Over 800 terrestrial exoplanets visualized and arranged according to their equilibrium temperature and size.
chart by u/mVargic
@thingsorganizedneatly
Aqua Utopia|海の底で記憶を紡ぐ
occasionally subtle
taylor price
Xuebing Du
ojovivo
Sweet Seals For You, Always
cherry valley forever
★
almost home
Misplaced Lens Cap
Sade Olutola
PUT YOUR BEARD IN MY MOUTH

No title available

No title available

tannertan36
untitled

titsay
Claire Keane
Game of Thrones Daily
The Bowery Presents

seen from United States

seen from United States

seen from Canada
seen from United Kingdom

seen from United States
seen from United States
seen from Bangladesh
seen from Kazakhstan

seen from Azerbaijan

seen from United States

seen from Malaysia
seen from United States
seen from Malaysia

seen from Singapore

seen from United States

seen from United States
seen from Malaysia
seen from United States
seen from Maldives
seen from Türkiye
@bombil-fry
Over 800 terrestrial exoplanets visualized and arranged according to their equilibrium temperature and size.
chart by u/mVargic
@thingsorganizedneatly
“If you want to awaken all of humanity, then awaken all of yourself. If you want to eliminate the suffering in the world, then eliminate all that is dark and negative in yourself. Truly, the greatest gift you have to give is that of your own self-transformation.”
— Lao Tzu
“Things arise and she lets them come;
things disappear and she lets them go.
She has but doesn’t possess,
acts but doesn’t expect.
When her work is done, she forgets it.
That is why it lasts forever.”
— Lao Tzu
Watch your thoughts; they become words. Watch your words; they become actions. Watch your actions; they become habits. Watch your habits; they become character. Watch your character; it becomes your destiny.
Lao Tzu
musings on may
Franz Kafka Diaries, 1914-1923 | Felix Vallotton, The Dordogne with Carrenac (1925) | Vera Brittain, “Because You Died: Poetry and Prose of the First World War and After” | Jin Xingye | Haruki Murakami, "Norwegian Wood" | Jin Xingye
support my blog
― Haruki Murakami, Norwegian Wood
[text ID: In the deepening spring of May, I had no choice but to recognize the trembling of my heart.]
Amy Lowell, from lilacs in “the complete poetical works of Amy Lowell”
-Secret history by Donna Tartt
Takuma Nakahira
—Norwegian Wood, Haruki Murakami.
― Haruki Murakami, Norwegian Wood
[text ID: In the deepening spring of May, I had no choice but to recognize the trembling of my heart.]
“I had learned one thing from Kizuki’s death, and I believed that I had made it a part of myself in the form of a philosophy: “Death exists, not as the opposite but as a part of life”. By living our lives, we nurture death. True as this might be, it was only one of the truths we had to learn. What I learned from Naoko’s death was this: no truth can cure the sadness we feel from losing a loved one. No truth, no sincerity, no strength, no kindness, can cure that sorrow. All we can do is see that sadness through to the end and learn something from it, but what we learn will be no help in facing the next sadness that comes to us without warning.”
— Norwegian Woods, Haruki Murakami
—On Earth We’re Briefly Gorgeous, Ocean Vuong
The Lives, Times, and Deaths of Stars
Who among us doesn’t covertly read tabloid headlines when we pass them by? But if you’re really looking for a dramatic story, you might want to redirect your attention from Hollywood’s stars to the real thing. From birth to death, these burning spheres of gas experience some of the most extreme conditions our cosmos has to offer.
All stars are born in clouds of dust and gas like the Pillars of Creation in the Eagle Nebula pictured below. In these stellar nurseries, clumps of gas form, pulling in more and more mass as time passes. As they grow, these clumps start to spin and heat up. Once they get heavy and hot enough (like, 27 million degrees Fahrenheit or 15 million degrees Celsius), nuclear fusion starts in their cores. This process occurs when protons, the nuclei of hydrogen atoms, squish together to form helium nuclei. This releases a lot of energy, which heats the star and pushes against the force of its gravity. A star is born.
Credit: NASA, ESA and the Hubble Heritage Team (STScI/AURA)
From then on, stars’ life cycles depend on how much mass they have. Scientists typically divide them into two broad categories: low-mass and high-mass stars. (Technically, there’s an intermediate-mass category, but we’ll stick with these two to keep it straightforward!)
Low-mass stars
A low-mass star has a mass eight times the Sun’s or less and can burn steadily for billions of years. As it reaches the end of its life, its core runs out of hydrogen to convert into helium. Because the energy produced by fusion is the only force fighting gravity’s tendency to pull matter together, the core starts to collapse. But squeezing the core also increases its temperature and pressure, so much so that its helium starts to fuse into carbon, which also releases energy. The core rebounds a little, but the star’s atmosphere expands a lot, eventually turning into a red giant star and destroying any nearby planets. (Don’t worry, though, this is several billion years away for our Sun!)
Red giants become unstable and begin pulsating, periodically inflating and ejecting some of their atmospheres. Eventually, all of the star’s outer layers blow away, creating an expanding cloud of dust and gas misleadingly called a planetary nebula. (There are no planets involved.)
Credit: NASA, ESA, and the Hubble Heritage Team (STScI/AURA)
All that’s left of the star is its core, now called a white dwarf, a roughly Earth-sized stellar cinder that gradually cools over billions of years. If you could scoop up a teaspoon of its material, it would weigh more than a pickup truck. (Scientists recently found a potential planet closely orbiting a white dwarf. It somehow managed to survive the star’s chaotic, destructive history!)
High-mass stars
A high-mass star has a mass eight times the Sun’s or more and may only live for millions of years. (Rigel, a blue supergiant in the constellation Orion, pictured below, is 18 times the Sun’s mass.)
Credit: Rogelio Bernal Andreo
A high-mass star starts out doing the same things as a low-mass star, but it doesn’t stop at fusing helium into carbon. When the core runs out of helium, it shrinks, heats up, and starts converting its carbon into neon, which releases energy. Later, the core fuses the neon it produced into oxygen. Then, as the neon runs out, the core converts oxygen into silicon. Finally, this silicon fuses into iron. These processes produce energy that keeps the core from collapsing, but each new fuel buys it less and less time. By the point silicon fuses into iron, the star runs out of fuel in a matter of days. The next step would be fusing iron into some heavier element, but doing requires energy instead of releasing it.
The star’s iron core collapses until forces between the nuclei push the brakes, and then it rebounds back to its original size. This change creates a shock wave that travels through the star’s outer layers. The result is a huge explosion called a supernova.
What’s left behind depends on the star’s initial mass. Remember, a high-mass star is anything with a mass more than eight times the Sun’s — which is a huge range! A star on the lower end of this spectrum leaves behind a city-size, superdense neutron star. (Some of these weird objects can spin faster than blender blades and have powerful magnetic fields. A teaspoon of their material would weigh as much as a mountain.)
At even higher masses, the star’s core turns into a black hole, one of the most bizarre cosmic objects out there. Black holes have such strong gravity that light can’t escape them. If you tried to get a teaspoon of material to weigh, you wouldn’t get it back once it crossed the event horizon — unless it could travel faster than the speed of light, and we don’t know of anything that can! (We’re a long way from visiting a black hole, but if you ever find yourself near one, there are some important safety considerations you should keep in mind.)
The explosion also leaves behind a cloud of debris called a supernova remnant. These and planetary nebulae from low-mass stars are the sources of many of the elements we find on Earth. Their dust and gas will one day become a part of other stars, starting the whole process over again.
That’s a very brief summary of the lives, times, and deaths of stars. (Remember, there’s that whole intermediate-mass category we glossed over!) To keep up with the most recent stellar news, follow NASA Universe on Twitter and Facebook.
Make sure to follow us on Tumblr for your regular dose of space: http://nasa.tumblr.com.
The finger of God; Western Veil ll starpunker
Skeleton Commission by milirine