Color Me Curious
Sade Olutola
h
đ©” avery cochrane đ©”

oozey mess
todays bird
occasionally subtle

shark vs the universe
đ
let's talk about Bridgerton tea, my ask is open
sheepfilms
đȘŒ

izzy's playlists!
YOU ARE THE REASON
Cookie Run:Kingdom Official!
Fai_Ryy
Cosimo Galluzzi

tannertan36
almost home
Cosmic Funnies

seen from TĂŒrkiye

seen from United States
seen from T1
seen from United States

seen from United States
seen from Netherlands
seen from United States
seen from Malaysia

seen from TĂŒrkiye
seen from Malaysia
seen from Israel
seen from United States
seen from Russia
seen from South Korea
seen from United Kingdom

seen from St. Vincent & Grenadines
seen from China

seen from TĂŒrkiye
seen from Malaysia
seen from United States
@aktti
stuff i did or wish i did for estimeric week
Study of Thistles (circa 1890) by Sophia L. Crownfield.
Brush and oil paint on black paper.
Cooper Hewitt, Smithsonian Design Museum Catalog Photo
Wikimedia.
Eating Star Fruit because my stomach is a black hole. The taste is absolutely cosmic âđâš
My ko fi
đ± đ± đ± đ± đ±
Bend Your Mind With Special Relativity
Ever dreamed of traveling nearly as fast as light? Zipping across the universe to check out the sights seems like it could be fun. But, not so fast. There are a few things you should know before you jump into your rocket. At near the speed of light, the day-to-day physics we know on Earth need a few modifications. And if youâre thinking Albert Einstein will be entering this equation, youâre right!
We live our daily lives using what scientists call Newtonian physics, as in Isaac Newton, the guy who had the proverbial apple fall on his head. Imagine that you are on a sidewalk, watching your friend walk toward the front of a bus as it drives away. The bus is moving at 30 mph. Your friend walks at 3 mph. To you, your friend is moving at 33 mph â you simply add the two speeds together. (The 30 mph the bus is moving plus 3 mph that your friend is moving inside the bus.) This is a simple example of Newtonian physics.
However, imagine that your friend on the bus turns on a flashlight, and you both measure the speed of its light. You would both measure it to be moving at 670 million mph (or 1 billion kilometers per hour) â this is the speed of light. Even though the flashlight is with your friend on the moving bus, you still both measure the speed of light to be exactly the same. Suddenly you see how Einsteinâs physics is different from Newtonâs.
This prediction was a key part of Einsteinâs special theory of relativity: The speed of light is the same for any observer, no matter their relative speed. This leads to many seemingly weird effects. Â
Before talking about those surprising effects, itâs good to take a moment to talk about point of view. For the rest of this discussion, weâll assume that youâre at rest â sitting in one spot in space, not moving. And your friend is on a rocket ship that you measure to be traveling at 90% the speed of light. Neither of you is changing speed or direction. Scientists give this a fancy name â an âinertial frame of reference.â
With the stage set, now we can talk about a couple of super-weird effects of traveling near the speed of light. Relativity messes with simple things like distance and time, doing stuff that might blow your mind!
Letâs say you have a stick that is 36 inches long (91 centimeters). Your friend on the rocket doesnât know the stickâs length, so they measure it by comparing it to a ruler they have as they zoom past you. They find your stick is just 16 inches (40 centimeters) long â less than half the length you measured! This effect is called length contraction. And if they were moving even faster, your friend would measure your stick to be even shorter. The cool thing about relativity is that both of those measurements are right! We see these effects in particle physics with fast-moving particles.
If your friend was traveling to our nearest neighbor star, Proxima Centauri, how far would they think it was? From Earth, we measure Proxima Centauri to be 4.2 light-years away (where one light-year is the distance light travels in a year, or about 5.8 trillion miles). However, your friend, who is traveling at 90% the speed of light in the rocket, would measure the distance between Earth and Proxima Centauri to be just over 1.8 light-years.
Thatâs just length ⊠letâs talk about time!
Now letâs say you and your friend on the rocket have identical synchronized clocks. When your friend reaches Proxima Centauri, they send you a signal, telling you how long their trip took them. Their clock says the trip took just over two years. Remember, they measure the distance to be 1.8 light-years. However, you would see that your clock, which stayed at rest with you, says the trip took 4.7 years â more than twice as long!
This effect is called time dilation â time on moving clocks appears to tick slower.
None of this accounts for your friend accelerating their rocket or stopping at Proxima Centauri. All of this math gets more complicated if you and your friend were speeding up, slowing down, or changing directions. For instance, if your friend slowed down to stop at Proxima Centauri, they would have aged less than you on their trip!
Now youâre ready for a few tips on near-light-speed travel! Watch the video below for more.
Now, if you need to relax a bit after this whirlwind, near-light-speed trip, you can grab our coloring pages of scenes from the video. And if you enjoyed the trip, download a postcard to send to a friend. Finally, if you want to explore more of the wonders of the universe, follow NASA Universe on Facebook and Twitter.
Make sure to follow us on Tumblr for your regular dose of space: http://nasa.tumblr.com
our little secret
Japanese Garden, Portland
insta: @trauigtoby
Summer Heat
Grand Rapids, Michigan | kdkuiper
Psychonaut đ
Io as seen by the Voyager 1 spacecraft on March 4, 1979 | A triple eclipse on Jupiter: Moons Io, Ganymede & Callisto cast shadows on the planet simultaneously, by NASA, 2004 | Callisto.
Scary Space: New Halloween Poster Treats from NASA
Halloween is just around the corner. Need some chilling dĂ©cor? Weâve got you â and your walls â covered with three new Galaxy of Horrors posters that showcase some of the most terrifying topics in the universe.
Gamma Ray Ghouls
In the depths of the universe, the cores of two collapsed stars violently merge to release a burst of the deadliest and most powerful form of light, known as gamma rays. These beams of doom are unleashed upon their unfortunate surroundings, shining a billion trillion times brighter than the Sun for up to 30 terrifying seconds. No spaceship will shield you from their blinding destruction!
Galactic Graveyard
The chillingly haunted galaxy called MACS 2129-1 mysteriously stopped making stars only a few billion years after the Big Bang. It became a cosmic cemetery, illuminated by the red glow of decaying stars. Dare to enter and you might encounter the frightening corpses of exoplanets or the final death throes of once-mighty stars.
Dark Matter
Something strange and mysterious creeps throughout the cosmos. Scientists call it dark matter. It is scattered in an intricate web that forms the skeleton of our universe. Dark matter is invisible, only revealing its presence by pushing and pulling on objects we can see. NASAâs Roman Space Telescope will investigate its secrets. What will it find?
Download the full set in English and Spanish here.
Make sure to follow us on Tumblr for your regular dose of space: http://nasa.tumblr.com
Noticed I can't reblog nasa directly from my account anymore. Such a shame because I love them so much.