued over 1,000 exoplanets — some of them rocky and parked within their host star's habitable zone. But a good portion of these planets are bigger than Earth, prompting us to ask: What would it actually be like on a habitable planet twice the size of ours?


Structure


A first complication: "twice as large" is not the same thing as double the mass. A double-mass Earth is relatively simple to analyze, but if we stipulate that the radius is twice as big, then it depends on what it is made of.


What a Habitable Planet Twice the Size of Earth Would Be Like S


Note that if the component rock contributes water as on Earth, a planet with 15 times the mass but only 4 times the area will have a 3.75 times deeper hydrosphere, assuming everything equal. That means 16 km deep oceans - "Dry" might still be a waterworld.


A lot hinges on whether we assume Double-Earth started out beyond the ice-line of the solar system and moved inwards, in which case it will be really wet, or started out close to the sun and never got much volatiles. In the first case, "Wet Double-Earth," the mass will be about 3 Earths and the average density 37% of Earth, with a surface gravity of 0.73 g and an escape velocity of 13.6 km/s. This will have an ocean hundreds of kilometres deep, surrounding a rocky core covered with high pressure warm ices. In the second case, "Dry Double-Earth," the mass will be 15 Earths, the density will be 167%, gravity 3.4 g and escape velocity 30 km/s. (I used the model of Sotin et al. in Sotin, C., Grasset, O., Mocquet, A. 2007. Mass-radius curve for extrasolar Earth-like planets and ocean planets. Icarus191, 337-351.)


How large is the core of Wet? Assuming it to be Earth density (5520 kg/m^3) and surrounded by water (1000 kg/m^3), I get a core 1.22 times the radius of Earth (7,772 km), surrounded by 0.78 Earth radii of water (4,969 km). This is of course just a first approximation, since there is a high pressure ice crust that begins when pressures go above 1 GPa. A bit more calculation gives me an estimate o a 6,060 km core (0.95 Earth) with an ice VI/VII crust out to 12,600 km (1.97 Earths), leaving "just" a 160 km deep ocean. If the deep ocean is colder the depth might be just 104 km.


Atmosphere


Now we need to make some guesses at atmosphere and temperatures. The basic temperature for a greybody with Earth-like albedo at this orbital distance (1 AU around a sun-like star) is 250 K, if we add the 36 K greenhouse correction of Earth this becomes 13 degrees C average.


What a Habitable Planet Twice the Size of Earth Would Be Like S


There is another equilibrium similar to "snowball Earth" where the entire surface is cold and glacial (and ocean worlds can of course get completely iced over), reflecting away energy efficiently. For albedo 0.8 we end up with an temperature of -15 C. Of course, the vast oceans will in any case stay liquid, especially since the freezing point of water decreases beyond a few megaPascals of pressure.


In the wet case the scale height is 11.3 km — air pressure will be 36% less at this altitude. The temperature needed for a molecular species to escape is 1.49 times that on Earth: in this case hydrogen certainly escapes and I think helium will escape (it depends on the exosphere temperature, something that is hard to calculate). Methane and ammonia could be retained, but if there is life and oxygen they will have been turned into carbon dioxide and nitrogen.


In the dry case scale height is 2.4 km: clouds will be squat and close to the ground. The retention temperature is 7.5 times Earth — Dry could potentially retain hydrogen gas. This means that potentially it could have gathered a much denser atmosphere from the beginning, potentially turning into a gas giant. Note however that by assumption we had it form in the "dry" zone near the star, so it might not have accumulated that much. We should still expect it to have a denser atmosphere than the wet case.


If we make the assumption that the surface pressure is proportional to surface gravity (might make sense in this particular case), Wet has surface pressure 0.73 and Dry surface pressure 3.4 atmospheres.


In this case Wet gets air density 0.9 Earths. Quite manageable for humans.


Let's also assume the mean wind speed is a terrestrial 10 m/s - again, this is hard to evaluate without running a full circulation model. Finally, most doubtfully, let's assume the rotation period is 24 hours. The radiative timescale of 18 days and advection timescale of 14 days — this means that the weather is complex like on Earth, and responds rather quickly to seasons (ah, I implicitly assumed an Earth-like axial tilt: things will get really strange if it is more extreme). Wet will have about 9-10 jet-streams (Earth has about 7). Dry instead has surface air density is 4.3 times Earth, fast timescales and 10 jet streams. Not too alien.


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Weather is partially driven by buoyancy. On Wet this is weaker: clouds will be taller and move more ponderously, while on Dry the higher gravity will make small density differences generate more force: flatter, more intense convection.


Coriolis forces are twice as powerful, so there is a higher tendency for zonal rather than meridional winds: more east-west flow than north-south than on Earth.


A rain cloud will have an amount of water roughly proportional to its height and the atmospheric density: both Wet and Dry will have more rain from a typical raincloud than on Earth (about 30-40%, assuming my assumptions work), with Wet slightly wetter — the lower air density is compensated by a much higher scale height. In practice this will depend on more complex aspects of the atmosphere (lapse rates and similar stuff).


Hail on Wet may be truly nasty, since it has plenty of distance to form. The radius likely scales proportionally to the scale height, making the mass of large hailstones up to 3.5 times larger — the fact that they just weigh just 2.6 times more thanks to the lower gravity is not enough. Terminal falling velocity scales as sqrt (gravity/density), so the velocity of a hailstone will be just 90% of terrestrial terminal velocity of a same sized stone. On Dry it is 89% thanks to the thicker air. But this is not enough: the kinetic energy will be about three times larger. Ouch.


The strength of hurricanes depends on the temperature difference between the ocean and the stratosphere; I do not know how to calculate this simply. I note that in the absence of land they can run much longer before drifting too far towards the poles that they dissipate. If the zonal winds are strong enough hurricanes may even become semi-permanent like the red spot on Jupiter, but I suspect there is enough meridional winds to prevent this.


I am also a bit uncertain about whether latitudinal mixing is strong enough to keep the poles too warm to form ice sheets or not. I suspect the lack of land and the presence of a huge ocean thermal capacity will reduce ice formation.


If we assume 20% oxygen, then Dry will have 537 mmHg partial pressure oxygen - toxic to humans. Even worse, the partial pressure of CO2 will be 10.4 mmHg — causing hypercapnia in humans. Still, local life could likely evolve to handle that with little problem. Wet atmosphere looks pretty okay for humans.


The optical depth of the atmospheres on the Double-Earths will be the same as on Earth (because of my assumption of pressure = surface gravity), so you can see the same distance. The vertical optical depth is 1.37 times more than Earth on Wet: the sky is more milky, but not too alien. On Dry it is just 1.1: almost normal. If you were to fly a plane, it would however turn dark blue at a much lower altitude.


Geosphere


The radiogenic heating (assuming an Earth-like composition) of Dry is 3.34 times higher than on Earth, 0.29 W/m^2. Still not enough to melt the crust into an Io-like volcanic mess, but it is far more active - the crust is just 3 kilometers thick. Underwater volcanos are common, and there will be plentiful hydrothermal vents. The higher strength of buoyancy makes volcanism-induced convection more powerful: the deep ocean will be churned far more than Earth's deep ocean by geothermal heat.


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If Dry had a sufficiently eccentric orbit (or a heavy companion) to give it extra tidal heating volcanism might be fierce enough to create an Io-like state of semi-molten crust. At this point it would likely become very different: the churning oceans would accumulate significant amounts of minerals, including lots of sulphur. A world with sulphuric acid oceans might be the result. Life might still be possible, but it would likely have to be based on more robust biochemistry. However, acid-Dry would also have to deal with plentiful carbon dioxide emissions that make the greenhouse effect stronger. Adjusting parameters to keep it in the life zone (if it is even possible) would be a bit of work. [Thanks to Andrew Snyder-Beattie for this fun possibility]


Wet has slightly less radiogenic heating than Earth (just 95%). This is still enough for continental drift (hence churning the deep ice crust). However, that direct churning is unlikely continue out to the ice surface. The energy flow at the ice surface is just 0.02 W/m^2 - not enough to drive continental drift on a rock planet, but maybe enough for some ice dynamics.


Rock mountains on Wet will tend to be 5% taller than on Earth, but they will all be on the bottom of the super-deep ocean and under an ice crust. On Dry they will be just 29% the height of Earth mountains - the local Mount Everest will be just 2.4 km. Given my guess at mean ocean depths, this means that it will indeed be a waterworld.


If one buys the idea that Coriolis-Lorenz dynamos in the core scales as sqrt (density/period) the magnetic field of Wet will be 100% of Earths, while Dry 130% - not an enormous difference.


Hydrosphere


On the oceans, waves would be moving differently. On Wet they would move at 85% of Earth speed, while on Dry 184%. The height would of course scale inversely with gravity: 136% on Wet, but just 29% on Dry. So the seas would be choppier but slower in the wet case (but the waves will have more energy per square meter), while the dry case would have fast low swells.


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Light would penetrate the water just like on Earth on both worlds, with a lit zone about 200 meters deep where photosynthesis could work.


The extensive hydrospheres would tend to act as massive thermal buffers, resisting temperature changes due to day/night cycles and seasons.


Ocean currents are powered by trade winds: as the air convects around the equator and is deflected by the Coriolis effect into trade winds, some of the wind energy is transmitted to the water. This produces currents like in the central pacific: a northern and southern equatorial current flowing westwards, and between them a east-flowing counter-current. Further north there might be circular gyres, or perhaps other east-west current bands. If the currents are mainly east-west the temperature difference between equator and poles will be larger, driving a deep convection where colder water descends in the polar areas and ascends near the equator. Away from the equator there will also be deep Ekman currents down to about 100 meters, creating a more complex circulation.


The oceans will tend to be stratified, since less dense warm water overlies denser colder deep water (even the volcanic Dry has much less heat flux from beneath than from above). Some surface layer convection driven by winds and evaporation-driven salinity differences will occur, but deeper layers stay where they are. Polar water may go all the way down, at least on Dry. But there are no undersea mountains mixing layers or places where deep currents are forced up by continents. There will be some upwelling in the Intertropical Convergence Zone along the equator, which at least on Dry might be the main source of nutrient rich deep water. On Wet the ocean is so deep that the wind-driven forcing will not penetrate very far, and the upwelling will be less useful.


Volcanism might be the main factor causing upwellings of mineral-rich really deep water: even a mild temperature difference is enough to send up a thermal plume. Note that plumes ascending from very deep will be affected by Coriolis forces. This already happens on Earth, but on Wet the effect would be far stronger since they travel an appreciable fraction of the planetary radius. As they move upwards they are deflected westwards, and acquire spin if they are away from the equator.


In general, the oceans will be less salty than on Earth since there are no continents to be leached by pure rain - the only salts dissolved will come from volcanism and slow equilibration with exposed crust. Wet will be particularly fresh - there is no direct water contact with the crust, and the total water volume is many times larger than on Dry.


Biosphere


Both Dry and Wet could have a surface biosphere functioning like an open sea biosphere on Earth. Photosynthesis among algae would be the foundation of the nutrient web, with various forms of plankton and larger organisms harvesting them and each other. Like on Earth, most biomass would be in the lit surface layer with more scarce detritivores and predators lurking in the depths.


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Image: Don Dixon/cosmographica.com.

Just like in terrestrial oceans there is no real size limit to organisms due to gravity, just ecological limits (large animals need more food and take longer to mature, so at some point they hit diminishing returns of food-gathering capacity and survival probability to reproduction). Vertical surface plants (for example growing of rafts of organic matter, or shoots sent up by floating plants) will be much a third shorter on Dry than on Earth due to gravity considerations.


The bottom region can have hydrothermal vent ecologies like on Earth. On Wet hot water needs to penetrate a thick ice crust, making their exact structure (or possibility) dependent on issues of how hot high pressure ice behaves - I do not have a real clue here. An intriguing possibility might be counterparts to earthly lithoautotrophs living inside fissures in the ice crust. On Dry things are fairly terrestrial.


Note that there is no real need for oxygen to maintain this kind of ecosystems: on Earth they exploit available oxygen, but with enough volcanic chemical flow you can sustain life in other ways. For example terrestrial anammox bacteria turn ammonia into nitrogen using nitrites instead of oxygen, Thiobacillus denitrificans turn sulphur into sulphates using nitrates, hydrogen bacteria turn hydrogen into water using sulphates, phosphite bacteria convert phosphite into phosphate using sulphate, metanogens turn hydrogen into water using carbon dioxide, and the carboxydotropic bacteria convert carbon monoxide into carbon dioxide while turning water into hydrogen.


The lack of salts on Wet is going to be a major problem for local life. Assuming Earth-style life most of it is going to be built out of CHON, but it needs to pick up other elements for special purpose enzymes and molecules. Most likely it will employ structures that catch the rare heavier atoms needed, like terrestrial siderophores. Cells will also have an osmosis problem: if their concentration of solutes is higher than seawater (useful in order to keep reaction rates up) water molecules will seep in, threatening the cells with bursting. They need to continually pump out water to maintain stability (at an energy cost), very much like freshwater organisms. Osmoconformers that maintain the same concentration as on the outside will have largish cells with slow reaction rates.


While the surface will be four times Earth's on both Double-Earths, it will be well mixed so that there will be fewer species. Dry at the very least can run two near-independent ecosystem layers plus some stuff in-between. Intelligence evolution... well, who knows.


Summary


Both Double-Earths are waterworlds, but one is deep. Neither has any land. Both might have interesting deep sea vent ecologies, the wet case around vents in the high pressure ice and the dry case more terrestrial-style vents. Wet might turn stagnant in the depths relatively quickly, though. On the surface the ocean has weather like on Earth, either strangely tall or fiercely squat clouds. Life could probably thrive on both worlds, but would be limited by minerals: no land, no surface weathering, and hence less minerals added to the oceans. Getting into space from Wet is about as tough as on Earth, while Dry is pretty hard to get away from.


Thanks to Kelly Anderson for initiating the discussion and Tomaz Kristan for a comment.


This article originally appeared at Andart and is republished here with permission.


All images: NASA.


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