Earlier quoted context omitted.
I don't think it's egregious at all. We use terms like "gnocchi phase", "lasagna phase", and neutron-star mountains regularly in the nuclear-matter literature, so these aren't indicative of any pop-sci "massaging" by the author.
I love this. I had absolutely no idea. Thanks for the info!
Nuclear pasta in neutron stars may be the strongest material in the universe
41–50 of 56 posts
Re: Nuclear pasta in neutron stars may be the strongest material in the universe
#42Earlier quoted context omitted.
Nuclear pasta is a phenomenon that appears when electromagnetic repulsion and strong force are more or less on the same strength. This only happens in a relatively narrow band of (stupendously high) densities. So yes, nuclear pasta does not exist anywhere in the universe outside of a ~100m band inside neutron stars. Source: I studied this for 2 years.
But... what _would_ happen if you instantly (and magically) transported a teaspoon of it, into a random place on earth?
Re: Nuclear pasta in neutron stars may be the strongest material in the universe
#43At trillions of times the mass of water, I'd have to suspect that it has its own gravity. A one kilometer cube starts to approach earth mass, if you just ballpark values based on the orders of magnitude relative to water.
Every object has its own gravity, no matter the shape or size[0]. This is taken advantage of in sensitive experiments that measure the gravitational attraction between human-scale objects[1]. The experiments are done to determine Newton's constant, G, the constant governing the strength of gravity. [0] Even massless particles like photons have gravity, as it's actually energy that bends space and not rest mass. [1] h…
Objects have gravity. A thread about neutron stars, and you came in here to tell us that. Incredible.
Re: Nuclear pasta in neutron stars may be the strongest material in the universe
#44Earlier quoted context omitted.
Nuclear pasta is a phenomenon that appears when electromagnetic repulsion and strong force are more or less on the same strength. This only happens in a relatively narrow band of (stupendously high) densities. So yes, nuclear pasta does not exist anywhere in the universe outside of a ~100m band inside neutron stars. Source: I studied this for 2 years.
But... what _would_ happen if you instantly (and magically) transported a teaspoon of it, into a random place on earth?
How much energy? We can make a crude estimation: a neutron star has a gravitational binding energy in the order of magnitude of a whopping 10 to the 31 megatons of TNT, and a radius of about 10km. Make a direct proportion to your desired amount of pasta.
Re: Nuclear pasta in neutron stars may be the strongest material in the universe
#45Earlier quoted context omitted.
I don't think it's egregious at all. We use terms like "gnocchi phase", "lasagna phase", and neutron-star mountains regularly in the nuclear-matter literature, so these aren't indicative of any pop-sci "massaging" by the author.
Naming things is a hard problem for computer programmers, but not for physicists. For them it's all fun!
Re: Nuclear pasta in neutron stars may be the strongest material in the universe
#46If you read the article and enjoyed the idea of immense mountains being just centimeters tall, I highly recommend a scifi novel called “Dragon’s Egg” by Robert L. Forward. He actually wrote a scientific research paper on neutron stars and turned the paper into a novel! Hard science fiction at its best and makes nuclear chemistry and physics delightfully approachable.
Likewise, Stephen Baxter's "Flux". (Even crazier, here the lifeforms dwell inside the neutron star, in the neutron superfluid.)
Re: Nuclear pasta in neutron stars may be the strongest material in the universe
#47Earlier quoted context omitted.
Nuclear pasta is a phenomenon that appears when electromagnetic repulsion and strong force are more or less on the same strength. This only happens in a relatively narrow band of (stupendously high) densities. So yes, nuclear pasta does not exist anywhere in the universe outside of a ~100m band inside neutron stars. Source: I studied this for 2 years.
But... what _would_ happen if you instantly (and magically) transported a teaspoon of it, into a random place on earth?
Re: Nuclear pasta in neutron stars may be the strongest material in the universe
#48Earlier quoted context omitted.
"Hard" science fiction...
Yes, “hard” scifi is a sub-genre that adheres to physics as much as we know it to be true - no faster-than-light travel, for instance. Arthur C. Clarke and his 2001 series as well as Nivens and his Ringworld series would be good examples, whereas Dan Simmons and his Hyperion Cantos trilogy, while extremely well-written, wouldn’t qualify.
Re: Nuclear pasta in neutron stars may be the strongest material in the universe
#49Earlier quoted context omitted.
Naming things is a hard problem for computer programmers, but not for physicists. For them it's all fun!
It's not all fun for astrophysicists: the ApJ editors are pretty strict with trying to keep cute names out of the literature. One of my profs at grad school went through quite a bit of effort to get WIMPs as a name, publishing several posters and doing conference talks before submitting to ApJ for the first time.
Although, sadly, I think both have been exhausted as options for the dark matter search. Then again, there has been like 140 dark matter/energy papers this year, and I haven't read them all.
Re: Nuclear pasta in neutron stars may be the strongest material in the universe
#50At trillions of times the mass of water, I'd have to suspect that it has its own gravity. A one kilometer cube starts to approach earth mass, if you just ballpark values based on the orders of magnitude relative to water.
Every object has its own gravity, no matter the shape or size[0]. This is taken advantage of in sensitive experiments that measure the gravitational attraction between human-scale objects[1]. The experiments are done to determine Newton's constant, G, the constant governing the strength of gravity. [0] Even massless particles like photons have gravity, as it's actually energy that bends space and not rest mass. [1] h…