Showing posts with label linkstorm. Show all posts
Showing posts with label linkstorm. Show all posts

Saturday, October 24, 2015

Linkstorm

This is just a long list of interesting things around the internet I've run into. Enjoy.




A great explanation of how objects orbit each other, rather than one orbiting another


An visually amazing video envisioning a future human presence in space, along with commentary



Here is a video showing bee development in great detail from NatGeo. (Warning, bugs)



This guy decided to make a working version of Thor's HammerMjölnir that you can only pick up if you're worthy.



The cutest little self-folding origami robot



A parody of "Space Oddity" using only the ten hundred most common words. (Like this webcomic)



Clickbait! Men's fashion from the 70's you "won't be able to unsee."



Where does fortune telling cross into harmful territory? This article talks about one case that absolutely does



Why every state flag is wrong. Just wrong



One of the coolest sinks I've ever seen



The relationship between humans and machines, through chess.



Here is what the ARES III mission site from the book and now movie "The Martian" actually looks like.



The making of the worlds most complicated watch



This is the best video I've seen of an exoplanet orbiting a star.



An interesting Star Wars fan theory



An interesting take on the crossword puzzle, no clues





Cheers,

      - Scott



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Wednesday, September 30, 2015

What Would Happen If the Sun Disappeared?

This question has been answered all over the internet, and the short version that is often given is "everyone dies." This is true. This is also just the tip of the iceberg. Lots of things happen and most don't involve humans. For the things that happen to humans, here are a few good articles:

Pros:
XKCD, Sunless Earth

Cons:
PopSci,  If the Sun Went Out, How Long Would Life On Earth Survive?

After the sun went out, a few things would happen quite quickly. Due to the speed of light, at the moment when the sun went out, we would still see its light for 8 minutes and 20 seconds, or long enough to listen to "It's the End of the World as we Know It" by R.E.M. about twice. Because gravity travels at the speed of light, we would stay in our orbit for the same 8:20 until we started moving in a straight line tangent to that orbit into space.


Fig.1

<sidenote>
If you were in the U.S. on the night side of Earth when this happened, you wouldn't feel much of a change in the motion of the Earth, or a drop in temperature, so there is roughly a 40% chance that you would first hear about the sun going out on either Facebook or Twitter. </sidenote>

Shortly after the sun's disappearance, the human world descends into existential chaos, and for excellent reason; we're not long for this universe. If you had previously come to terms with your demise, and the recent change in timescale didn't bother you too much, you could get out a pair of binoculars or a  telescope and point it at Jupiter or Saturn for a once-in-a-lifetime view. The sun has gone out, but light from the newly non-existent sun is still illuminating these planets, and if you watched them carefully, you could watch them blink out, reflecting the last of the sun's light, and be the last human to ever see them (Fig. 2).


Image: NASA

Fig. 2

When I initially thought about this, I suspected that you would get lovely vistas in cities with the Milky Way sprawled out over the sky, but this is only partially true, and only for the day-lit side of the earth. Light pollution wouldn't just go away; many lights in the cities are on all day, and many more are activated by a light sensor and would turn on immediately, and others would soon be manually activated. So much for that silver lining...


Image: savmonks

Fig. 3

How would the humans fare? Humans are plucky and rather fond of surviving (Fig. 3), so there are a few schemes that could prolong our existence for a while (before problems develop), but in a few hundred years (wild guess) we'd probably all be gone. Without plants undergoing photosynthesis, the food chain collapses and there is no longer any energy input to the ecosystem. Without life replenishing oxygen, the Earth loses oxygen on the timescale of thousands of years. The Earth eventually becomes cold enough that the nitrogen in the atmosphere condenses onto the surface and eventually freezes into solid nitrogen. That seems like the end of the story, but there's more.

On the Earth's surface, the main source of energy is the Sun, but within the planet itself is where the real heat lies. When the Earth formed, it gravitationally collected material, differentiated, and to this day, there is still radioactive material heating the interior of the Earth. This internal source of energy is available to a select few creatures that live near the sea floor, near hydrothermal vents.

These entire ecosystems would lose two sources of nutrients: marine snow, and whale falls (just what it sounds like), but retain the third, chemosynthesis. These ecosystems would probably be able to limp along, form a new equilibrium, and stick around for millions, maybe billions of years as the Earth went aimlessly drifting through space, carrying its living cargo.

Right then was where I was going to stop, but I then thought about where the Earth may drift off to. Depending on when the sun disappeared, and where the Earth was in its orbit, the Earth could potentially end up anywhere along the plane of its orbit. I downloaded a copy of the free-to-use Stellarium and learned how to use it to answer this question of where the Earth may end up after drifting through space.

To find objects that the Earth may run into, in Stellarium, I placed myself on the equator, on the equinox, and looked directly East or West. This particular East-West line puts the me tangent to the Earth's orbit, so anything appearing along this line is a potential target.

Let's start with a few of the closest objects Earth could potentially encounter.*

Among the closest was a star in the constellation Aquarius (below). This struck me because if Earth is captured in a tight, stable orbit around this pair of stars, we could become an arid planet with 2 suns, just like Tatooine, from Star Wars. This star system is about 100 light years away, and would take about a million years to get to.


Image: Stellarium



If we want some company, there are a few exoplanets that are relatively nearby that we could go visit. This one is a "Hot Jupiter," or a large planet very close to its star. it's about 100 light years away, and we could reach it in just over a million years. We honestly would probably want to leave this one alone. (Sidenote: It was one of the first extrasolar planets discovered)


Image: Stellarium



A more homey planetary system we could visit is is HD 164509b. I've heard it's lovely there; it's a Sun(ish) star being orbited by a Venus(ish) planet. We'd fit right in. It would take us about 1.7 million years to get to this planet 169 light years away.


Image: Stellarium



Here's where things get interesting. In 9 million years, we could potentially reach a Reflection Nebula known as Messier 78 (900 light years away). This nebula is quite lovely and would make a great backdrop for our floating tomb:


Image: ESO/APEX (MPIfR/ESO/OSO)/T. Stanke et al./Igor Chekalin/Digitized Sky Survey 2



My personal favorite part of the sun disappearing is that there is a tiny chance we will be heading straight for this:

Image: ESO

Two beautiful spiral galaxies about to collide with each other. These galaxies are going to spend the next few billion years passing through one another and eventually forming an elliptical galaxy. The downside, however, is pretty insurmountable. Due to their extraordinary distance, and our meandering pace, we couldn't possibly get to them in time to observe this interaction. In fact, it would take us over 3 trillion years, or 220 times the age of the universe to get there. By then these galaxies may not even exist, let alone be in the same spot.

Here's the upshot: if we left our galaxy right now, and started to travel, we would be able to see Andromeda colliding with the Milky Way from pretty close by, (about 20 galactic radii). That view might just make the whole thing worth it...

...if we could possibly survive. The only things that could survive would be in the ocean under miles of ice, but in a few billion years, maybe some intelligent life will evolve and make a foray out beyond the ice to see this great collision unfold.

Super-intelligent Trout



Cheers,

    - Scott


*Due to the fact that the objects I chose were within a half a degree of tangent means that there is a vanishingly small chance that the Earth would even get within a light year of the nearest one, but it's fun to think about nonetheless.






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Friday, May 22, 2015

Have We Found Planets Using Math?

Planets Found by Math


Urbain Le Verrier

Ancient peoples have always known about Mercury, Venus, Mars, Jupiter and Saturn because you can easily see them with you eyes. The discovery of Uranus was the first time a planet was found that needed the aid of a telescope to be see. William Herschel discovered this planet in 1781.

In the next century, another planet was discovered, and this one was discovered in a very interesting way. The credit for finding planets is usually thought to go to the first person to point their telescope at it, but this case is a little different. In the 1845, Urbain Le Verrier looked very closely at the orbit of Uranus, and discovered it to be slightly off from what was known from Kepler about planetary motion. Soon after, he had a hypothesis that another planet beyond the orbit of Uranus could account for the perturbations in the orbit he observed. Le Verrier contacted Johann Gottfried Galle at the Berlin Observatory and told him to point his telescope at a particular location at a particular time to look for this eighth planet.


Johann Gottfried Galle
Sure enough, when Galle peered through the telescope lens on September 23rd in 1846, there sat Neptune, 1° away from Le Varrier's predicted position. Interestingly, the director of the Cambridge observatory, James Challis, later realized he too had seen Neptune on two separate occasions before that, but failed to recognize it as a planet.


This, however, was not the only planet found by math. Later on, small perturbations were noticed in the orbit of the planet Mercury, again by Le Verrier. A small planet was hypothesized, this time inside the orbit of mercury, too close to the sun to see. This theorized planet was given a name – Vulcan.

Yes, the one and same, though the hypothesized planet came before the Star Trek series by more than a century (and was the Roman god of fire, volcanoes, and metalworking well before that). This planet does not actually exist. We have since sent spacecraft close enough to the sun to see any potential Vulcanoids, and to date have found none. So what of the perturbations of the Mercurial orbit? The answer is relativity. Because Mercury is so deep in the sun's gravity well, it experiences relativistic affects, and this accounts perfectly for the precession observed in its orbit.



Image: Terry Virts

LLAP



Cheers,

    - Scott





LINKSTORM:





Videos of space physics. Things behave differently in freefall.

Monday, May 11, 2015

What Can We Learn From Twinkling Starlight?

When you look up at the night sky, the stars twinkle. This is interesting, but not what I am talking about today. If you are curious why the stars twinkle from here on Earth check out this video:




There ya go. Now, the 'twinkling starlight' I'll be mainly talking about is related to exoplanets, or planets orbiting stars other than our own. If you look carefully at stars from outside our atmosphere, or correct for atmospheric effects, the stars still twinkle, but for what I think is a much more interesting reason.

Do you want to know something interesting about starlight?

Great!

For the longest time, it was thought that our planet and our solar system were pretty unique. Aristotle laid down the thinking about many topics including astronomy for many centuries, and as it turns out he was wrong about a fair bit of it. While understandable for his time, by the 1600's, times were changing. In the early 1600's Galileo looked up at the moon with a telescope he made (didn't invent) and observed the moon's terminator, the area where light met dark. In the shadows he saw craters, bumps, and ridges; the moon wasn't a perfect celestial orb, it was its own world with its own unique features. Couple that with his discovery of moons orbiting Jupiter, and we were on our way to discovering other worlds, inferred from points of light.

*IC6.G1333.610s, Houghton Library, Harvard University

Both the cratering of the moon and the motion of the Jovian
moons were published by Galileo in 1610 in this pamphlet.


We have now sent spacecraft to nearly all of the thirty or so largest bodies in the solar system. With missions visiting the asteroids Vesta and Ceres, and the upcoming mission to Pluto, New Horizons, our curiosities about other worlds just took steps much farther afield.

Just as we could see other worlds in our own solar system, we can now look for worlds orbiting other stars using several methods of analyzing flickering starlight from their home star. With few exceptions, we cannot just take pictures of the planets because their star outshines them by many orders of magnitude, what we can see it the influence they have on their star.

Transit method -



One way to detect exoplanets is too find a planet that passes directly between its home star and us here on earth. A bit like a solar eclipse. When this happens, the planet blocks a little bit of the light, and the star dims. We can track the stars brightness and if it dims consistently and periodically we can tell that there is probably a planet orbiting that star. Here is what one of these dips looks like:



The transit method is currently by far the most common way to detect exoplanets, but it has its drawbacks. Due to the fact that the planet has to pass between the star it is orbiting and the observer here on earth, it biased toward planets that orbit "edge - on" to us here on earth. Imagine flipping a coin, and taking a picture when the coin is exactly edge-on. Most of the pictures are going to show at least some of either the heads side or the tails side. This is roughly the same probability as a particular star system appearing exactly edge on to ours so the planet passes in front of the sun.

This method tends to be biased in finding large planets orbiting close to their stars. The larger and closer to its star that a planet is, the more likely it is to cross in front of the star and dim the light we see. These planets are known as "hot Jupiter" because they tend to be larger than Jupiter and closer to their star than Mercury is to our sun. This flies in the face of how we think planets developed, suggesting that hot Jupiters are quite rare. If this is the case, there could many, many more planets out there than we can currently find using this method.

It is important to note at this point that we cannot see the outline of the planet in front of the star. The only thing we can detect from here on earth is the slight dimming from a distant point of light.


Other Methods


Two more ways I'll briefly touch on on the radial velocity method and something called astrometry.

To describe the radial velocity method I first have to talk about the Doppler effect.

<sidenote>
I always thought "Christain Doppler and the Effects" would make a great band name
</sidenote>

There are plenty of great video about how this works, so I'll only go into it very briefly here. When a noise-making object approaches you, the sound waves "stack up" and compress on their way to your ears. This registers as a higher pitch. When the noise-making object moves away from you the sound waves "stretch out" and you register this as a lower pitch. This is why cars passing you make the characteristic "weeeee-yahhhhhh" sound.
The same goes for light. When an object is moving toward you, you register the compression of the waves as a "blueshift," the object literally looks a bit bluer. When the object travels away, the light looks redder, a "redshift."

TL;DR: Stars look bluer moving toward you, redder when they're moving away.

Alright, on to radial velocity. A large planet orbiting a star will cause the star to wobble a little bit, as seen below:




This is because the planet gravitationally tugs on the star, just as the star tugs on the planet. Notice how the star moves up and down. If we look at this star from earth, we can see it getting redder and bluer as it travels farther and closer to us, and from that, infer the presence of a planet by looking at the rate of the wobble.

On to Astrometry!

If you imagine looking at the system above from earth just as it is portrayed, you would see the star travelling in a little circle. If you look at both the foreground star as well as background objects, you can see the motion of the star and from that find out characteristics of the planet orbiting it.


This topic is difficult to convey through writing alone, so if you're interested check out YouTube for some great videos about exoplanets and exoplanet detection. Here are a few of my favorites:







Overall, it is truly amazing what we can discover merely by looking at twinkling starlight.


Cheers,

   - Scott



LINKSTORM:

IS THIS REAL LIFE?

An astronomy mystery solved - why the sun's corona is so hot

Leonardo Da Vinci's Resume

New from Tesla!

Ice cream in space

The Mythbuster's dummy Buster goes to space (not space, but at least... up)!




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Tuesday, April 21, 2015

Relevancy of Relativity

This week, rather than posting a piece written specifically for this blog, I am going to go green and recycle. Hopefully the topic is interesting, although it does not perfectly match the format of what I have been posting. I'll be back next week with content written just for you.


This is a paper I wrote to the prompt "Is Einstein's Theory of Relativity relevant in today's culture?"


This is what I wrote:


Einstein's famous theories of special and general relativity live on in our modern culture beyond academia and the fact that “E=mc2” is a wonderfully elegant equation. Technologically, they account for the accuracy of GPS, keep the ISS on time, and relativistic effects between Earth and Mercury was discovered to be the slight perturbation in its orbit, rather than the delightfully mysterious “planet Vulcan” at Earth's L3 point. At least the latter lives on in Star Trek.

While people count on GPS, many don't care what time it is on the ISS, or spend time thinking about what is lurking on the other side of the sun, messing up the Mercurial procession. If you ask (pester?) your friends about relativity, as I have recently done, they will generally have the name Einstein come out of a holster, then mumble something about the speed of light, and maybe even mutter something about time moving slower. The science-y ones may know the name “Lorenz” has something to do with all of it. This is a bit of a shame, because since the early 20th century there has been a profound change in many part of the scientific community that had led to many breakthroughs, and it all involved leaving your common sense and intuition at the door. Relativity is a large part of this new phenomenon.

Special relativity posits that as you speed up, you shrink down relative the person who stayed still. It also posits that things don't happen at the same time at different speeds, that time moves slower when you speed up and general relativity posits that being in a gravity well changes everything you thought was real as well.

None of this is at all intuitive. Abandoning intuition is an extremely valuable trait among scientists, and can be useful in everyday life. It allowed nearly every great advancement of human scientific thinking. Thinking that there exists an invisible army of creatures living inside you is preposterous enough as to be worried for whomever suggested it, yet it's true. The idea that the earth is hurtling through space at many kilometers per second is immediately dismissed by the evidence that we don't feel it, yet it's true. Opening oneself up to these strange ideas had proven beneficial in the past, and retains its place today.

Relativity is an excellent tool to train yourself to mistrust intuition. Learning about how a 10 meter ladder can fit in an 8 meter barn with both doors closed forces you to rethink the intuitive answer. There are other areas in which this is an invaluable tool. If a loved one faces a difficult medical choice between invasive surgery or an alternative remedy, one's intuition screams to avoid surgery where it may be the only effective option. If vaccinating your children sounds like child abuse to you, abandoning intuition may indeed help your child live longer.

These examples are not direct effects of relativity in modern culture, and the truth of the matter is that few people are interested in what they think of as Einstein's century-old dusty theories and equations. Many people are much more concerned about if they need a second mortgage, or if they need to take away their teenagers keys after a speeding ticket, even if it means shutting them to their high school. Even so, those who have spent some time with their brain in the kitchen mixer of scientific theory and inquiry can influence those around us. Family members asking for advice or friends facing tough decisions can really benefit from a bought of critical thinking and cognitive dissonance. Science is much more than math, equations, and physicists talking about Star Trek's holodeck or Alcubierre's warp drive in a faculty cafeteria, it is a way to move through life, evaluating the best course of action and persuading others to do the same, a way to avoid fooling yourself, or allowing others to fool you.

Einstein’s relativity has a knack for kick-starting this train of thought with just a small initial investment of research required, or a friend willing to talk about it.


Cheers,

  - Scott



LINKSTORM:











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Monday, April 13, 2015

Random Facts


In my research for this blog as well as my own musings and curiosity, I run across some little factoids that aren't substantive enough to make a post all on their own, so I'll talk about a few of those here.


Faster Than Light Poke

I was thinking about the idea that "information can not travel faster than the speed of light," and I thought I was quite clever when I came up with a way to do it, theoretically at least. I imagined a wooden pole, say one light-year long. If you wanted to transmit information across a light year, it would take at least 1 year to send a radio signal. That's where my pole came in. If one person 'poked' in Morse code then the person one light year away would be able to receive that information immediately. I thought I had cracked it, information traveling faster than light.

It turns out I made an incorrect assumption however. I assumed the pole would all move as one, as with a broom. Poke someone with a broom and they feel it immediately. This is not so with exceptionally large brooms (nor is it with small ones, but the delay is so short it is all but immediate).

There is a 'speed of poke' or a 'poke wave' in the broom. The speed of poke turns out to be the speed of sound through that medium. Your poke would travel at about 3500 meters / second if your pole was made of wood, brass, or concrete. This is far less than the speed of light. It turns out it's about how fast GPS satellites orbit the Earth. The 'poke wave' (I love that phrase) comes about because when you move the pole, individual atoms in the pole have to move to alert their neighbors that they’re moving. Each atom must push its neighbor which must in turn push its neighbor and this is how the poke is transmitted through the object. So no faster than light pokes, science won this round.




Helicopter Speed Limit

It turns out that most helicopters have a speed limit imposed not by the FAA or the maker of the helicopter, but by physics. On helicopter, there is a “retreating blade” (#1, left side) and a “retreating blade” (#2, right side) due to the direction of the blades' rotation.


Image: AVStop.com


When the helicopter is flying, the advancing blade is traveling at the speed of the helicopter PLUS the speed of the rotor. The retreating blade is traveling at the speed of the rotor MINUS the speed of the helicopter. This creates something called "dissymmetry of lift." Because one blade has a higher airspeed than the other one, the central hub of the helicopter changes whats called the angle of attack on the retreating blade, giving it more lift.



The increased angle of attack compensates for the slower air speed or the retreating blade. This only works up to a point. If the retreating blade requires more lift than can be compensated for by altering the angle of attack, the helicopter pitches back and slows itself down. This gives most helicopters a physics-induced speed limit.

Image: SPC Glenn Anderson

Most helicopters



Melting Ice and Boiling Water

It is really hard to get water to change temperature. This is because of a property called specific heat capacity that I wont get into much here. Suffice it to say that it requires a whole lot of energy. But the true champion of temperature stubbornness is ice. Ice takes more energy to change by a few degrees than water takes to change by dozens of degrees.

The experiment:
Put two glasses in the microwave for about two minutes. Fill one with water and one with ice and start your microwave. Go do it, it only takes two minutes, and your dishes are still clean afterword. As it turns out the glass filled with water will boil before most of the ice has even melted. This means the water changed temperature from around 70°F to 212°F, or 142°F verses the ice which changed from the temperature in my freezer, 15°F to about 32°F, a change of 17°F. Both the ice and the water absorbed the same amount of energy from the microwave.

The way a microwave works is by creating a standing wave that oscillates about 2.5 billion times per second. This means a charged molecule like water...



...will act like a magnet and try to align itself to the current direction of the field, and this effort causes it to vibrate at about 2.5 billion times per second, increasing thermal energy, heating the water up.

Red is slightly negative and blue is slightly positive

The reason ice doesn't play along and do the same is because it's molecules are in a solid crystal arrangement:

Image: Danski14



In order to align with the field, the molecules must be free to rotate, and in a solid crystal structure, the molecules must break their bonds before they can vibrate and increase the thermal energy. This takes a lot of energy and happens very slowly, which is why the ice takes so long to change temperature and melt.

Bonus fact: When writing this I thought to myself “because fat molecules are non-polar they should heat up less in a microwave.” I tried the experiment, and I heated up identical volumes of water and vegetable oil for one minute, and sure enough, the water changed by 61°C and the oil changed by only 32°C. Science wins another round.




Falling Out of Orbit

When something in orbit loses power or is disabled in some dramatic fashion, often it is portrayed to "fall out of orbit." Almost every science fiction franchise is guilty of portraying this. Even if the writers know the physics, portraying something falling out out of orbit is climactic, while reality in this case is rather underwhelming.

Orbits themselves are often misunderstood. Getting into orbit is not about going up quite as much as it is about going sideways. Space is only 100 km away, so getting there is easy. Staying there takes some work. As you can see in this amazing video (click it) a US space shuttle launch doesn't go straight up, but turns at a steep angle a few seconds into it's flight. By the end of the main fuel tanks' supply, the shuttle will be going about 7.8 kilometers per second sideways and it will not be be changing height at all.

If the shuttle were to get shot down by aliens or lose power, it would not dramatically fall back to Earth but simply stay in orbit. The only way to get out of orbit is to change your velocity dramatically so you're going slower relative to the Earth's surface. In order to change your velocity in orbit you have to take some of your mass and accelerate it away from you. This is all rocket engines do; the fuel is the mass, and they accelerate it by igniting it and directing the outflowing material opposite the direction you want to travel. Without this process occurring you would remain in orbit because your velocity didn't change.

Put simply, it takes nearly as much energy to get out of orbit than it does to get into orbit, so losing power does send your craft careening towards the thing you are orbiting. Orbiting isn't an active process, it is a passive one.


Cheers,